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<channel>
        <title>Finkelstein Lab</title>
        <description>Finkelstein Lab - Ilya Finkelstein</description>
        <link>https://finkelsteinlab.org</link>
        <link>https://finkelsteinlab.org</link>
        <lastBuildDate>2026-08-28T01:23:40+00:00</lastBuildDate>
        <pubDate>2026-08-28T01:23:40+00:00</pubDate>
        <ttl>1800</ttl>


        <item>
                <title>Structural basis for target discrimination and activation by Cas13d</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;CRISPR-Cas13d is increasingly used for RNA knockdowns, but off-target cleavage of near-cognate RNAs hinders its broader adoption. Here, we solve seven cryo–electron microscopy structures of wild-type Cas13d in complex with matched and mismatched targets. These structures reveal active, intermediate, and inactive states that illustrate a detailed activation mechanism. Upon target RNA binding, the CRISPR RNA undergoes marked conformational changes. The Helical-1 domain transitions from a docked state with the amino-terminal domain to an allosterically switched conformation that stabilizes the RNA duplex. Quantitative kinetics show that a single proximal mismatch preserves the binding rate constant but abolishes nuclease activity by trapping Cas13d in an inactive state. We also identify an active site loop in the higher eukaryotes and prokaryotes nucleotide-binding (HEPN) domains that regulates substrate accessibility and can be mutated to generate both hypo- and hyperactivated variants. These findings establish the structural basis for Cas13d mismatch surveillance and provide a framework for engineering HEPN nuclease specificity and activity.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Cas13d-structure</link>
                <guid>https://finkelsteinlab.org/papers/paper/Cas13d-structure</guid>
                <pubDate>2026-08-19T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Single-Molecule Visualization of DNase I-Mediated DNA Cleavage by High-Speed Atomic Force Microscopy</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;DNase I is a nonspecific endonuclease that preferentially cleaves double-stranded DNA (dsDNA) over single-stranded DNA (ssDNA) in the presence of Ca2+ and Mg2+. Although the structure and biochemical properties of DNase I are well-characterized, the catalytic process remains poorly understood, as earlier studies primarily inferred cleavage from end point fragments or time-averaged measurements rather than direct visualization. Here, we employ high-speed atomic force microscopy (HS-AFM) to directly visualize DNase I activity on linear dsDNA, circular dsDNA plasmids, and circular ssDNA plasmids. DNase I, observed as monomeric particles, dimers, and trimeric or higher-order aggregates, dynamically binds to and slides along DNA substrates while inducing both single-strand and double-strand cleavage events. These observations reveal that DNase I-mediated cleavage is not restricted to an isolated monomeric state and that sliding-like DNA-bound motion can accompany nonspecific nuclease activity. DNase I exhibits significantly higher cleavage efficiency toward dsDNA than ssDNA. Together, these results provide direct mechanistic insights into DNase I-mediated nucleic acid degradation, with implications for its biochemical functions and therapeutic applications.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/DNase-I-HS-AFM</link>
                <guid>https://finkelsteinlab.org/papers/paper/DNase-I-HS-AFM</guid>
                <pubDate>2026-06-05T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Phage-encoded factor stimulates DNA degradation by the Hna anti-phage defense system</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Prokaryotic organisms have evolved unique strategies to acquire immunity against the constant threat of bacteriophage (phage) and mobile genetic elements. Hna is a broadly distributed anti-phage immune system that confers resistance against diverse phage by eliciting an abortive infection response. Using a combination of biochemistry, cryo-electron microscopy, and single-molecule fluorescence imaging, we reveal that Hna functions as a 3’—5’ single-stranded DNA exonuclease that forms an auto-inhibited dimer under physiological ATP concentrations. Biochemical and mutational analyses demonstrate that Hna catalytic outputs are governed by kinetic partitioning between ATPase and nuclease active sites. Disruption of this balance enhances DNA cleavage and causes cellular toxicity. Furthermore, we show that a phage-encoded single-stranded DNA-binding protein (5 A SSB) destabilizes the autoinhibited Hna dimer and shifts catalytic partitioning toward dysregulated nuclease activation. Conversely, phage escape mutants encode SSB variants that evade Hna surveillance by adopting higher order stoichiometries with enhanced DNA binding affinity. Our work establishes the molecular basis of Hna-mediated anti-phage activity and provides insights into how phage-encoded proteins can directly stimulate a bacterial immune response.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Hna-antiphage-defense</link>
                <guid>https://finkelsteinlab.org/papers/paper/Hna-antiphage-defense</guid>
                <pubDate>2026-05-18T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>One-Pot Isothermal Linear Amplification and Cas12a-Based Nucleic Acid Detection</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;CRISPR-based nucleic acid diagnostics are a promising class of point-of-care tools that could dramatically improve healthcare outcomes for millions worldwide. However, these diagnostics require nucleic acid preamplification, an additional step that complicates deployment to low resource settings. Here, we developed CATNAP (Cas trans-nuclease detection of amplified products), a method that integrates isothermal linear DNA amplification with Cas12a detection in a single reaction. CATNAP uses a nicking enzyme and DNA polymerase to continuously generate single-stranded DNA, activating Cas12a’s trans-cleavage activity without damaging the template. We optimized enzyme combinations, buffer conditions, and target selection to achieve high catalytic efficiency. CATNAP successfully distinguished between high- and low-risk HPV strains and detects HPV-16 in crude cell lysates of cervical cancer cells with minimal equipment, offering advantages over PCR-based approaches. We conclude that CATNAP bridges the sensitivity gap in CRISPR diagnostics while maintaining simplicity, making accurate disease detection more accessible in resource-limited settings.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/One-Pot-Isothermal-Cas12a-Detection</link>
                <guid>https://finkelsteinlab.org/papers/paper/One-Pot-Isothermal-Cas12a-Detection</guid>
                <pubDate>2025-12-19T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Discovery and engineering of retrons for precise genome editing</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Retrons can produce multicopy single-stranded DNA in cells through self-primed reverse transcription. However, their potential for inserting genetic cargos in eukaryotes remains largely unexplored. Here we report the discovery and engineering of highly efficient retron-based gene editors for mammalian cells and vertebrates. Through bioinformatic analysis of metagenomic data and functional screening, we identify retron reverse transcriptases that are highly active in mammalian cells. Rational design further improves the editing efficiency to levels comparable with conventional single-stranded oligodeoxynucleotide donors but from a genetically encoded cassette. Retron editors exhibit robust activity with Cas12a nuclease and Cas9 nickase, expanding the genomic target scope and bypassing the need for a DNA double-stranded break. Using a rationally engineered retron editor, we incorporate a split GFP epitope tag for live-cell imaging. Lastly, we develop an all-RNA delivery strategy to enable DNA-free gene editing in cells and vertebrate embryos. This work establishes retron editors as a versatile and efficient tool for precise gene editing.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Retron-genome-editing</link>
                <guid>https://finkelsteinlab.org/papers/paper/Retron-genome-editing</guid>
                <pubDate>2025-10-23T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Discrete Subdomains Establish Epigenetic Diversity in Subtelomeric Heterochromatin</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Subtelomeres are imperfect repeats adjacent to telomeres that are repressed by heterochromatin. Although essential for genome integrity, their repetitive nature has thwarted dissection of local heterochromatin assembly and maintenance mechanisms. Here, we engineered Schizosaccharomyces pombe strains carrying fluorescent reporters at a single subtelomere. We find that subtelomeric heterochromatin is organized into discrete subdomains that nucleate at telomere-proximal and cryptic internal sites. Telomere-proximal regions depend on canonical shelterin or RNA interference nucleation pathways, while telomere-distal regions require nucleosome remodelers, histone chaperones, and boundary-associated factors. Using multi-generational live imaging and targeted perturbations, we show that subtelomeric subdomains display position-specific, clonally variable silencing across a spectrum of robust to fragile epigenetic states. This clonal variegation is also induced by naturally occurring subtelomeric structural variants. These findings demonstrate that subtelomeric heterochromatin maintenance is not uniform but rather governed by local chromatin context and architecture.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Subtelomeric-heterochromatin</link>
                <guid>https://finkelsteinlab.org/papers/paper/Subtelomeric-heterochromatin</guid>
                <pubDate>2025-09-25T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Unleashing high trans-substrate cleavage kinetics of Cas12a for nucleic acid diagnostics</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;CRISPR (clustered regularly interspaced short palindromic repeats)-based nucleic acid diagnostics enable rapid, sensitive pathogen detection. Cas12a is frequently used in these assays because target-activated trans cleavage of a reporter molecule generates an easily detectable signal. However, variable activity across assays suggests that the catalytic potential of Cas12a has been limited via unknown mechanisms. Here, we show that Cas12a trans-nuclease activity is auto-inhibited by long PAM-proximal DNA (&amp;gt;120 bp) following cis-cleavage of targets. Short targets (&amp;lt;100 bp), optimized trans cleavage substrates, and low salt buffers unleash high catalytic efficiency (≈10⁸ M⁻¹ s⁻¹) and turnover (≈1 s⁻¹) across Cas12a orthologs. Pooling multiple Cas12a ribonucleoproteins (RNPs) targeting clustered protospacers overcomes cis-cleavage auto-inhibition, further boosting sensitivity. Optimized CRISPR RNA pools enable sub-femtomolar sensitivity for target detection without any pre-amplification. This mechanistic insight and mitigation strategy broaden the application of CRISPR-Cas enzymes for nucleic acid diagnostics.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Cas12a-trans-cleavage-diagnostics</link>
                <guid>https://finkelsteinlab.org/papers/paper/Cas12a-trans-cleavage-diagnostics</guid>
                <pubDate>2025-07-19T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Mechanism of Cas9 inhibition by AcrIIA11</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Mobile genetic elements evade CRISPR-Cas adaptive immunity by encoding anti-CRISPR proteins (Acrs). Acrs inactivate CRISPR-Cas systems via diverse mechanisms but generally coevolve with a narrow subset of Cas effectors that share high sequence similarity. Here, we demonstrate that AcrIIA11 inhibits Streptococcus pyogenes (Sp), Staphylococcus aureus (Sa), and Francisella novicida (Fn) Cas9s in vitro and in human cells. Single-molecule imaging reveals that AcrIIA11 hinders SaCas9 target search by reducing its diffusion on nonspecific DNA. DNA cleavage is inhibited because the AcrIIA11:SaCas9 complex binds to protospacer adjacent motif (PAM)-rich off-target sites, preventing SaCas9 from reaching its target. AcrIIA11 also greatly slows down DNA cleavage after SaCas9 reaches its target site. A negative-stain electron microscopy reconstruction of an AcrIIA11:SaCas9 RNP complex reveals that the heterodimer assembles with a 1:1 stoichiometry. Physical AcrIIA11-Cas9 interactions across type IIA and IIB Cas9s correlate with nuclease inhibition and support its broad-spectrum activity. These results add a kinetic inhibition mechanism to the phage-CRISPR arms race.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Cas9-inhibition-AcrIIA11</link>
                <guid>https://finkelsteinlab.org/papers/paper/Cas9-inhibition-AcrIIA11</guid>
                <pubDate>2025-04-22T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Room temperature CRISPR diagnostics for low-resource settings</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Maintaining elevated reaction temperatures and multi-step sample preparations increases the costs and complexity of diagnostics, impeding their deployment in low-resource settings. Here, we develop a one-pot, room temperature recombinase polymerase amplification (RPA)-CRISPR reaction that removes these critical challenges. We show that RPA amplification is reduced by several orders of magnitude at 25 °C as compared to 37 °C. Similarly, when coupled to RPA, the performance of multiple Cas12a orthologs, including the widely used LbCas12a, is severely compromised at temperatures below 37 °C. To mitigate these limitations, we identify the ortholog TsCas12a as a highly active nuclease at 25 °C and develop a single-protocol RPA-Cas12a detection reaction with this enzyme. A quantitative kinetic analysis reveals that fast nuclease activation is more critical than higher steady-state trans-cleavage activity for room temperature diagnostic applications. RPA-TsCas12a reactions performed at 25 °C effectively detected HPV-16 in crudely prepared cervical swab samples with high sensitivity and specificity using both optical and lateral flow readouts. The reactions developed herein reduce the complexity and equipment requirements for affordable diagnostics in low- and middle-income countries.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Room-Temperature-CRISPR-Diagnostics</link>
                <guid>https://finkelsteinlab.org/papers/paper/Room-Temperature-CRISPR-Diagnostics</guid>
                <pubDate>2025-01-31T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>PARP1 condensates differentially partition DNA repair proteins and enhance DNA ligation</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Poly(ADP-ribose) polymerase 1 (PARP1) is one of the first responders to DNA damage and plays crucial roles in recruiting DNA repair proteins through its activity - poly(ADP-ribosyl)ation (PARylation). The enrichment of DNA repair proteins at sites of DNA damage has been described as the formation of a biomolecular condensate. However, it remains unclear how exactly PARP1 and PARylation contribute to the formation and organization of DNA repair condensates. Using recombinant human single-strand repair proteins in vitro, we find that PARP1 readily forms viscous biomolecular condensates in a DNA-dependent manner and that this depends on its three zinc finger (ZnF) domains. PARylation enhances PARP1 condensation in a PAR chain length-dependent manner and increases the internal dynamics of PARP1 condensates. DNA and single-strand break repair proteins XRCC1, LigIII, Polβ, and FUS partition in PARP1 condensates, although in different patterns. While Polβ and FUS are both homogeneously mixed within PARP1 condensates, FUS enrichment is greatly enhanced upon PARylation whereas Polβ partitioning is not. XRCC1 and LigIII display an inhomogeneous organization within PARP1 condensates; their enrichment in these multiphase condensates is enhanced by PARylation. Functionally, PARP1 condensates concentrate short DNA fragments, which correlates with PARP1 clusters compacting long DNA and bridging DNA ends. Furthermore, the presence of PARP1 condensates significantly promotes DNA ligation upon PARylation. These findings provide insight into how PARP1 condensation and PARylation regulate the assembly and biochemical activities of DNA repair factors, which may inform on how PARPs function in DNA repair foci and other PAR-driven condensates in cells.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/PARP1-condensates-EMBO-Reports</link>
                <guid>https://finkelsteinlab.org/papers/paper/PARP1-condensates-EMBO-Reports</guid>
                <pubDate>2024-11-04T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Kinetic dissection of pre-crRNA binding and processing by CRISPR-Cas12a</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;CRISPR-Cas12a binds and processes a single pre-crRNA during maturation, providing a simple tool for genome editing applications. Here, we constructed a kinetic and thermodynamic framework for pre-crRNA processing by Cas12a in vitro, and we measured the contributions of distinct regions of the pre-crRNA to this reaction. We find that the pre-crRNA binds rapidly and extraordinarily tightly to Cas12a (K d = 0.6 pM), such that pre-crRNA binding is fully rate limiting for processing and therefore determines the specificity of Cas12a for different pre-crRNAs. The guide sequence contributes 10-fold to the binding affinity of the pre-crRNA, while deletion of an upstream sequence has no significant effect. After processing, the mature crRNA remains very tightly bound to Cas12a with a comparable affinity. Strikingly, the affinity contribution of the guide region increases to 600-fold after processing, suggesting that additional contacts are formed and may preorder the crRNA for efficient DNA target recognition. Using a direct competition assay, we find that pre-crRNA-binding specificity is robust to changes in the guide sequence, addition of a 3’ extension, and secondary structure within the guide region. However, stable secondary structure in the guide region can strongly inhibit DNA targeting, indicating that care should be taken in crRNA design. Together, our results provide a quantitative framework for pre-crRNA binding and processing by Cas12a and suggest strategies for optimizing crRNA design in genome editing applications.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Kinetic-dissection-of-pre-crRNA-binding</link>
                <guid>https://finkelsteinlab.org/papers/paper/Kinetic-dissection-of-pre-crRNA-binding</guid>
                <pubDate>2024-09-16T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Massively Parallel Profiling of RNA-targeting CRISPR-Cas13d</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;CRISPR-Cas13d cleaves RNA and is used in vivo and for diagnostics. However, a systematic understanding of its RNA binding and cleavage specificity is lacking. Here, we describe an RNA Chip-Hybridized Association-Mapping Platform (RNA-CHAMP) for measuring the binding affinity for &amp;gt; 10,000 RNAs containing structural perturbations and other alterations relative to the CRISPR RNA (crRNA). Deep profiling of Cas13d reveals that it does not require a protospacer flanking sequence but is exquisitely sensitive to secondary structure within the target RNA. Cas13d binding is penalized by mismatches in the distal crRNA-target RNA region, while alterations in the proximal region inhibit nuclease activity. A biophysical model built from these data reveals that target recognition initiates in the distal end of the target RNA. Using this model, we design crRNAs that can differentiate between SARS-CoV-2 variants by modulating nuclease activation. This work describes the key determinants of RNA targeting by a type VI CRISPR enzyme.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Massively-Parallel-Profiling-CRISPR-Cas13d</link>
                <guid>https://finkelsteinlab.org/papers/paper/Massively-Parallel-Profiling-CRISPR-Cas13d</guid>
                <pubDate>2024-04-23T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Mammalian Antigen Display for Pandemic Countermeasures</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Pandemic countermeasures require the rapid design of antigens for vaccines, profiling patient antibody responses, assessing antigen structure-function landscapes, and the surveillance of emerging viral lineages. Cell surface display of a viral antigen or its subdomains can facilitate these goals by coupling the phenotypes of protein variants to their DNA sequence. Screening surface-displayed proteins via flow cytometry also eliminates time-consuming protein purification steps. Prior approaches have primarily relied on yeast as a display chassis. However, yeast often cannot express large viral glycoproteins, requiring their truncation into subdomains. Here, we describe a method to design and express antigens on the surface of mammalian HEK293T cells. We discuss three use cases, including screening of stabilizing mutations, deep mutational scanning, and epitope mapping. The mammalian antigen display platform described herein will accelerate ongoing and future pandemic countermeasures.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Mammalian-antigen-display</link>
                <guid>https://finkelsteinlab.org/papers/paper/Mammalian-antigen-display</guid>
                <pubDate>2024-04-23T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>High-speed AFM imaging reveals DNA capture and loop extrusion dynamics by cohesin-NIPBL</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;3D chromatin organization plays a critical role in regulating gene expression, DNA replication, recombination, and repair. While initially discovered for its role in sister chromatid cohesion, emerging evidence suggests that the cohesin complex (SMC1, SMC3, RAD21, and SA1/SA2), facilitated by NIPBL, mediates topologically associating domains (TADs) and chromatin loops through DNA loop extrusion. However, information on how conformational changes of cohesin-NIPBL drive its loading onto DNA, initiation, and growth of DNA loops is still lacking. In this study, high-speed atomic force microscopy (HS-AFM) imaging reveals that cohesin-NIPBL captures DNA through arm extension, assisted by feet (shorter protrusions), and followed by transfer of DNA to its lower compartment (SMC heads, RAD21, SA1 and NIPBL). While binding at the lower compartment, arm extension leads to the capture of a second DNA segment and the initiation of a DNA loop that is independent of ATP hydrolysis. The feet are likely contributed by the C-terminal domains of SA1 and NIPBL and can transiently bind to DNA to facilitate the loading of the cohesin complex onto DNA. Furthermore, HS-AFM imaging reveals distinct forward and reverse DNA loop extrusion steps by cohesin-NIPBL. These results advance our understanding of cohesin by establishing direct experimental evidence for a multistep DNA binding mechanism mediated by dynamic protein conformational changes.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/AFM-cohesin-NIPBL</link>
                <guid>https://finkelsteinlab.org/papers/paper/AFM-cohesin-NIPBL</guid>
                <pubDate>2023-09-28T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Asgard archaea defense systems and their roles in the origin of eukaryotic immunity</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Immune systems are integral to survival against viral infection. Recently, dozens of new anti-viral systems have been characterized in bacteria. Some of these systems are present in eukaryotes and appear to have originated in prokaryotes. However, little is known about these defense mechanisms in archaea. Here, we identified 2,610 complete defense systems in archaea related to eukaryotes, the Asgardarchaeota. These comprise 89 unique systems, including argonaute, NLR, mokosh, viperin, lassamu, and CBASS. Asgard viperin (asVip) and argonaute (asAgo) proteins are present at high frequencies compared to bacteria and have structural homology to eukaryotes. Phylogenetic analyses revealed asVips are ancestral eukaryotic proteins. Heterologous expression of asVips in bacteria, including the lineage closest to eukaryotes, Hodarchaeales, showed robust anti-phage activity. Eukaryotic-and bacterial-argonaute proteins appear to have originated in the Asgardarchaeota, and have ancient structural characteristics. AsAgos appear to have argonaute-PIWI domains which are key components of the RNA interference (RNAi) in eukaryotes. Characterization of hundreds of new defense systems in the Asgardarchaeota revealed these archaea played important roles in the innovation of viral protection in eukaryotes. Given their relationship to eukaryotes, these defense systems may have applications in biomedicine and biotechnology.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/archaea-defense-immunity</link>
                <guid>https://finkelsteinlab.org/papers/paper/archaea-defense-immunity</guid>
                <pubDate>2023-09-13T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>CTCF and R-loops are boundaries of cohesin-mediated DNA looping</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Cohesin and CCCTC-binding factor (CTCF) are key regulatory proteins of three-dimensional (3D) genome organization. Cohesin extrudes DNA loops that are anchored by CTCF in a polar orientation. Here, we present direct evidence that CTCF binding polarity controls cohesin-mediated DNA looping. Using single-molecule imaging, we demonstrate that a critical N-terminal motif of CTCF blocks cohesin translocation and DNA looping. The cryo-EM structure of the cohesin-CTCF complex reveals that this CTCF motif ahead of zinc fingers can only reach its binding site on the STAG1 cohesin subunit when the N terminus of CTCF faces cohesin. Remarkably, a C-terminally oriented CTCF accelerates DNA compaction by cohesin. DNA-bound Cas9 and Cas12a ribonucleoproteins are also polar cohesin barriers, indicating that stalling may be intrinsic to cohesin itself. Finally, we show that RNA-DNA hybrids (R-loops) block cohesin-mediated DNA compaction in vitro and are enriched with cohesin subunits in vivo, likely forming TAD boundaries.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Cohesin-Rloops</link>
                <guid>https://finkelsteinlab.org/papers/paper/Cohesin-Rloops</guid>
                <pubDate>2023-08-17T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Unraveling the mechanisms of PAMless DNA interrogation by SpRY-Cas9</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;CRISPR-Cas9 is a powerful tool for genome editing, but the strict requirement for an “NGG” protospacer-adjacent motif (PAM) sequence immediately adjacent to the DNA target limits the number of editable genes. To overcome the PAM requirement, a recently developed Cas9 variant, called SpRY-Cas9 was engineered to be “PAMless” (1, 2). However, the molecular mechanisms of how SpRY can recognize all potential PAM sequences and still accurately identify DNA targets have not been investigated. Here, we combined enzyme kinetics, cryo-EM, and single-molecule imaging to determine how SpRY interrogates DNA and recognizes target sites for cleavage. Divergent PAM sequences can be accommodated through conformational flexibility within the PAM-interacting region of SpRY, which facilitates tight binding to off-target DNA sequences. Once SpRY correctly identifies a target site, nuclease activation occurs ∼1,000-fold slower than for Streptococcus pyogenes Cas9, enabling us to directly visualize multiple on-pathway intermediate states. Insights gained from our intermediate structures prompted rationally designed mutants with improved DNA cleavage efficiency. Our findings shed light on the molecular mechanisms of PAMless genome editing with SpRY and provide a framework for the design of future genome editing tools with improved versatility, precision, and efficiency.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/PAMless-DNA-SpRY-Cas9</link>
                <guid>https://finkelsteinlab.org/papers/paper/PAMless-DNA-SpRY-Cas9</guid>
                <pubDate>2023-06-22T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>In Diverse Conditions, Intrinsic Chromatin Condensates Have Liquid-like Material Properties</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Nuclear DNA in eukaryotes is wrapped around histone proteins to form nucleosomes on a chromatin fiber. Dynamic folding of the chromatin fiber into loops and variations in the degree of chromatin compaction regulate essential processes such as transcription, recombination, and mitotic chromosome segregation. Our understanding of the physical properties that allow chromatin to be dynamically remodeled even in highly compacted states is limited. Previously, we reported that chromatin has an intrinsic capacity to phase separate and form dynamic liquid-like condensates, which can be regulated by cellular factors [B. A. Gibson et al., Cell 179, 470–484.e421 (2019)]. Recent contradictory reports claim that a specific set of solution conditions is required for fluidity in condensates that would otherwise be solid [J. C. Hansen, K. Maeshima, M. J. Hendzel, Epigenetics Chromatin 14, 50 (2021); H. Strickfaden et al., Cell 183, 1772–1784.e1713 (2020)]. We sought to resolve these discrepancies, as our ability to translate with confidence these biophysical observations to cells requires their precise characterization. Moreover, whether chromatin assemblies are dynamic or static affects how processes such as transcription, loop extrusion, and remodeling will engage them inside cells. Here, we show in diverse conditions and without specific buffering components that chromatin fragments form phase separated fluids in vitro. We also explore how sample preparation and imaging affect the experimental observation of chromatin condensate dynamics. Last, we describe how liquid-like in vitro behaviors can translate to the locally dynamic but globally constrained chromatin movement observed in cells.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/chromatin-condensates-liquid-like-properties</link>
                <guid>https://finkelsteinlab.org/papers/paper/chromatin-condensates-liquid-like-properties</guid>
                <pubDate>2023-04-24T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Distinct horizontal transfer mechanisms for type I and type V CRISPR-associated transposons</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;CRISPR-associated transposons (CASTs) have co-opted CRISPR-Cas proteins and Tn7-family transposons for RNA-guided vertical and horizontal transmission. CASTs encode minimal CRISPR arrays but lack all spacer acquisition genes. Here, we define how different CASTs target new invading mobile elements without updating their own CRISPR arrays. A bioinformatic analysis reveals that all CAST sub-families co-exist with defense-associated CRISPR-Cas systems. Using a quantitative transposition assay, we show that type I-F and I-B CASTs use CRISPR RNAs (crRNAs) from these defense systems for horizontal gene transfer. A high-resolution structure of the type I-F CAST-Cascade in complex with a type III-B crRNA reveals a sequence-independent mechanism for direct repeat recognition. Type I CASTs recognize heterologous CRISPR arrays via a short hairpin in the direct repeat of their crRNA. In contrast, type V CASTs require the Cas12k effector protein but not any crRNA for unguided transposition. This transposition causes random genomic insertions via a copy-and-paste mechanism, even with over-expression of the S15 co-factor. Conversely, a single guide RNA, in concert with S15, increases on-target integration for type V CASTs. These discoveries explain how CASTs horizontally transfer to new hosts without updating their own CRISPR arrays. More broadly, this work will guide further efforts to engineer the activity and specificity of CASTs for gene editing applications.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/horizontal-transfer</link>
                <guid>https://finkelsteinlab.org/papers/paper/horizontal-transfer</guid>
                <pubDate>2023-03-04T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>The MRN complex and topoisomerase IIIa–RMI1/2 synchronize DNA resection motor proteins</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;DNA resection—the nucleolytic processing of broken DNA ends—is the first step of homologous recombination. Resection is catalyzed by the resectosome, a multienzyme complex that includes bloom syndrome helicase (BLM), DNA2 or exonuclease 1 nucleases, and additional DNA-binding proteins. Although the molecular players have been known for over a decade, how the individual proteins work together to regulate DNA resection remains unknown. Using single-molecule imaging, we characterized the roles of the MRE11–RAD50–NBS1 complex (MRN) and topoisomerase IIIa (TOP3A)–RMI1/2 during long-range DNA resection. BLM partners with TOP3A–RMI1/2 to form the BTRR (BLM–TOP3A–RMI1/2) complex (or BLM dissolvasome). We determined that TOP3A–RMI1/2 aids BLM in initiating DNA unwinding, and along with MRN, stimulates DNA2-mediated resection. Furthermore, we found that MRN promotes the association between BTRR and DNA and synchronizes BLM and DNA2 translocation to prevent BLM from pausing during resection. Together, this work provides direct observation of how MRN and DNA2 harness the BTRR complex to resect DNA efficiently and how TOP3A–RMI1/2 regulates the helicase activity of BLM to promote efficient DNA repair.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/MRN-DNA-Resection</link>
                <guid>https://finkelsteinlab.org/papers/paper/MRN-DNA-Resection</guid>
                <pubDate>2023-02-02T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Massively Parallel Selection of NanoCluster Beacons</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;NanoCluster Beacons (NCBs) are multicolor silver nanocluster probes whose fluorescence can be activated or tuned by a proximal DNA strand called the activator. While a single-nucleotide difference in a pair of activators can lead to drastically different activation outcomes, termed the polar opposite twins (POTs), it is difficult to discover new POT-NCBs using the conventional low-throughput characterization approaches. Here a high-throughput selection method is reported that takes advantage of repurposed next-generation-sequencing (NGS) chips to screen the activation fluorescence of ~40,000 activator sequences. We find the nucleobases at positions 7-12 of the 18-nucleotide-long activator are critical to creating bright NCBs and positions 4-6 and 2-4 are hotspots to generate yellow-orange and red POTs, respectively. Based on these findings, a “zipper bag model” is proposed that can explain how these hotspots facilitate the formation of distinct silver cluster chromophores and alter their chromophore chemical yields. Combining high-throughput screening with machine learning algorithms, a pipeline is established to design bright and multicolor NCBs in silico.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/NanoCluster-Beacons</link>
                <guid>https://finkelsteinlab.org/papers/paper/NanoCluster-Beacons</guid>
                <pubDate>2022-08-09T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Antibody escape and cryptic cross-domain stabilization in the SARS-CoV-2 Omicron spike protein</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;The worldwide spread of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) has led to the repeated emergence of variants of concern. For the Omicron variant, sub-lineages BA.1 and BA.2, respectively, contain 33 and 29 nonsynonymous and indel spike protein mutations. These amino acid substitutions and indels are implicated in increased transmissibility and enhanced immune evasion. By reverting individual spike mutations of BA.1 or BA.2, we characterize the molecular effects of the Omicron spike mutations on expression, ACE2 receptor affinity, and neutralizing antibody recognition. We identified key mutations enabling escape from neutralizing antibodies at a variety of epitopes. Stabilizing mutations in the N-terminal and S2 domains of the spike protein can compensate for destabilizing mutations in the receptor binding domain, enabling the record number of mutations in Omicron. Our results provide a comprehensive account of the mutational effects in the Omicron spike protein and illustrate previously uncharacterized mechanisms of host evasion.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Ab-escape-Omicron-spike</link>
                <guid>https://finkelsteinlab.org/papers/paper/Ab-escape-Omicron-spike</guid>
                <pubDate>2022-08-04T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>How Glutamate Promotes Liquid-liquid Phase Separation and DNA Binding Cooperativity of E. coli SSB Protein</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;E. coli single-stranded-DNA binding protein (EcSSB) displays nearest-neighbor (NN) and non-nearest-neighbor (NNN)) cooperativity in binding ssDNA during genome maintenance. NNN cooperativity requires the intrinsically-disordered linkers (IDL) of the C-terminal tails. Potassium glutamate (KGlu), the primary E. coli salt, promotes NNN-cooperativity, while KCl inhibits it. We find that KGlu promotes compaction of a single polymeric SSB-coated ssDNA beyond what occurs in KCl, indicating a link of compaction to NNN-cooperativity. EcSSB also undergoes liquid-liquid phase separation (LLPS), inhibited by ssDNA binding. We find that LLPS, like NNN-cooperativity, is promoted by increasing [KGlu] in the physiological range, while increasing [KCl] and/or deletion of the IDL eliminate LLPS, indicating similar interactions in both processes. From quantitative determinations of interactions of KGlu and KCl with protein model compounds, we deduce that the opposing effects of KGlu and KCl on SSB LLPS and cooperativity arise from their opposite interactions with amide groups. KGlu interacts unfavorably with the backbone (especially Gly) and side chain amide groups of the IDL, promoting amide-amide interactions in LLPS and NNN-cooperativity. By contrast, KCl interacts favorably with these amide groups and therefore inhibits LLPS and NNN-cooperativity. These results highlight the importance of salt interactions in regulating the propensity of proteins to undergo LLPS.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/SSB-protein</link>
                <guid>https://finkelsteinlab.org/papers/paper/SSB-protein</guid>
                <pubDate>2022-05-15T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Polymerase theta-helicase promotes end joining by stripping single-stranded DNA-binding proteins and bridging DNA ends</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Homologous recombination-deficient cancers rely on DNA polymerase Theta (Polθ)-Mediated End Joining (TMEJ), an alternative double-strand break repair pathway. Polθ is the only vertebrate polymerase that encodes an N-terminal superfamily 2 (SF2) helicase domain, but the role of this helicase domain in TMEJ remains unclear. Using single-molecule imaging, we demonstrate that Polθ-helicase (Polθ-h) is a highly processive single-stranded DNA (ssDNA) motor protein that can efficiently strip Replication Protein A (RPA) from ssDNA. Polθ-h also has a limited capacity for disassembling RAD51 filaments but is not processive on double- stranded DNA. Polθ-h can bridge two non-complementary DNA strands in trans. PARylation of Polθ-h by PARP-1 resolves these DNA bridges. We conclude that Polθ-h removes RPA and RAD51 filaments and mediates bridging of DNA overhangs to aid in polymerization by the Polθ polymerase domain.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Pol-theta-end-joining</link>
                <guid>https://finkelsteinlab.org/papers/paper/Pol-theta-end-joining</guid>
                <pubDate>2022-04-22T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>A kinetic model predicts SpCas9 activity, improves off-target classification, and reveals the physical basis of targeting fidelity</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;The S. pyogenes (Sp) Cas9 endonuclease is an important gene-editing tool. SpCas9 is directed to target sites based on complementarity to a complexed single-guide RNA (sgRNA). However, SpCas9-sgRNA also binds and cleaves genomic off-targets with only partial complementarity. To date, we lack the ability to predict cleavage and binding activity quantitatively, and rely on binary classification schemes to identify strong off-targets. We report a quantitative kinetic model that captures the SpCas9-mediated strand-replacement reaction in free-energy terms. The model predicts binding and cleavage activity as a function of time, target, and experimental conditions. Trained and validated on high-throughput bulk-biochemical data, our model predicts the intermediate R-loop state recently observed in single-molecule experiments, as well as the associated conversion rates. Finally, we show that our quantitative activity predictor can be reduced to a binary off-target classifier that outperforms the established state-of-the-art. Our approach is extensible, and can characterize any CRISPR-Cas nuclease – benchmarking natural and future high-fidelity variants against SpCas9; elucidating determinants of CRISPR fidelity; and revealing pathways to increased specificity and efficiency in engineered systems.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/SpCas9-kinetic-model</link>
                <guid>https://finkelsteinlab.org/papers/paper/SpCas9-kinetic-model</guid>
                <pubDate>2022-03-15T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Compartmentalization of telomeres through DNA-scaffolded phase separation</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Telomeres form unique nuclear compartments that prevent degradation and fusion of chromosome ends by recruiting shelterin proteins and regulating access of DNA damage repair factors. To understand how these dynamic components protect chromosome ends, we combine in vivo biophysical interrogation and in vitro reconstitution of human shelterin. We show that shelterin components form multicomponent liquid condensates with selective biomolecular partitioning on telomeric DNA. Tethering and anomalous diffusion prevent multiple telomeres from coalescing into a single condensate in mammalian cells. However, telomeres coalesce when brought into contact via an optogenetic approach. TRF1 and TRF2 subunits of shelterin drive phase separation, and their N-terminal domains specify interactions with telomeric DNA in vitro. Telomeric condensates selectively recruit telomere-associated factors and regulate access of DNA damage repair factors. We propose that shelterin mediates phase separation of telomeric chromatin, which underlies the dynamic yet persistent nature of the end-protection mechanism.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/telomeres-phase-separation</link>
                <guid>https://finkelsteinlab.org/papers/paper/telomeres-phase-separation</guid>
                <pubDate>2022-01-25T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Rapid characterization of spike variants via mammalian cell surface display</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;The SARS-CoV-2 spike protein is a critical component of vaccines and a target for neutralizing monoclonal antibodies (nAbs). Spike is also undergoing immunogenic selection with variants that increase infectivity and partially escape convalescent plasma. Here, we describe Spike Display, a high-throughput platform to rapidly characterize glycosylated spike ectodomains across multiple coronavirus-family proteins. We assayed ∼200 variant SARS-CoV-2 spikes for their expression, ACE2 binding, and recognition by 13 nAbs. An alanine scan of all five N-terminal domain (NTD) loops highlights a public epitope in the N1, N3, and N5 loops recognized by most NTD-binding nAbs. NTD mutations in variants of concern B.1.1.7 (alpha), B.1.351 (beta), B.1.1.28 (gamma), B.1.427/B.1.429 (epsilon), and B.1.617.2 (delta) impact spike expression and escape most NTD-targeting nAbs. Finally, B.1.351 and B.1.1.28 completely escape a potent ACE2 mimic. We anticipate that Spike Display will accelerate antigen design, deep scanning mutagenesis, and antibody epitope mapping for SARS-CoV-2 and other emerging viral threats.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Spike-Display</link>
                <guid>https://finkelsteinlab.org/papers/paper/Spike-Display</guid>
                <pubDate>2021-12-16T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Metagenomic Discovery of CRISPR-Associated Transposons</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;‘CRISPR-associated Tn7 transposons (CASTs) co-opt cas genes for RNA-guided transposition. CASTs are exceedingly rare in genomic databases; recent surveys have reported Tn7-like transposons that co-opt Type I-F, I-B, and V-K CRISPR effectors. Here, we expand the diversity of reported CAST systems via a bioinformatic search of metagenomic databases. We discover architectures for all known CASTs, including arrangements of the Cascade effectors, target homing modalities, and minimal V-K systems. We also describe families of CASTs that have co-opted the Type I-C and Type IV CRISPR-Cas systems. Our search for non-Tn7 CASTs identifies putative candidates that include a nuclease dead Cas12. These systems shed light on how CRISPR systems have coevolved with transposases and expand the programmable gene-editing toolkit.’&lt;/p&gt;

</description>
                <link>https://finkelsteinlab.org/papers/paper/CAST-metagenomic-discovery</link>
                <guid>https://finkelsteinlab.org/papers/paper/CAST-metagenomic-discovery</guid>
                <pubDate>2021-12-07T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Opfi: A Python package for identifying gene clusters in large genomics and metagenomics data sets</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Gene clusters are sets of co-localized, often contiguous genes that together perform specific functions, many of which are relevant to biotechnology. There is a need for software tools that can extract candidate gene clusters from vast amounts of available genomic data. Therefore, we developed Opfi: a modular pipeline for identification of arbitrary gene clusters in assembled genomic or metagenomic sequences. Opfi contains functions for annotation, de-deduplication, and visualization of putative gene clusters. It utilizes a customizable rule-based filtering approach for selection of candidate systems that adhere to user-defined criteria. Opfi is implemented in Python, and is available on the Python Package Index and on Bioconda (Grüning et al., 2018).&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Python-package-gene-clusters</link>
                <guid>https://finkelsteinlab.org/papers/paper/Python-package-gene-clusters</guid>
                <pubDate>2021-10-27T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Expression and characterization of SARS-CoV-2 Spike Proteins</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;The severe acute respiratory syndrome coronavirus 2 spike protein is a critical component of coronavirus disease 2019 vaccines and diagnostics and is also a therapeutic target. However, the spike protein is difficult to produce recombinantly because it is a large trimeric class I fusion membrane protein that is metastable and heavily glycosylated. We recently developed a prefusion-stabilized spike variant, termed HexaPro for six stabilizing proline substitutions, that can be expressed with a yield of &amp;gt;30 mg/L in ExpiCHO cells. This protocol describes an optimized workflow for expressing and biophysically characterizing rationally engineered spike proteins in Freestyle 293 and ExpiCHO cell lines. Although we focus on HexaPro, this protocol has been used to purify over a hundred different spike variants in our laboratories. We also provide guidance on expression quality control, long-term storage, and uses in enzyme-linked immunosorbent assays. The entire protocol, from transfection to biophysical characterization, can be completed in 7 d by researchers with basic tissue cell culture and protein purification expertise.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/SARS-CoV-2-Spike-proteins</link>
                <guid>https://finkelsteinlab.org/papers/paper/SARS-CoV-2-Spike-proteins</guid>
                <pubDate>2021-10-05T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Characterization of the T4 gp32-ssDNA complex by native, cross-linking, and ultraviolet photodissociation mass spectrometry</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Protein–DNA interactions play crucial roles in DNA replication across all living organisms. Here, we apply a suite of mass spectrometry (MS) tools to characterize a protein-ssDNA complex, T4 gp32·ssDNA, with results that both support previous studies and simultaneously uncover novel insight into this non-covalent biological complex. Native mass spectrometry of the protein reveals the co-occurrence of Zn-bound monomers and homodimers, while addition of differing lengths of ssDNA generates a variety of protein:ssDNA complex stoichiometries (1:1, 2:1, 3:1), indicating sequential association of gp32 monomers with ssDNA. Ultraviolet photodissociation (UVPD) mass spectrometry allows characterization of the binding site of the ssDNA within the protein monomer via analysis of holo ions, i.e. ssDNA-containing protein fragments, enabling interrogation of disordered regions of the protein which are inaccessible via traditional crystallographic techniques. Finally, two complementary cross-linking (XL) approaches, bottom-up analysis of the crosslinked complexes as well as MS1 analysis of the intact complexes, are used to showcase the absence of ssDNA binding with the intact cross-linked homodimer and to generate two homodimer gp32 model structures which highlight that the homodimer interface overlaps with the monomer ssDNA-binding site. These models suggest that the homodimer may function in a regulatory capacity by controlling the extent of ssDNA binding of the protein monomer. In sum, this work underscores the utility of a multi-faceted mass spectrometry approach for detailed investigation of non-covalent protein-DNA complexes.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/T4-gp32-ssDNA-complex</link>
                <guid>https://finkelsteinlab.org/papers/paper/T4-gp32-ssDNA-complex</guid>
                <pubDate>2021-09-23T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Disintegration promotes proto-spacer integration by the Cas1-Cas2 complex</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;‘Disintegration’—the reversal of transposon DNA integration at a target site—is regarded as an abortive off-pathway reaction. Here we challenge this view with a biochemical investigation of the mechanism of protospacer insertion by the Streptococcus pyogenes Cas1-Cas2 complex, which is mechanistically analogous to DNA transposition. In supercoiled target sites, the predominant outcome is the disintegration of one-ended insertions that fail to complete the second integration event. In linear target sites, one-ended insertions far outnumber complete proto-spacer insertions. The second insertion event is most often accompanied by disintegration of the first, mediated either by the 3’-hydroxyl exposed during integration or by water. One-ended integration intermediates may mature into complete spacer insertions via DNA repair pathways that are also involved in transposon mobility. We propose that disintegration-promoted integration is functionally important in the adaptive phase of CRISPR-mediated bacterial immunity, and perhaps in other analogous transposition reactions.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/cas1-cas2-complex</link>
                <guid>https://finkelsteinlab.org/papers/paper/cas1-cas2-complex</guid>
                <pubDate>2021-08-26T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Trajectory of Growth of SARS-CoV-2 Variants in Houston, Texas, January through May 2021 Based on 12,476 Genome Sequences</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;‘Certain genetic variants of SARS-CoV-2 are of substantial concern because they may be more transmissible or detrimentally alter the pandemic course and disease features in individual patients. We report SARS-CoV-2 genome sequences from 12,476 patients in the Houston Methodist healthcare system diagnosed from January 1 through May 31, 2021. Prevalence of the B.1.1.7 (Alpha) variant increased rapidly and caused 63%-90% of new cases in the latter half of May. Eleven B.1.1.7 genomes had an E484K replacement in spike protein, a change also identified in other SARS-CoV-2 lineages. Compared with non-B.1.1.7-infected patients, individuals with B.1.1.7 had a significantly lower cycle threshold (a proxy for higher virus load) and significantly higher hospitalization rate. Other variants (e.g., B.1.429 and B.1.427 (Epsilon), P.1 (Gamma), P.2 (Zeta), and R.1) also increased rapidly, although the magnitude was less than B.1.1.7. We identified 22 patients infected with B.1.617.1 (Kappa) or B.1.617.2 (Delta) variants; these patients had a high rate of hospitalization. Breakthrough cases (n=207) in fully vaccinated patients were caused by a heterogeneous array of virus genotypes, including many that are not currently designated variants of interest or concern. In the aggregate, our study delineates the trajectory of SARS-CoV-2 variants circulating in a major metropolitan area, documents B.1.1.7 as the major cause of new cases in Houston, and heralds the arrival of B.1.617 variants in the metroplex.’&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/SARS-CoV-2-variant-growth-trajectory</link>
                <guid>https://finkelsteinlab.org/papers/paper/SARS-CoV-2-variant-growth-trajectory</guid>
                <pubDate>2021-07-03T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Prevalent, protective, and convergent IgG recognition of SARS-CoV-2 non-RBD spike epitopes</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;The molecular composition and binding epitopes of the immunoglobulin G (IgG) antibodies that circulate in blood plasma following SARS-CoV-2 infection are unknown. Proteomic deconvolution of the IgG repertoire to the spike glycoprotein in convalescent subjects revealed that the response is directed predominantly (&amp;gt;80%) against epitopes residing outside the receptor-binding domain (RBD). In one subject, just four IgG lineages accounted for 93.5% of the response, including an N-terminal domain (NTD)-directed antibody that was protective against lethal viral challenge. Genetic, structural, and functional characterization of a multi-donor class of “public” antibodies revealed an NTD epitope that is recurrently mutated among emerging SARS-CoV-2 variants of concern. These data show that “public” NTD-directed and other non-RBD plasma antibodies are prevalent and have implications for SARS-CoV-2 protection and antibody escape.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/SARS-CoV-2-IgG</link>
                <guid>https://finkelsteinlab.org/papers/paper/SARS-CoV-2-IgG</guid>
                <pubDate>2021-05-04T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>CRISPR-guided programmable self-assembly of artificial virus-like nucleocapsids</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Designer virus-inspired proteins drive the manufacturing of more effective, safer gene-delivery systems and simpler models to study viral assembly. However, self-assembly of engineered viromimetic proteins on specific nucleic acid templates, a distinctive viral property, has proved difficult. Inspired by viral packaging signals, we harness the programmability of CRISPR-Cas12a to direct the nucleation and growth of a self-assembling synthetic polypeptide into virus-like particles (VLP) on specific DNA molecules. Positioning up to ten nuclease-dead Cas12a (dCas12a) proteins along a 48.5 kbp DNA template triggers particle growth and full DNA encapsidation at limiting polypeptide concentrations. Particle growth rate is further increased when dCas12a is dimerized with a polymerization silk-like domain. Such improved self-assembly efficiency allows for discrimination between cognate versus noncognate DNA templates by the synthetic polypeptide. CRISPR-guided VLPs will help to develop programmable bioinspired nanomaterials with applications in biotechnology as well as viromimetic scaffolds to improve our understanding of viral self-assembly.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/artificial-virus</link>
                <guid>https://finkelsteinlab.org/papers/paper/artificial-virus</guid>
                <pubDate>2021-03-17T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Sequence Analysis of 20,453 Severe Acute Respiratory Syndrome Coronavirus 2 Genomes from the Houston Metropolitan Area Identifies the Emergence and Widespread Distribution of Multiple Isolates of All Major Variants of Concern</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Since the beginning of the severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) pandemic,there has been international concern about the emergence of virus variants with mutations thatincrease transmissibility, enhance escape from the human immune response, or otherwise alter bio-logically important phenotypes. In late 2020, several variants of concern emerged globally, includingthe UK variant (B.1.1.7), the South Africa variant (B.1.351), Brazil variants (P.1 and P.2), and tworelated California variants of interest (B.1.429 and B.1.427). These variants are believed to haveenhanced transmissibility. For the South Africa and Brazil variants, there is evidence that mutations inspike protein permit it to escape from some vaccines and therapeutic monoclonal antibodies. On thebasis of our extensive genome sequencing program involving 20,453 coronavirus disease 2019 patientsamples collected from March 2020 to February 2021, we report identification of all six of these SARS-CoV-2 variants among Houston Methodist Hospital (Houston, TX) patients residing in the greatermetropolitan area. Although these variants are currently at relatively low frequency (aggregate of 1.1%)in the population, they are geographically widespread. Houston is thefirst city in the United States inwhich active circulation of all six current variants of concern has been documented by genomesequencing. As vaccine deployment accelerates, increased genomic surveillance of SARS-CoV-2 isessential to understanding the presence, frequency, and medical impact of consequential variants andtheir patterns and trajectory of dissemination.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/SARS-CoV-2-Houston-genome-surveillance</link>
                <guid>https://finkelsteinlab.org/papers/paper/SARS-CoV-2-Houston-genome-surveillance</guid>
                <pubDate>2021-03-16T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Inhibition of CRISPR-Cas12a DNA Targeting by Nucleosomes and Chromatin</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Genome engineering nucleases must access chromatinized DNA. Here, we investigate how AsCas12a cleaves DNA within human nucleosomes and phase-condensed nucleosome arrays. Using quantitative kinetics approaches, we show that dynamic nucleosome unwrapping regulates target accessibility to Cas12a and determines the extent to which both steps of binding—PAM recognition and R-loop formation—are inhibited by the nucleosome. Relaxing DNA wrapping within the nucleosome by reducing DNA bendability, adding histone modifications, or introducing target-proximal dCas9 enhances DNA cleavage rates over 10-fold. Unexpectedly, Cas12a readily cleaves internucleosomal linker DNA within chromatin-like, phase-separated nucleosome arrays. DNA targeting is reduced only ~5-fold due to neighboring nucleosomes and chromatin compaction. This work explains the observation that on-target cleavage within nucleosomes occurs less often than off-target cleavage within nucleosome-depleted genomic regions in cells. We conclude that nucleosome unwrapping regulates accessibility to CRISPR-Cas nucleases and propose that increasing nucleosome breathing dynamics will improve DNA targeting in eukaryotic cells.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Cas12a-nucleosomes</link>
                <guid>https://finkelsteinlab.org/papers/paper/Cas12a-nucleosomes</guid>
                <pubDate>2021-03-10T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Molecular Architecture of Early Dissemination and Massive Second Wave of the SARS-CoV-2 Virus in a Major Metropolitan Area</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;We sequenced the genomes of 5,085 severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) strains causing two coronavirus disease 2019 (COVID-19) disease waves in metropolitan Houston, TX, an ethnically diverse region with 7 million residents. The genomes were from viruses recovered in the earliest recognized phase of the pandemic in Houston and from viruses recovered in an ongoing massive second wave of infections. The virus was originally introduced into Houston many times independently. Virtually all strains in the second wave have a Gly614 amino acid replacement in the spike protein, a polymorphism that has been linked to increased transmission and infectivity. Patients infected with the Gly614 variant strains had significantly higher virus loads in the nasopharynx on initial diagnosis. We found little evidence of a significant relationship between virus genotype and altered virulence, stressing the linkage between disease severity, underlying medical conditions, and host genetics. Some regions of the spike protein—the primary target of global vaccine efforts—are replete with amino acid replacements, perhaps indicating the action of selection. We exploited the genomic data to generate defined single amino acid replacements in the receptor binding domain of spike protein that, importantly, produced decreased recognition by the neutralizing monoclonal antibody CR3022. Our report represents the first analysis of the molecular architecture of SARS-CoV-2 in two infection waves in a major metropolitan region. The findings will help us to understand the origin, composition, and trajectory of future infection waves and the potential effect of the host immune response and therapeutic maneuvers on SARS-CoV-2 evolution.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Second-wave-SARS-CoV-2</link>
                <guid>https://finkelsteinlab.org/papers/paper/Second-wave-SARS-CoV-2</guid>
                <pubDate>2020-10-30T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Massively parallel kinetic profiling of natural and engineered CRISPR nucleases</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Engineered SpCas9s and AsCas12a cleave fewer off-target genomic sites than wild-type (wt) Cas9. However, understanding their fidelity, mechanisms and cleavage outcomes requires systematic profiling across mispaired target DNAs. Here we describe NucleaSeq-nuclease digestion and deep sequencing-a massively parallel platform that measures the cleavage kinetics and time-resolved cleavage products for over 10,000 targets containing mismatches, insertions and deletions relative to the guide RNA. Combining cleavage rates and binding specificities on the same target libraries, we benchmarked five SpCas9 variants and AsCas12a. A biophysical model built from these data sets revealed mechanistic insights into off-target cleavage. Engineered Cas9s, especially Cas9-HF1, dramatically increased cleavage specificity but not binding specificity compared to wtCas9. Surprisingly, AsCas12a cleavage specificity differed little from that of wtCas9. Initial DNA cleavage sites and end trimming varied by nuclease, guide RNA and the positions of mispaired nucleotides. More broadly, NucleaSeq enables rapid, quantitative and systematic comparisons of specificity and cleavage outcomes across engineered and natural nucleases.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/nucleaseq</link>
                <guid>https://finkelsteinlab.org/papers/paper/nucleaseq</guid>
                <pubDate>2020-09-07T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Epigenetic cell fate in Candida albicans is controlled by transcription factor condensates acting at super-enhancer-like elements</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Cell identity in eukaryotes is controlled by transcriptional regulatory networks that define cell-type-specific gene expression. In the opportunistic fungal pathogen Candida albicans, transcriptional regulatory networks regulate epigenetic switching between two alternative cell states, ‘white’ and ‘opaque’, that exhibit distinct host interactions. In the present study, we reveal that the transcription factors (TFs) regulating cell identity contain prion-like domains (PrLDs) that enable liquid–liquid demixing and the formation of phase-separated condensates. Multiple white–opaque TFs can co-assemble into complex condensates as observed on single DNA molecules. Moreover, heterotypic interactions between PrLDs support the assembly of multifactorial condensates at a synthetic locus within live eukaryotic cells. Mutation of the Wor1 TF revealed that substitution of acidic residues in the PrLD blocked its ability to phase separate and co-recruit other TFs in live cells, as well as its function in C. albicans cell fate determination. Together, these studies reveal that PrLDs support the assembly of TF complexes that control fungal cell identity and highlight parallels with the ‘super-enhancers’ that regulate mammalian cell fate.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/epigenetic-cell-fate</link>
                <guid>https://finkelsteinlab.org/papers/paper/epigenetic-cell-fate</guid>
                <pubDate>2020-07-27T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Structure-based Design of Prefusion-stabilized SARS-CoV-2 Spikes</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;The COVID-19 pandemic has led to accelerated efforts to develop therapeutics and vaccines. A key target of these efforts is the spike (S) protein, which is metastable and difficult to produce recombinantly. Here, we characterized 100 structure-guided spike designs and identified 26 individual substitutions that increased protein yields and stability. Testing combinations of beneficial substitutions resulted in the identification of HexaPro, a variant with six beneficial proline substitutions exhibiting ~10-fold higher expression than its parental construct and the ability to withstand heat stress, storage at room temperature, and three freeze-thaw cycles. A 3.2 Å-resolution cryo-EM structure of HexaPro confirmed that it retains the prefusion spike conformation. High-yield production of a stabilized prefusion spike protein will accelerate the development of vaccines and serological diagnostics for SARS-CoV-2.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/SARS-CoV-2-Structure</link>
                <guid>https://finkelsteinlab.org/papers/paper/SARS-CoV-2-Structure</guid>
                <pubDate>2020-07-23T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>HEDGES error-correcting code for DNA storage corrects indels and allows sequence constraints</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Synthetic DNA is rapidly emerging as a durable, high-density information storage platform. A major challenge for DNA-based information encoding strategies is the high rate of errors that arise during DNA synthesis and sequencing. Here, we describe the HEDGES (Hash Encoded, Decoded by Greedy Exhaustive Search) error-correcting code that repairs all three basic types of DNA errors: insertions, deletions, and substitutions. HEDGES also converts unresolved or compound errors into substitutions, restoring synchronization for correction via a standard Reed-Solomon outer code that is interleaved across strands. Moreover, HEDGES can incorporate a broad class of user-defined sequence constraints, such as avoiding excess repeats, or too high or too low windowed guanine-cytosine (GC) content. We test our code both via in silico simulations and with synthesized DNA. From its measured performance, we develop a statistical model applicable to much larger datasets. Predicted performance indicates the possibility of error-free recovery of petabyte- and exabyte-scale data from DNA degraded with as much as 10% errors. As the cost of DNA synthesis and sequencing continues to drop, we anticipate that HEDGES will find applications in large-scale error-free information encoding.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/HEDGES</link>
                <guid>https://finkelsteinlab.org/papers/paper/HEDGES</guid>
                <pubDate>2020-07-16T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>RADX condenses single-stranded DNA to antagonize RAD51 loading</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;RADX is a mammalian single-stranded DNA-binding protein that stabilizes telomeres and stalled replication forks. Cellular biology studies have shown that the balance between RADX and Replication Protein A (RPA) is critical for DNA replication integrity. RADX is also a negative regulator of RAD51-mediated homologous recombination at stalled forks. However, the mechanism of RADX acting on DNA and its interactions with RPA and RAD51 are enigmatic. Using single-molecule imaging of the key proteins in vitro, we reveal that RADX condenses ssDNA filaments, even when the ssDNA is coated with RPA at physiological protein ratios. RADX compacts RPA-coated ssDNA filaments via higher-order assemblies that can capture ssDNA in trans. Furthermore, RADX blocks RPA displacement by RAD51 and prevents RAD51 loading on ssDNA. Our results indicate that RADX is an ssDNA condensation protein that inhibits RAD51 filament formation and may antagonize other ssDNA-binding proteins on RPA-coated ssDNA.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/RADX-condensation</link>
                <guid>https://finkelsteinlab.org/papers/paper/RADX-condensation</guid>
                <pubDate>2020-07-04T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>DNA-dependent Protein Kinase Promotes DNA End Processing by MRN and CtIP</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;The repair of DNA double-strand breaks occurs through nonhomologous end joining or homologous recombination in vertebrate cells-a choice that is thought to be decided by a competition between DNA-dependent protein kinase (DNA-PK) and the Mre11/Rad50/Nbs1 (MRN) complex but is not well understood. Using ensemble biochemistry and single-molecule approaches, here, we show that the MRN complex is dependent on DNA-PK and phosphorylated CtIP to perform efficient processing and resection of DNA ends in physiological conditions, thus eliminating the competition model. Endonucleolytic removal of DNA-PK-bound DNA ends is also observed at double-strand break sites in human cells. The involvement of DNA-PK in MRN-mediated end processing promotes an efficient and sequential transition from nonhomologous end joining to homologous recombination by facilitating DNA-PK removal.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/pkcs-end-processing</link>
                <guid>https://finkelsteinlab.org/papers/paper/pkcs-end-processing</guid>
                <pubDate>2020-01-08T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Human cohesin compacts DNA by loop extrusion</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Cohesin is a chromosome-bound multisubunit ATPase complex. Following its loading onto chromosomes, cohesin generates chromosome loops to regulate chromosome functions. It has been suggested that cohesin organizes the genome via loop extrusion, but direct evidence is lacking. Here, we use single-molecule imaging to show that recombinant human cohesin-NIPBL complex compacts both naked and nucleosome-bound DNA by extruding DNA loops. DNA compaction by cohesin requires ATP hydrolysis, and is force-sensitive. This compaction is processive over tens of kilobases (kb) at an average rate of 0.5 kb per second. Compaction of double-tethered DNA suggests that a cohesin dimer extrudes DNA loops bidirectionally. Our results establish cohesin-NIPBL as an ATP-driven molecular machine capable of loop extrusion.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/cohesin-compaction</link>
                <guid>https://finkelsteinlab.org/papers/paper/cohesin-compaction</guid>
                <pubDate>2019-12-13T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Systematic discovery of endogenous human ribonucleoprotein complexes</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;RNA-binding proteins (RBPs) play essential roles in biology and are frequently associated with human disease. Although recent studies have systematically identified individual RNA-binding proteins, their higher-order assembly into ribonucleoprotein (RNP) complexes has not been systematically investigated. Here, we describe a proteomics method for systematic identification of RNP complexes in human cells. We identify 1,428 protein complexes that associate with RNA, indicating that more than 20% of known human protein complexes contain RNA. To explore the role of RNA in the assembly of each complex, we identify complexes that dissociate, change composition, or form stable protein-only complexes in the absence of RNA. We use our method to systematically identify cell-type-specific RNA-associated proteins in mouse embryonic stem cells and finally, distribute our resource, rna.MAP, in an easy-to-use online interface (rna.proteincomplexes.org). Our system thus provides a methodology for explorations across human tissues, disease states, and throughout all domains of life.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/discovery-of-rnp-complexes</link>
                <guid>https://finkelsteinlab.org/papers/paper/discovery-of-rnp-complexes</guid>
                <pubDate>2019-10-29T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Retrons and their applications in genome engineering</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Precision genome editing technologies have transformed modern biology. These technologies have arisen from the redirection of natural biological machinery, such as bacteriophage lambda proteins for recombineering and CRISPR nucleases for eliciting site-specific double-strand breaks. Less well-known is a widely distributed class of bacterial retroelements, retrons, that employ specialized reverse transcriptases to produce noncoding intracellular DNAs. Retrons’ natural function and mechanism of genetic transmission have remained enigmatic. However, recent studies have harnessed their ability to produce DNA in situ for genome editing and evolution. This review describes retron biology and function in both natural and synthetic contexts. We also highlight areas that require further study to advance retron-based precision genome editing platforms.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Retron-applications</link>
                <guid>https://finkelsteinlab.org/papers/paper/Retron-applications</guid>
                <pubDate>2019-10-10T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Functional metagenomics-guided discovery of potent Cas9 inhibitors in the human microbiome</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;CRISPR-Cas systems protect bacteria and archaea from phages and other mobile genetic elements, which use small anti-CRISPR (Acr) proteins to overcome CRISPR-Cas immunity. Because Acrs are challenging to identify, their natural diversity and impact on microbial ecosystems are underappreciated. To overcome this discovery bottleneck, we developed a high-throughput functional selection to isolate ten DNA fragments from human oral and fecal metagenomes that inhibit Streptococcus pyogenes Cas9 (SpyCas9) in Escherichia coli. The most potent Acr from this set, AcrIIA11, was recovered from a Lachnospiraceae phage. We found that AcrIIA11 inhibits SpyCas9 in bacteria and in human cells. AcrIIA11 homologs are distributed across diverse bacteria; many distantly-related homologs inhibit both SpyCas9 and a divergent Cas9 from Treponema denticola. We find that AcrIIA11 antagonizes SpyCas9 using a different mechanism than other previously characterized Type II-A Acrs. Our study highlights the power of functional selection to uncover widespread Cas9 inhibitors within diverse microbiomes.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/Cas9-inhibitors</link>
                <guid>https://finkelsteinlab.org/papers/paper/Cas9-inhibitors</guid>
                <pubDate>2019-09-10T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>RPA phosphorylation inhibits DNA resection</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Genetic recombination in all kingdoms of life initiates when helicases and nucleases process (resect) the free DNA ends to expose single-stranded DNA (ssDNA) overhangs. Resection regulation in bacteria is programmed by a DNA sequence, but a general mechanism limiting resection in eukaryotes has remained elusive. Using single-molecule imaging of reconstituted human DNA repair factors, we identify phosphorylated RPA (pRPA) as a negative resection regulator. Bloom’s syndrome (BLM) helicase together with exonuclease 1 (EXO1) and DNA2 nucleases catalyze kilobase-length DNA resection on nucleosome-coated DNA. The resulting ssDNA is rapidly bound by RPA, which further stimulates DNA resection. RPA is phosphorylated during resection as part of the DNA damage response (DDR). Remarkably, pRPA inhibits DNA resection in cellular assays and in vitro via inhibition of BLM helicase. pRPA suppresses BLM initiation at DNA ends and promotes the intrinsic helicase strand-switching activity. These findings establish that pRPA provides a feedback loop between DNA resection and the DDR.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/rpa-phosphorylation</link>
                <guid>https://finkelsteinlab.org/papers/paper/rpa-phosphorylation</guid>
                <pubDate>2019-07-11T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Poly(ADP-ribose) polymerase-1 antagonizes DNA resection at double-strand breaks</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;PARP-1 is rapidly recruited and activated by DNA double-strand breaks (DSBs). Upon activation, PARP-1 synthesizes a structurally complex polymer composed of ADP-ribose units that facilitates local chromatin relaxation and the recruitment of DNA repair factors. Here, we identify a function for PARP-1 in DNA DSB resection. Remarkably, inhibition of PARP-1 leads to hyperresected DNA DSBs. We show that loss of PARP-1 and hyperresection are associated with loss of Ku, 53BP1 and RIF1 resection inhibitors from the break site. DNA curtains analysis show that EXO1-mediated resection is blocked by PARP-1. Furthermore, PARP-1 abrogation leads to increased DNA resection tracks and an increase of homologous recombination in cellulo. Our results, therefore, place PARP-1 activation as a critical early event for DNA DSB repair activation and regulation of resection. Hence, our work has direct implications for the clinical use and effectiveness of PARP inhibition, which is prescribed for the treatment of various malignancies.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/adp-ribose-polymerase-1</link>
                <guid>https://finkelsteinlab.org/papers/paper/adp-ribose-polymerase-1</guid>
                <pubDate>2019-07-04T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Purification and Biophysical Characterization of the Mre11-Rad50-Nbs1 Complex.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;The Mre11-Rad50-Nbs1 (MRN) complex coordinates the repair of DNA double-strand breaks, replication fork restart, meiosis, class-switch recombination, and telomere maintenance. As such, MRN is an essential molecular machine that has homologs in all organisms of life, from bacteriophage to humans. In human cells, MRN is a &amp;gt;500 kDa multifunctional complex that encodes DNA binding, ATPase, and both endonuclease and exonuclease activities. MRN also forms larger assemblies and interacts with multiple DNA repair and replication factors. The enzymatic properties of MRN have been the subject of intense research for over 20 years, and more recently, single-molecule biophysics studies are beginning to probe its many biochemical activities. Here, we describe the methods used to overexpress, fluorescently label, and visualize MRN and its activities on single molecules of DNA.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/mre1-rad50-nbs1-complex</link>
                <guid>https://finkelsteinlab.org/papers/paper/mre1-rad50-nbs1-complex</guid>
                <pubDate>2019-05-31T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Assembling the Human Resectosome on DNA Curtains.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;DNA double-strand breaks (DSBs) are a potentially lethal DNA lesions that disrupt both the physical and genetic continuity of the DNA duplex. Homologous recombination (HR) is a universally conserved genome maintenance pathway that initiates via nucleolytic processing of the broken DNA ends (resection). Eukaryotic DNA resection is catalyzed by the resectosome—a multicomponent molecular machine consisting of the nucleases DNA2 or Exonuclease 1 (EXO1), Bloom’s helicase (BLM), the MRE11-RAD50-NBS1 (MRN) complex, and additional regulatory factors. Here, we describe methods for purification and single-molecule imaging and analysis of EXO1, DNA2, and BLM. We also describe how to adapt resection assays to the high-throughput single-molecule DNA curtain assay. By organizing hundreds of individual molecules on the surface of a microfluidic flowcell, DNA curtains visualize protein complexes with the required spatial and temporal resolution to resolve the molecular choreography during critical DNA-processing reactions.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/human-resectosome</link>
                <guid>https://finkelsteinlab.org/papers/paper/human-resectosome</guid>
                <pubDate>2019-05-25T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Sortase-mediated fluorescent labeling of CRISPR complexes</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;
&lt;p&gt;Fluorescent labeling of proteins is a critical requirement for single-molecule imaging studies. Many protein labeling strategies require harsh conditions or large epitopes that can inactivate the target protein, either by decreasing the protein’s enzymatic activity or by blocking protein–protein interactions. Here, we provide a detailed protocol to efficiently label CRISPR–Cas complexes with a small fluorescent peptide via sortase-mediated transpeptidation. The sortase tag consists of just a few amino acids that are specifically recognized at either the N- or the C-terminus, making this strategy advantageous when the protein is part of a larger complex. Sortase is active at high ionic strength, 4°C, and with a broad range of organic fluorophores. We discuss the design, optimization, and single-molecule fluorescent imaging of CRISPR–Cas complexes on DNA curtains. Sortase-mediated transpeptidation is a versatile addition to the protein labeling toolkit.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/sortase-labeling</link>
                <guid>https://finkelsteinlab.org/papers/paper/sortase-labeling</guid>
                <pubDate>2018-12-17T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Intrinsically disordered regions regulate both catalytic and noncatalytic activities of the MutL&#945; mismatch repair complex.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Intrinsically disordered regions (IDRs) are present in at least 30% of the eukaryotic proteome and are enriched in chromatin-associated proteins. Using a combination of genetics, biochemistry and single-molecule biophysics, we characterize how IDRs regulate the functions of the yeast MutLα (Mlh1–Pms1) mismatch repair (MMR) complex. Shortening or scrambling the IDRs in both subunits ablates MMR in vivo. Mlh1–Pms1 complexes with shorter IDRs that disrupt MMR retain wild-type DNA binding affinity but are impaired for diffusion on both naked and nucleosome-coated DNA. Moreover, the IDRs also regulate the adenosine triphosphate hydrolysis and nuclease activities that are encoded in the structured N- and C-terminal domains of the complex. This combination of phenotypes underlies the catastrophic MMR defect seen with the mutant MutLα in vivo. More broadly, this work highlights an unanticipated multi-functional role for IDRs in regulating both facilitated diffusion on chromatin and nucleolytic processing of a DNA substrate&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/IDR-MutL-mismatch-repair</link>
                <guid>https://finkelsteinlab.org/papers/paper/IDR-MutL-mismatch-repair</guid>
                <pubDate>2018-12-12T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Phage Mu Gam protein promotes NHEJ in concert with Escherichia coli ligase</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;The Gam protein of transposable phage Mu is an ortholog of eukaryotic and bacterial Ku proteins, which carry out nonhomologous DNA end joining (NHEJ) with the help of dedicated ATP-dependent ligases. Many bacteria carry Gam homologs associated with either complete or defective Mu-like prophages, but the role of Gam in the life cycle of Mu or in bacteria is unknown. Here, we show that MuGam is part of a two-component bacterial NHEJ DNA repair system. Ensemble and single-molecule experiments reveal that MuGam binds to DNA ends, slows the progress of RecBCD exonuclease, promotes binding of NAD+-dependent Escherichia coli ligase A, and stimulates ligation. In vivo, Gam equally promotes both precise and imprecise joining of restriction enzyme-digested linear plasmid DNA, as well as of a double-strand break (DSB) at an engineered I-SceI site in the chromosome. Cell survival after the induced DSB is specific to the stationary phase. In long-term growth competition experiments, particularly upon treatment with a clastogen, the presence of gam in a Mu lysogen confers a distinct fitness advantage. We also show that the role of Gam in the life of phage Mu is related not to transposition but to protection of genomic Mu copies from RecBCD when viral DNA packaging begins. Taken together, our data show that MuGam provides bacteria with an NHEJ system and suggest that the resulting fitness advantage is a reason that bacteria continue to retain the gam gene in the absence of an intact prophage.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/mu-gam-nhej</link>
                <guid>https://finkelsteinlab.org/papers/paper/mu-gam-nhej</guid>
                <pubDate>2018-11-28T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Assembly and Translocation of a CRISPR-Cas Primed Acquisition Complex.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;CRISPR-Cas systems confer an adaptive immunity against viruses. Following viral injection, Cas1-Cas2 integrates segments of the viral genome (spacers) into the CRISPR locus. In type I CRISPR-Cas systems, efficient “primed” spacer acquisition and viral degradation (interference) require both the Cascade complex and the Cas3 helicase/nuclease. Here, we present single-molecule characterization of the Thermobifida fusca (Tfu) primed acquisition complex (PAC). We show that TfuCascade rapidly samples non-specific DNA via facilitated one-dimensional diffusion. Cas3 loads at target-bound Cascade and the Cascade/Cas3 complex translocates via a looped DNA intermediate. Cascade/Cas3 complexes stall at diverse protein roadblocks, resulting in a double strand break at the stall site. In contrast, Cas1-Cas2 samples DNA transiently via 3D collisions. Moreover, Cas1-Cas2 associates with Cascade and translocates with Cascade/Cas3, forming the PAC. PACs can displace different protein roadblocks, suggesting a mechanism for long-range spacer acquisition. This work provides a molecular basis for the coordinated steps in CRISPR-based adaptive immunity.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/PAC-Cell</link>
                <guid>https://finkelsteinlab.org/papers/paper/PAC-Cell</guid>
                <pubDate>2018-10-18T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Assessing Protein Dynamics on Low-Complexity Single-Stranded DNA Curtains.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Single-stranded DNA (ssDNA) is a critical intermediate in all DNA transactions. As ssDNA is more flexible than double-stranded (ds)DNA, interactions with ssDNA-binding proteins (SSBs) may significantly compact or elongate the ssDNA molecule. Here, we develop and characterize low-complexity ssDNA curtains, a high-throughput single-molecule assay to simultaneously monitor protein binding and correlated ssDNA length changes on supported lipid bilayers. Low-complexity ssDNA is generated via rolling circle replication of short synthetic oligonucleotides, permitting control over the sequence composition and secondary structure- forming propensity. One end of the ssDNA is functionalized with a biotin, while the second is fluorescently labeled to track the overall DNA length. Arrays of ssDNA molecules are organized at microfabricated barriers for high-throughput single-molecule imaging. Using this assay, we demonstrate that E. coli SSB drastically and reversibly compacts ssDNA templates upon changes in NaCl concentration. We also examine the interactions between a phosphomimetic RPA and ssDNA. Our results indicate that RPA- ssDNA interactions are not significantly altered by these modifications. We anticipate low-complexity ssDNA curtains will be broadly useful for single-molecule studies of ssDNA-binding proteins involved in DNA replication, transcription and repair.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/low-complexity-ssdna-curtains</link>
                <guid>https://finkelsteinlab.org/papers/paper/low-complexity-ssdna-curtains</guid>
                <pubDate>2018-08-02T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Kinetic Basis for DNA Target Specificity of CRISPR-Cas12a.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Class 2 CRISPR-Cas nucleases are programmable genome editing tools with promising applications in human health and disease. However, DNA cleavage at off-target sites that resemble the target sequence is a pervasive problem that remains poorly understood mechanistically. Here, we use quantitative kinetics to dissect the reaction steps of DNA targeting by Acidaminococcus sp Cas12a (also known as Cpf1). We show that Cas12a binds DNA tightly in two kinetically separable steps. Protospacer-adjacent motif (PAM) recognition is followed by rate-limiting R-loop propagation, leading to inevitable DNA cleavage of both strands. Despite functionally irreversible binding, Cas12a discriminates strongly against mismatches along most of the DNA target sequence. This result implies substantial reversibility during R-loop formation-a late transition state-and defies common descriptions of a “seed” region. Our results provide a quantitative basis for the DNA cleavage patterns measured in vivo and observations of greater reported target specificity for Cas12a than for the Cas9 nuclease.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/cas12a-kinetics</link>
                <guid>https://finkelsteinlab.org/papers/paper/cas12a-kinetics</guid>
                <pubDate>2018-07-24T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Noncoding RNA-nucleated heterochromatin spreading is intrinsically labile and requires accessory elements for epigenetic stability.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;The heterochromatin spreading reaction is a central contributor to the formation of gene-repressive structures, which are re-established with high positional precision, or fidelity, following replication. How the spreading reaction contributes to this fidelity is not clear. To resolve the origins of stable inheritance of repression, we probed the intrinsic character of spreading events in fission yeast using a system that quantitatively describes the spreading reaction in live single cells. We show that spreading triggered by noncoding RNA-nucleated elements is stochastic, multimodal, and fluctuates dynamically across time. This lack of stability correlates with high histone turnover. At the mating type locus, this unstable behavior is restrained by an accessory cis-acting element REIII, which represses histone turnover. Further, REIII safeguards epigenetic memory against environmental perturbations. Our results suggest that the most prevalent type of spreading, driven by noncoding RNA-nucleators, is epigenetically unstable and requires collaboration with accessory elements to achieve high fidelity.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/heterochromatin-spreading-epigenetics</link>
                <guid>https://finkelsteinlab.org/papers/paper/heterochromatin-spreading-epigenetics</guid>
                <pubDate>2018-07-18T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Indel-correcting DNA barcodes for high-throughput sequencing.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Many large-scale, high-throughput experiments use DNA barcodes, short DNA sequences prepended to DNA libraries, for identification of individuals in pooled biomolecule populations. However, DNA synthesis and sequencing errors confound the correct interpretation of observed barcodes and can lead to significant data loss or spurious results. Widely used error-correcting codes borrowed from computer science (e.g., Hamming, Levenshtein codes) do not properly account for insertions and deletions (indels) in DNA barcodes, even though deletions are the most common type of synthesis error. Here, we present and experimentally validate filled/truncated right end edit (FREE) barcodes, which correct substitution, insertion, and deletion errors, even when these errors alter the barcode length. FREE barcodes are designed with experimental considerations in mind, including balanced guanine-cytosine (GC) content, minimal homopolymer runs, and reduced internal hairpin propensity. We generate and include lists of barcodes with different lengths and error correction levels that may be useful in diverse high-throughput applications, including &amp;gt;106 single-error-correcting 16-mers that strike a balance between decoding accuracy, barcode length, and library size. Moreover, concatenating two or more FREE codes into a single barcode increases the available barcode space combinatorially, generating lists with &amp;gt;1015 error-correcting barcodes. The included software for creating barcode libraries and decoding sequenced barcodes is efficient and designed to be user-friendly for the general biology community.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/dna-barcodes</link>
                <guid>https://finkelsteinlab.org/papers/paper/dna-barcodes</guid>
                <pubDate>2018-07-03T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Coordination of Rad1-Rad10 interactions with Msh2-Msh3, Saw1 and RPA is essential for functional 3' non-homologous tail removal.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Double strand DNA break repair (DSBR) comprises multiple pathways. A subset of DSBR pathways, including single strand annealing, involve intermediates with 3’ non-homologous tails that must be removed to complete repair. In Saccharomyces cerevisiae, Rad1-Rad10 is the structure-specific endonuclease that cleaves the tails in 3’ non-homologous tail removal (3’ NHTR). Rad1-Rad10 is also an essential component of the nucleotide excision repair (NER) pathway. In both cases, Rad1-Rad10 requires protein partners for recruitment to the relevant DNA intermediate. Msh2-Msh3 and Saw1 recruit Rad1-Rad10 in 3’ NHTR; Rad14 recruits Rad1-Rad10 in NER. We created two rad1 separation-of-function alleles, rad1R203A,K205A and rad1R218A; both are defective in 3’ NHTR but functional in NER. In vitro, rad1R203A,K205A was impaired at multiple steps in 3’ NHTR. The rad1R218A in vivo phenotype resembles that of msh2- or msh3-deleted cells; recruitment of rad1R218A-Rad10 to recombination intermediates is defective. Interactions among rad1R218A-Rad10 and Msh2-Msh3 and Saw1 are altered and rad1R218A-Rad10 interactions with RPA are compromised. We propose a model in which Rad1-Rad10 is recruited and positioned at the recombination intermediate through interactions, between Saw1 and DNA, Rad1-Rad10 and Msh2-Msh3, Saw1 and Msh2-Msh3 and Rad1-Rad10 and RPA. When any of these interactions is altered, 3’ NHTR is impaired.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/rad-msh-saw-rpa</link>
                <guid>https://finkelsteinlab.org/papers/paper/rad-msh-saw-rpa</guid>
                <pubDate>2018-06-01T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Distinct roles of XPF-ERCC1 and Rad1-Rad10-Saw1 in replication-coupled and uncoupled inter-strand crosslink repair.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Yeast Rad1-Rad10 (XPF-ERCC1 in mammals) incises UV, oxidation, and cross-linking agent-induced DNA lesions, and contributes to multiple DNA repair pathways. To determine how Rad1-Rad10 catalyzes inter-strand crosslink repair (ICLR), we examined sensitivity to ICLs from yeast deleted for SAW1 and SLX4, which encode proteins that interact physically with Rad1-Rad10 and bind stalled replication forks. Saw1, Slx1, and Slx4 are critical for replication-coupled ICLR in mus81 deficient cells. Two rad1 mutations that disrupt interactions between Rpa1 and Rad1-Rad10 selectively disable non-nucleotide excision repair (NER) function, but retain UV lesion repair. Mutations in the analogous region of XPF also compromised XPF interactions with Rpa1 and Slx4, and are proficient in NER but deficient in ICLR and direct repeat recombination. We propose that Rad1-Rad10 makes distinct contributions to ICLR depending on cell cycle phase: in G1, Rad1-Rad10 removes ICL via NER, whereas in S/G2, Rad1-Rad10 facilitates NER-independent replication-coupled ICLR.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/crosslink-repair-proteins</link>
                <guid>https://finkelsteinlab.org/papers/paper/crosslink-repair-proteins</guid>
                <pubDate>2018-05-23T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>A Microfluidic Device for Massively Parallel, Whole-lifespan Imaging of Single Fission Yeast Cells.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Whole-lifespan single-cell analysis has greatly increased our understanding of fundamental cellular processes such as cellular aging. To observe individual cells across their entire lifespan, all progeny must be removed from the growth medium, typically via manual microdissection. However, manual microdissection is laborious, low-throughput, and incompatible with fluorescence microscopy. Here, we describe assembly and operation of the multiplexed-Fission Yeast Lifespan Microdissector (multFYLM), a high-throughput microfluidic device for rapidly acquiring single-cell whole-lifespan imaging. multFYLM captures approximately one thousand rod-shaped fission yeast cells from up to six different genetic backgrounds or treatment regimens. The immobilized cells are fluorescently imaged for over a week, while the progeny cells are removed from the device. The resulting datasets yield high-resolution multi-channel images that record each cell’s replicative lifespan. We anticipate that the multFYLM will be broadly applicable for single-cell whole-lifespan studies in the fission yeast (Schizosaccharomyces pombe) and other symmetrically-dividing unicellular organisms.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/multfylm-protocol</link>
                <guid>https://finkelsteinlab.org/papers/paper/multfylm-protocol</guid>
                <pubDate>2018-04-05T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Single-molecule imaging reveals how Mre11-Rad50-Nbs1 initiates DNA break repair</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;DNA double-strand break (DSB) repair is essential for maintaining our genomes. Mre11-Rad50-Nbs1 (MRN) and Ku70-Ku80 (Ku) direct distinct DSB repair pathways, but the interplay between these complexes at a DSB remains unclear. Here, we use high-throughput single-molecule microscopy to show that MRN searches for free DNA ends by one-dimensional facilitated diffusion, even on nucleosome-coated DNA. Rad50 binds homoduplex DNA and promotes facilitated diffusion, whereas Mre11 is required for DNA end recognition and nuclease activities. MRN gains access to occluded DNA ends by removing Ku or other DNA adducts via an Mre11-dependent nucleolytic reaction. Next, MRN loads exonuclease 1 (Exo1) onto the free DNA ends to initiate DNA resection. In the presence of replication protein A (RPA), MRN acts as a processivity factor for Exo1, retaining the exonuclease on DNA for long-range resection. Our results provide a mechanism for how MRN promotes homologous recombination on nucleosome-coated DNA.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/mrn-dna-curtains</link>
                <guid>https://finkelsteinlab.org/papers/paper/mrn-dna-curtains</guid>
                <pubDate>2017-09-07T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Eukaryotic resectosomes: A single-molecule perspective.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;DNA double-strand breaks (DSBs) disrupt the physical and genetic continuity of the genome. If unrepaired, DSBs can lead to cellular dysfunction and malignant transformation. Homologous recombination (HR) is a universally conserved DSB repair mechanism that employs the information in a sister chromatid to catalyze error-free DSB repair. To initiate HR, cells assemble the resectosome: a multi-protein complex composed of helicases, nucleases, and regulatory proteins. The resectosome nucleolytically degrades (resects) the free DNA ends for downstream homologous recombination. Several decades of intense research have identified the core resectosome components in eukaryotes, archaea, and bacteria. More recently, these proteins have been characterized via single-molecule approaches. Here, we focus on recent single-molecule studies that have begun to unravel how nucleases, helicases, processivity factors, and other regulatory proteins dictate the extent and efficiency of DNA resection in eukaryotic cells. We conclude with a discussion of outstanding questions that can be addressed via single-molecule approaches.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/euk-resectosome-single-molecule-review</link>
                <guid>https://finkelsteinlab.org/papers/paper/euk-resectosome-single-molecule-review</guid>
                <pubDate>2017-08-01T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Massively Parallel Biophysical Analysis of CRISPR-Cas Complexes on Next Generation Sequencing Chips</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;CRISPR-Cas nucleoproteins target foreign DNA via base pairing with a crRNA. However, a quantitative description of protein binding and nuclease activation at off-target DNA sequences remains elusive. Here, we describe a chip-hybridized association-mapping platform (CHAMP) that repurposes next-generation sequencing chips to simultaneously measure the interactions between proteins and ∼10^7 unique DNA sequences. Using CHAMP, we provide the first comprehensive survey of DNA recognition by a type I-E CRISPR-Cas (Cascade) complex and Cas3 nuclease. Analysis of mutated target sequences and human genomic DNA reveal that Cascade recognizes an extended protospacer adjacent motif (PAM). Cascade recognizes DNA with a surprising 3-nt periodicity. The identity of the PAM and the PAM-proximal nucleotides control Cas3 recruitment by releasing the Cse1 subunit. These findings are used to develop a model for the biophysical constraints governing off-target DNA binding. CHAMP provides a framework for high-throughput, quantitative analysis of protein-DNA interactions on synthetic and genomic DNA.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/champ-cascade</link>
                <guid>https://finkelsteinlab.org/papers/paper/champ-cascade</guid>
                <pubDate>2017-06-29T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Efficient modification of λ-DNA substrates for single-molecule studies.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Single-molecule studies of protein-nucleic acid interactions frequently require site-specific modification of long DNA substrates. The bacteriophage λ is a convenient source of high quality long (48.5 kb) DNA. However, introducing specific sequences, tertiary structures, and chemical modifications into λ-DNA remains technically challenging. Most current approaches rely on multi-step ligations with low yields and incomplete products. Here, we describe a molecular toolkit for rapid preparation of modified λ-DNA. A set of PCR cassettes facilitates the introduction of recombinant DNA sequences into the λ-phage genome with 90-100% yield. Extrahelical structures and chemical modifications can be inserted at user-defined sites via an improved nicking enzyme-based strategy. As a proof-of-principle, we explore the interactions of S. cerevisiae Proliferating Cell Nuclear Antigen (yPCNA) with modified DNA sequences and structures incorporated within λ-DNA. Our results demonstrate that S. cerevisiae Replication Factor C (yRFC) can load yPCNA onto 5’-ssDNA flaps, (CAG)13 triplet repeats, and homoduplex DNA. However, yPCNA remains trapped on the (CAG)13 structure, confirming a proposed mechanism for triplet repeat expansion. We anticipate that this molecular toolbox will be broadly useful for other studies that require site-specific modification of long DNA substrates.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/lambda-modification</link>
                <guid>https://finkelsteinlab.org/papers/paper/lambda-modification</guid>
                <pubDate>2017-05-18T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>An aging-independent replicative lifespan in a symmetrically dividing eukaryote.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;The replicative lifespan (RLS) of a cell-defined as the number of cell divisions before death-has informed our understanding of the mechanisms of cellular aging. However, little is known about aging and longevity in symmetrically dividing eukaryotic cells because most prior studies have used budding yeast for RLS studies. Here, we describe a multiplexed fission yeast lifespan micro-dissector (multFYLM) and an associated image processing pipeline for performing high-throughput and automated single-cell micro-dissection. Using the multFYLM, we observe continuous replication of hundreds of individual fission yeast cells for over seventy-five generations. Surprisingly, cells die without the classic hallmarks of cellular aging, such as progressive changes in size, doubling time, or sibling health. Genetic perturbations and drugs can extend the RLS via an aging-independent mechanism. Using a quantitative model to analyze these results, we conclude that fission yeast does not age and that cellular aging and replicative lifespan can be uncoupled in a eukaryotic cell.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/yeast-aging-multylm</link>
                <guid>https://finkelsteinlab.org/papers/paper/yeast-aging-multylm</guid>
                <pubDate>2017-01-31T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Next-Generation DNA Curtains for Single-Molecule Studies of Homologous Recombination.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Homologous recombination (HR) is a universally conserved DNA double-strand break repair pathway. Single-molecule fluorescence imaging approaches have revealed new mechanistic insights into nearly all aspects of HR. These methods are especially suited for studying protein complexes because multicolor fluorescent imaging can parse out subassemblies and transient intermediates that associate with the DNA substrates on the millisecond to hour timescales. However, acquiring single-molecule datasets remains challenging because most of these approaches are designed to measure one molecular reaction at a time. The DNA curtains platform facilitates high-throughput single-molecule imaging by organizing arrays of DNA molecules on the surface of a microfluidic flowcell. Here, we describe a second-generation UV lithography-based protocol for fabricating flowcells for DNA curtains. This protocol greatly reduces the challenges associated with assembling DNA curtains and paves the way for the rapid acquisition of large datasets from individual single-molecule experiments. Drawing on our recent studies of human HR, we also provide an overview of how DNA curtains can be used for observing facilitated protein diffusion, processive enzyme translocation, and nucleoprotein filament dynamics on single-stranded DNA. Together, these protocols and case studies form a comprehensive introduction for other researchers that may want to adapt DNA curtains for high-throughput single-molecule studies of DNA replication, transcription, and repair.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/hr-methods-enzymology-chapter</link>
                <guid>https://finkelsteinlab.org/papers/paper/hr-methods-enzymology-chapter</guid>
                <pubDate>2017-01-01T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Inserting Extrahelical Structures into Long DNA Substrates for Single-Molecule Studies of DNA Mismatch Repair.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;The DNA mismatch repair (MMR) system corrects errors that occur during DNA replication. MMR needs the coordinated and highly dynamic assembly of repair enzymes at the site of the lesion. By visualizing transient intermediates of these assemblies, single-molecule approaches have shed critical insights into the mechanisms of MMR. These studies frequently require long (&amp;gt;20kb) DNA substrates with lesions and other extrahelical structures inserted at defined positions. DNA derived from bacteriophage λ (λ-DNA) is a high quality long (48.5kb) DNA substrate that is frequently used in single-molecule studies. Here we provide detailed protocols for site-specific incorporation of recombinant sequences and extrahelical structures into λ-DNA. We also describe how to assemble DNA curtains, and how to collect and analyze single-molecule observations of lesion recognition by MMR proteins diffusing on these DNA curtains. These protocols will facilitate future single-molecule studies of DNA transcription, replication, and repair.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/mmr-methods-enzymology-chapter</link>
                <guid>https://finkelsteinlab.org/papers/paper/mmr-methods-enzymology-chapter</guid>
                <pubDate>2016-10-24T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Conserved Sequence Preferences Contribute to Substrate Recognition by the Proteasome.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;The proteasome has pronounced preferences for the amino acid sequence of its substrates at the site where it initiates degradation. Here, we report that modulating these sequences can tune the steady-state abundance of proteins over 2 orders of magnitude in cells. This is the same dynamic range as seen for inducing ubiquitination through a classic N-end rule degron. The stability and abundance of His3 constructs dictated by the initiation site affect survival of yeast cells and show that variation in proteasomal initiation can affect fitness. The proteasome’s sequence preferences are linked directly to the affinity of the initiation sites to their receptor on the proteasome and are conserved between Saccharomyces cerevisiae, Schizosaccharomyces pombe, and human cells. These findings establish that the sequence composition of unstructured initiation sites influences protein abundance in vivo in an evolutionarily conserved manner and can affect phenotype and fitness.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/sequence-preference-proteasome</link>
                <guid>https://finkelsteinlab.org/papers/paper/sequence-preference-proteasome</guid>
                <pubDate>2016-07-08T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Single-molecule imaging reveals the mechanism of Exo1 regulation by single-stranded DNA binding proteins.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Exonuclease 1 (Exo1) is a 5’→3’ exonuclease and 5’-flap endonuclease that plays a critical role in multiple eukaryotic DNA repair pathways. Exo1 processing at DNA nicks and double-strand breaks creates long stretches of single-stranded DNA, which are rapidly bound by replication protein A (RPA) and other single-stranded DNA binding proteins (SSBs). Here, we use single-molecule fluorescence imaging and quantitative cell biology approaches to reveal the interplay between Exo1 and SSBs. Both human and yeast Exo1 are processive nucleases on their own. RPA rapidly strips Exo1 from DNA, and this activity is dependent on at least three RPA-encoded single-stranded DNA binding domains. Furthermore, we show that ablation of RPA in human cells increases Exo1 recruitment to damage sites. In contrast, the sensor of single-stranded DNA complex 1-a recently identified human SSB that promotes DNA resection during homologous recombination-supports processive resection by Exo1. Although RPA rapidly turns over Exo1, multiple cycles of nuclease rebinding at the same DNA site can still support limited DNA processing. These results reveal the role of single-stranded DNA binding proteins in controlling Exo1-catalyzed resection with implications for how Exo1 is regulated during DNA repair in eukaryotic cells.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/exo1-ssb-curtains</link>
                <guid>https://finkelsteinlab.org/papers/paper/exo1-ssb-curtains</guid>
                <pubDate>2016-03-01T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Dynamic DNA binding licenses a repair factor to bypass roadblocks in search of DNA lesions.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;DNA-binding proteins search for specific targets via facilitated diffusion along a crowded genome. However, little is known about how crowded DNA modulates facilitated diffusion and target recognition. Here we use DNA curtains and single-molecule fluorescence imaging to investigate how Msh2-Msh3, a eukaryotic mismatch repair complex, navigates on crowded DNA. Msh2-Msh3 hops over nucleosomes and other protein roadblocks, but maintains sufficient contact with DNA to recognize a single lesion. In contrast, Msh2-Msh6 slides without hopping and is largely blocked by protein roadblocks. Remarkably, the Msh3-specific mispair-binding domain (MBD) licences a chimeric Msh2-Msh6(3MBD) to bypass nucleosomes. Our studies contrast how Msh2-Msh3 and Msh2-Msh6 navigate on a crowded genome and suggest how Msh2-Msh3 locates DNA lesions outside of replication-coupled repair. These results also provide insights into how DNA repair factors search for DNA lesions in the context of chromatin.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/dna-bypass-roadblocks</link>
                <guid>https://finkelsteinlab.org/papers/paper/dna-bypass-roadblocks</guid>
                <pubDate>2016-02-03T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>High-Throughput Universal DNA Curtain Arrays for Single-Molecule Fluorescence Imaging.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Single-molecule studies of protein-DNA interactions have shed critical insights into the molecular mechanisms of nearly every aspect of DNA metabolism. The development of DNA curtains-a method for organizing arrays of DNA molecules on a fluid lipid bilayer-has greatly facilitated these studies by increasing the number of reactions that can be observed in a single experiment. However, the utility of DNA curtains is limited by the challenges associated with depositing nanometer-scale lipid diffusion barriers onto quartz microscope slides. Here, we describe a UV lithography-based method for large-scale fabrication of chromium (Cr) features and organization of DNA molecules at these features for high-throughput single-molecule studies. We demonstrate this approach by assembling 792 independent DNA arrays (containing &amp;gt;900,000 DNA molecules) within a single microfluidic flowcell. As a first proof of principle, we track the diffusion of Mlh1-Mlh3-a heterodimeric complex that participates in DNA mismatch repair and meiotic recombination. To further highlight the utility of this approach, we demonstrate a two-lane flowcell that facilitates concurrent experiments on different DNA substrates. Our technique greatly reduces the challenges associated with assembling DNA curtains and paves the way for the rapid acquisition of large statistical data sets from individual single-molecule experiments.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/dna-curtain-arrays</link>
                <guid>https://finkelsteinlab.org/papers/paper/dna-curtain-arrays</guid>
                <pubDate>2015-09-22T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>High-throughput single-molecule studies of protein-DNA interactions.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Fluorescence and force-based single-molecule studies of protein-nucleic acid interactions continue to shed critical insights into many aspects of DNA and RNA processing. As single-molecule assays are inherently low-throughput, obtaining statistically relevant datasets remains a major challenge. Additionally, most fluorescence-based single-molecule particle-tracking assays are limited to observing fluorescent proteins that are in the low-nanomolar range, as spurious background signals predominate at higher fluorophore concentrations. These technical limitations have traditionally limited the types of questions that could be addressed via single-molecule methods. In this review, we describe new approaches for high-throughput and high-concentration single-molecule biochemical studies. We conclude with a discussion of outstanding challenges for the single-molecule biologist and how these challenges can be tackled to further approach the biochemical complexity of the cell.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/single-molecule-curtains-letter</link>
                <guid>https://finkelsteinlab.org/papers/paper/single-molecule-curtains-letter</guid>
                <pubDate>2014-10-01T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>3D-printed microfluidic microdissector for high-throughput studies of cellular aging.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Due to their short lifespan, rapid division, and ease of genetic manipulation, yeasts are popular model organisms for studying aging in actively dividing cells. To study replicative aging over many cell divisions, individual cells must be continuously separated from their progeny via a laborious manual microdissection procedure. Microfluidics-based soft-lithography devices have recently been used to automate microdissection of the budding yeast Saccharomyces cerevisiae. However, little is known about replicative aging in Schizosaccharomyces pombe, a rod-shaped yeast that divides by binary fission and shares many conserved biological functions with higher eukaryotes. In this report, we develop a versatile multiphoton lithography method that enables rapid fabrication of three-dimensional master structures for polydimethylsiloxane (PDMS)-based microfluidics. We exploit the rapid prototyping capabilities of multiphoton lithography to create and characterize a cell-capture device that is capable of high-resolution microscopic observation of hundreds of individual S. pombe cells. By continuously removing the progeny cells, we demonstrate that cell growth and protein aggregation can be tracked in individual cells for over ~100 h. Thus, the fission yeast lifespan microdissector (FYLM) provides a powerful on-chip microdissection platform that will enable high-throughput studies of aging in rod-shaped cells.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/microdissector-cellular-aging</link>
                <guid>https://finkelsteinlab.org/papers/paper/microdissector-cellular-aging</guid>
                <pubDate>2014-08-05T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>From cradle to grave: high-throughput studies of aging in model organisms.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Aging-the progressive decline of biological functions-is a universal fact of life. Decades of intense research in unicellular and metazoan model organisms have highlighted that aging manifests at all levels of biological organization - from the decline of individual cells, to tissue and organism degeneration. To better understand the aging process, we must first aim to integrate quantitative biological understanding on the systems and cellular levels. A second key challenge is to then understand the many heterogeneous outcomes that may result in aging cells, and to connect cellular aging to organism-wide degeneration. Addressing these challenges requires the development of high-throughput aging and longevity assays. In this review, we highlight the emergence of high-throughput aging approaches in the most commonly used model organisms. We conclude with a discussion of the critical questions that can be addressed with these new methods.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/high-throughput-aging</link>
                <guid>https://finkelsteinlab.org/papers/paper/high-throughput-aging</guid>
                <pubDate>2014-07-01T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Single-molecule imaging of FtsK translocation reveals mechanistic features of protein-protein collisions on DNA.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;In physiological settings, DNA translocases will encounter DNA-bound proteins, which must be dislodged or bypassed to allow continued translocation. FtsK is a bacterial translocase that promotes chromosome dimer resolution and decatenation by activating XerCD-dif recombination. To better understand how translocases act in crowded environments, we used single-molecule imaging to visualize FtsK in real time as it collided with other proteins. We show that FtsK can push, evict, and even bypass DNA-bound proteins. The primary factor dictating the outcome of collisions was the relative affinity of the proteins for their specific binding sites. Importantly, protein-protein interactions between FtsK and XerD help prevent removal of XerCD from DNA by promoting rapid reversal of FtsK. Finally, we demonstrate that RecBCD always overwhelms FtsK when these two motor proteins collide while traveling along the same DNA molecule, indicating that RecBCD is capable of exerting a much greater force than FtsK when translocating along DNA.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/ftsk-collisions-curtains</link>
                <guid>https://finkelsteinlab.org/papers/paper/ftsk-collisions-curtains</guid>
                <pubDate>2014-06-05T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Rapid prototyping of multichannel microfluidic devices for single-molecule DNA curtain imaging.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Single-molecule imaging and manipulation of biochemical reactions continues to reveal numerous biological insights. To facilitate these studies, we have developed and implemented a high-throughput approach to organize and image hundreds of individual DNA molecules at aligned diffusion barriers. Nonetheless, obtaining statistically relevant data sets under a variety of reaction conditions remains challenging. Here, we present a method for integrating high-throughput single-molecule “DNA curtain” imaging with poly(dimethylsiloxane) (PDMS)-based microfluidics. Our benchtop fabrication method can be accomplished in minutes with common tools found in all molecular biology laboratories. We demonstrate the utility of this approach by simultaneous imaging of two independent biochemical reaction conditions in a laminar flow device. In addition, five different reaction conditions can be observed concurrently in a passive linear gradient generator. Combining rapid microfluidic fabrication with high-throughput DNA curtains greatly expands our capability to interrogate complex biological reactions.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/microfluidic-devices-curtains</link>
                <guid>https://finkelsteinlab.org/papers/paper/microfluidic-devices-curtains</guid>
                <pubDate>2014-05-06T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Nucleosome acidic patch promotes RNF168- and RING1B/BMI1-dependent H2AX and H2A ubiquitination and DNA damage signaling.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Histone ubiquitinations are critical for the activation of the DNA damage response (DDR). In particular, RNF168 and RING1B/BMI1 function in the DDR by ubiquitinating H2A/H2AX on Lys-13/15 and Lys-118/119, respectively. However, it remains to be defined how the ubiquitin pathway engages chromatin to provide regulation of ubiquitin targeting of specific histone residues. Here we identify the nucleosome acid patch as a critical chromatin mediator of H2A/H2AX ubiquitination (ub). The acidic patch is required for RNF168- and RING1B/BMI1-dependent H2A/H2AXub in vivo. The acidic patch functions within the nucleosome as nucleosomes containing a mutated acidic patch exhibit defective H2A/H2AXub by RNF168 and RING1B/BMI1 in vitro. Furthermore, direct perturbation of the nucleosome acidic patch in vivo by the expression of an engineered acidic patch interacting viral peptide, LANA, results in defective H2AXub and RNF168-dependent DNA damage responses including 53BP1 and BRCA1 recruitment to DNA damage. The acidic patch therefore is a critical nucleosome feature that may serve as a scaffold to integrate multiple ubiquitin signals on chromatin to compose selective ubiquitinations on histones for DNA damage signaling.&lt;/p&gt;

</description>
                <link>https://finkelsteinlab.org/papers/paper/rnf168-h2a-ubiquitination-dna-damage</link>
                <guid>https://finkelsteinlab.org/papers/paper/rnf168-h2a-ubiquitination-dna-damage</guid>
                <pubDate>2014-03-06T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Molecular traffic jams on DNA.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;All aspects of DNA metabolism-including transcription, replication, and repair-involve motor enzymes that move along genomic DNA. These processes must all take place on chromosomes that are occupied by a large number of other proteins. However, very little is known regarding how nucleic acid motor proteins move along the crowded DNA substrates that are likely to exist in physiological settings. This review summarizes recent progress in understanding how DNA-binding motor proteins respond to the presence of other proteins that lie in their paths. We highlight recent single-molecule biophysical experiments aimed at addressing this question, with an emphasis placed on analyzing the single-molecule, ensemble biochemical, and in vivo data from a mechanistic perspective.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/traffic-dna</link>
                <guid>https://finkelsteinlab.org/papers/paper/traffic-dna</guid>
                <pubDate>2013-02-28T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>The promoter-search mechanism of Escherichia coli RNA polymerase is dominated by three-dimensional diffusion.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Gene expression, DNA replication and genome maintenance are all initiated by proteins that must recognize specific targets from among a vast excess of nonspecific DNA. For example, to initiate transcription, Escherichia coli RNA polymerase (RNAP) must locate promoter sequences, which compose &amp;lt;2% of the bacterial genome. This search problem remains one of the least understood aspects of gene expression, largely owing to the transient nature of search intermediates. Here we visualize RNAP in real time as it searches for promoters, and we develop a theoretical framework for analyzing target searches at the submicroscopic scale on the basis of single-molecule target-association rates. We demonstrate that, contrary to long-held assumptions, the promoter search is dominated by three-dimensional diffusion at both the microscopic and submicroscopic scales in vitro, which has direct implications for understanding how promoters are located within physiological settings.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/search-rnap-3d</link>
                <guid>https://finkelsteinlab.org/papers/paper/search-rnap-3d</guid>
                <pubDate>2013-02-01T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Single-stranded DNA curtains for real-time single-molecule visualization of protein-nucleic acid interactions.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Single-molecule imaging of biological macromolecules has dramatically impacted our understanding of many types of biochemical reactions. To facilitate these studies, we have established new strategies for anchoring and organizing DNA molecules on the surfaces of microfluidic sample chambers that are otherwise coated with fluid lipid bilayers. This previous work was reliant upon the use of double-stranded DNA, precluding access to information on biological processes involving single-stranded nucleic acid substrates. Here, we present procedures for aligning and visualizing single-stranded DNA molecules along the leading edges of nanofabricated barriers to lipid diffusion, in both “single-tethered” and “double-tethered” experimental formats. This new single-molecule approach provides long-awaited access to critical biological reactions involving single-stranded DNA binding proteins.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/ssdna-curtains</link>
                <guid>https://finkelsteinlab.org/papers/paper/ssdna-curtains</guid>
                <pubDate>2012-09-18T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Single-molecule imaging of DNA curtains reveals mechanisms of KOPS sequence targeting by the DNA translocase FtsK.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;FtsK is a hexameric DNA translocase that participates in the final stages of bacterial chromosome segregation. Here we investigate the DNA-binding and translocation activities of FtsK in real time by imaging fluorescently tagged proteins on nanofabricated curtains of DNA. We show that FtsK preferentially loads at 8-bp KOPS (FtsK Orienting Polar Sequences) sites and that loading is enhanced in the presence of ADP. We also demonstrate that FtsK locates KOPS through a mechanism that does not involve extensive 1D diffusion at the scale of our resolution. Upon addition of ATP, KOPS-bound FtsK translocates in the direction dictated by KOPS polarity, and once FtsK has begun translocating it does not rerecognize KOPS from either direction. However, FtsK can abruptly change directions while translocating along DNA independent of KOPS, suggesting that the ability to reorient on DNA does not arise from DNA sequence-specific effects. Taken together, our data support a model in which FtsK locates KOPS through random collisions, preferentially engages KOPS in the ADP-bound state, translocates in the direction dictated by the polar orientation of KOPS, and is incapable of recognizing KOPS while translocating along DNA.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/curtains-kops-ftsk</link>
                <guid>https://finkelsteinlab.org/papers/paper/curtains-kops-ftsk</guid>
                <pubDate>2012-04-24T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Supported lipid bilayers and DNA curtains for high-throughput single-molecule studies.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Single-molecule studies of protein-DNA interactions continue to yield new information on numerous DNA processing pathways. For example, optical microscopy-based techniques permit the real-time observation of proteins that interact with DNA substrates, which in turn allows direct insight into reaction mechanisms. However, these experiments remain technically challenging and are limited by the paucity of stable chromophores and the difficulty of acquiring statistically significant observations. In this protocol, we describe a novel, high-throughput, nanofabricated experimental platform enabling real-time imaging of hundreds of individual protein-DNA complexes over hour timescales.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/bilayers-curtains-single-molecule</link>
                <guid>https://finkelsteinlab.org/papers/paper/bilayers-curtains-single-molecule</guid>
                <pubDate>2011-04-28T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Single-molecule imaging reveals mechanisms of protein disruption by a DNA translocase.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;In physiological settings, nucleic-acid translocases must act on substrates occupied by other proteins, and an increasingly appreciated role of translocases is to catalyse protein displacement from RNA and DNA. However, little is known regarding the inevitable collisions that must occur, and the fate of protein obstacles and the mechanisms by which they are evicted from DNA remain unexplored. Here we sought to establish the mechanistic basis for protein displacement from DNA using RecBCD as a model system. Using nanofabricated curtains of DNA and multicolour single-molecule microscopy, we visualized collisions between a model translocase and different DNA-bound proteins in real time. We show that the DNA translocase RecBCD can disrupt core RNA polymerase, holoenzymes, stalled elongation complexes and transcribing RNA polymerases in either head-to-head or head-to-tail orientations, as well as EcoRI(E111Q), lac repressor and even nucleosomes. RecBCD did not pause during collisions and often pushed proteins thousands of base pairs before evicting them from DNA. We conclude that RecBCD overwhelms obstacles through direct transduction of chemomechanical force with no need for specific protein-protein interactions, and that proteins can be removed from DNA through active disruption mechanisms that act on a transition state intermediate as they are pushed from one nonspecific site to the next.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/dna-translocase-curtains</link>
                <guid>https://finkelsteinlab.org/papers/paper/dna-translocase-curtains</guid>
                <pubDate>2010-12-16T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>XPD helicase speeds through a molecular traffic jam.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Helicases and other DNA translocases must travel along crowded substrates. In this issue, Honda et al. (2009) report that the archaeal XPD helicase can bypass a single-stranded DNA-binding protein without either molecule being ejected from the DNA.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/xpd-helicase</link>
                <guid>https://finkelsteinlab.org/papers/paper/xpd-helicase</guid>
                <pubDate>2009-09-11T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Single molecule studies of homologous recombination.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Single molecule methods offer an unprecedented opportunity to examine complex macromolecular reactions that are obfuscated by ensemble averaging. The application of single molecule techniques to study DNA processing enzymes has revealed new mechanistic details that are unobtainable from bulk biochemical studies. Homologous DNA recombination is a multi-step pathway that is facilitated by numerous enzymes that must precisely and rapidly manipulate diverse DNA substrates to repair potentially lethal breaks in the DNA duplex. In this review, we present an overview of single molecule assays that have been developed to study key aspects of homologous recombination and discuss the unique information gleaned from these experiments.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/single-molecule-hr</link>
                <guid>https://finkelsteinlab.org/papers/paper/single-molecule-hr</guid>
                <pubDate>2008-11-04T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Neuroglobin dynamics observed with ultrafast 2D-IR vibrational echo spectroscopy.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Neuroglobin (Ngb), a protein in the globin family, is found in vertebrate brains. It binds oxygen reversibly. Compared with myoglobin (Mb), the amino acid sequence has limited similarity, but key residues around the heme and the classical globin fold are conserved in Ngb. The CO adduct of Ngb displays two CO absorption bands in the IR spectrum, referred to as N(3) (distal histidine in the pocket) and N(0) (distal histidine swung out of the pocket), which have absorption spectra that are almost identical with the Mb mutants L29F and H64V, respectively. The Mb mutants mimic the heme pocket structures of the corresponding Ngb conformers. The equilibrium protein dynamics for the CO adduct of Ngb are investigated by using ultrafast 2D-IR vibrational echo spectroscopy by observing the CO vibration’s spectral diffusion (2D-IR spectra time dependence) and comparing the results with those for the Mb mutants. Although the heme pocket structure and the CO FTIR peak positions of Ngb are similar to those of the mutant Mb proteins, the 2D-IR results demonstrate that the fast structural fluctuations of Ngb are significantly slower than those of the mutant Mbs. The results may also provide some insights into the nature of the energy landscape in the vicinity of the folded protein free energy minimum.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/neuroglobin-ultrafast</link>
                <guid>https://finkelsteinlab.org/papers/paper/neuroglobin-ultrafast</guid>
                <pubDate>2007-10-09T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Frequency-frequency correlation functions and apodization in two-dimensional infrared vibrational echo spectroscopy: a new approach.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Ultrafast two-dimensional infrared (2D-IR) vibrational echo spectroscopy can probe structural dynamics under thermal equilibrium conditions on time scales ranging from femtoseconds to approximately 100 ps and longer. One of the important uses of 2D-IR spectroscopy is to monitor the dynamical evolution of a molecular system by reporting the time dependent frequency fluctuations of an ensemble of vibrational probes. The vibrational frequency-frequency correlation function (FFCF) is the connection between the experimental observables and the microscopic molecular dynamics and is thus the central object of interest in studying dynamics with 2D-IR vibrational echo spectroscopy. A new observable is presented that greatly simplifies the extraction of the FFCF from experimental data. The observable is the inverse of the center line slope (CLS) of the 2D spectrum. The CLS is the inverse of the slope of the line that connects the maxima of the peaks of a series of cuts through the 2D spectrum that are parallel to the frequency axis associated with the first electric field-matter interaction. The CLS varies from a maximum of 1 to 0 as spectral diffusion proceeds. It is shown analytically to second order in time that the CLS is the T(w) (time between pulses 2 and 3) dependent part of the FFCF. The procedure to extract the FFCF from the CLS is described, and it is shown that the T(w) independent homogeneous contribution to the FFCF can also be recovered to yield the full FFCF. The method is demonstrated by extracting FFCFs from families of calculated 2D-IR spectra and the linear absorption spectra produced from known FFCFs. Sources and magnitudes of errors in the procedure are quantified, and it is shown that in most circumstances, they are negligible. It is also demonstrated that the CLS is essentially unaffected by Fourier filtering methods (apodization), which can significantly increase the efficiency of data acquisition and spectral resolution, when the apodization is applied along the axis used for obtaining the CLS and is symmetrical about tau=0. The CLS is also unchanged by finite pulse durations that broaden 2D spectra.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/frequency-frequency-correlation</link>
                <guid>https://finkelsteinlab.org/papers/paper/frequency-frequency-correlation</guid>
                <pubDate>2007-09-28T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Viscosity-Dependent Protein Dynamics</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Spectrally resolved stimulated vibrational echo spectroscopy is used to investigate the dependence of fast protein dynamics on bulk solution viscosity at room temperature in four heme proteins: hemoglobin, myoglobin, a myoglobin mutant with the distal histidine replaced by a valine (H64V), and a cytochrome c552 mutant with the distal methionine replaced by an alanine (M61A). Fructose is added to increase the viscosity of the aqueous protein solutions over many orders of magnitude. The fast dynamics of the four globular proteins were found to be sensitive to solution viscosity and asymptotically approached the dynamical behavior that was previously observed in room temperature sugar glasses. The viscosity-dependent protein dynamics are analyzed in the context of a viscoelastic relaxation model that treats the protein as a deformable breathing sphere. The viscoelastic model is in qualitative agreement with the experimental data but does not capture sufficient system detail to offer a quantitative description of the underlying fluctuation amplitudes and relaxation rates. A calibration method based on the near-infrared spectrum of water overtones was constructed to accurately determine the viscosity of small volumes of protein solutions.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/viscosity-dependent-protein-dynamics</link>
                <guid>https://finkelsteinlab.org/papers/paper/viscosity-dependent-protein-dynamics</guid>
                <pubDate>2007-05-15T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Probing dynamics of complex molecular systems with ultrafast 2D IR vibrational echo spectroscopy.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Ultrafast 2D IR vibrational echo spectroscopy is described and a number of experimental examples are given. Details of the experimental method including the pulse sequence, heterodyne detection, and determination of the absorptive component of the 2D spectrum are outlined. As an initial example, the 2D spectrum of the stretching mode of CO bound to the protein myoglobin (MbCO) is presented. The time dependence of the 2D spectrum of MbCO, which is caused by protein structural evolution, is presented and its relationship to the frequency-frequency correlation function is described and used to make protein structural assignments based on comparisons to molecular dynamics simulations. The 2D vibrational echo experiments on the protein horseradish peroxidase are presented. The time dependence of the 2D spectra of the enzyme in the free form and with a substrate bound at the active site are compared and used to examine the influence of substrate binding on the protein’s structural dynamics. The application of 2D vibrational echo spectroscopy to the study of chemical exchange under thermal equilibrium conditions is described. 2D vibrational echo chemical exchange spectroscopy is applied to the study of formation and dissociation of organic solute-solvent complexes and to the isomerization around a carbon-carbon single bond of an ethane derivative.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/protein-dynamics-ultrafast-2d-ir</link>
                <guid>https://finkelsteinlab.org/papers/paper/protein-dynamics-ultrafast-2d-ir</guid>
                <pubDate>2007-02-20T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Substrate binding and protein conformational dynamics measured by 2D-IR vibrational echo spectroscopy.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Enzyme structural dynamics play a pivotal role in substrate binding and biological function, but the influence of substrate binding on enzyme dynamics has not been examined on fast time scales. In this work, picosecond dynamics of horseradish peroxidase (HRP) isoenzyme C in the free form and when ligated to a variety of small organic molecule substrates is studied by using 2D-IR vibrational echo spectroscopy. Carbon monoxide bound at the heme active site of HRP serves as a spectroscopic marker that is sensitive to the structural dynamics of the protein. In the free form, HRP assumes two distinct spectroscopic conformations that undergo fluctuations on a tens-of-picoseconds time scale. After substrate binding, HRP is locked into a single conformation that exhibits reduced amplitudes and slower time-scale structural dynamics. The decrease in carbon monoxide frequency fluctuations is attributed to reduced dynamic freedom of the distal histidine and the distal arginine, which are key residues in modulating substrate binding affinity. It is suggested that dynamic quenching caused by substrate binding can cause the protein to be locked into a conformation suitable for downstream steps in the enzymatic cycle of HRP.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/protein-dynamics-2d-ir</link>
                <guid>https://finkelsteinlab.org/papers/paper/protein-dynamics-2d-ir</guid>
                <pubDate>2007-02-20T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Cytochrome c552 mutants: structure and dynamics at the active site probed by multidimensional NMR and vibration echo spectroscopy.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Spectrally resolved infrared stimulated vibrational echo experiments are used to measure the vibrational dephasing of a CO ligand bound to the heme cofactor in two mutated forms of the cytochrome c552 from Hydrogenobacter thermophilus. The first mutant (Ht-M61A) is characterized by a single mutation of Met61 to an Ala (Ht-M61A), while the second variant is doubly modified to have Gln64 replaced by an Asn in addition to the M61A mutation (Ht-M61A/Q64N). Multidimensional NMR experiments determined that the geometry of residue 64 in the two mutants is consistent with a non-hydrogen-bonding and hydrogen-bonding interaction with the CO ligand for Ht-M61A and Ht-M61A/Q64N, respectively. The vibrational echo experiments reveal that the shortest time scale vibrational dephasing of the CO is faster in the Ht-M61A/Q64N mutant than that in Ht-M61A. Longer time scale dynamics, measured as spectral diffusion, are unchanged by the Q64N modification. Frequency-frequency correlation functions (FFCFs) of the CO are extracted from the vibrational echo data to confirm that the dynamical difference induced by the Q64N mutation is primarily an increase in the fast (hundreds of femtoseconds) frequency fluctuations, while the slower (tens of picoseconds) dynamics are nearly unaffected. We conclude that the faster dynamics in Ht-M61A/Q64N are due to the location of Asn64, which is a hydrogen bond donor, above the heme-bound CO. A similar difference in CO ligand dynamics has been observed in the comparison of the CO derivative of myoglobin (MbCO) and its H64V variant, which is caused by the difference in axial residue interactions with the CO ligand. The results suggest a general trend for rapid ligand vibrational dynamics in the presence of a hydrogen bond donor.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/cytochrome-c552-mutants</link>
                <guid>https://finkelsteinlab.org/papers/paper/cytochrome-c552-mutants</guid>
                <pubDate>2006-09-28T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Dynamics of proteins encapsulated in silica sol-gel glasses studied with IR vibrational echo spectroscopy.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Spectrally resolved infrared stimulated vibrational echo spectroscopy is used to measure the fast dynamics of heme-bound CO in carbonmonoxy-myoglobin (MbCO) and -hemoglobin (HbCO) embedded in silica sol-gel glasses. On the time scale of approximately 100 fs to several picoseconds, the vibrational dephasing of the heme-bound CO is measurably slower for both MbCO and HbCO relative to that of aqueous protein solutions. The fast structural dynamics of MbCO, as sensed by the heme-bound CO, are influenced more by the sol-gel environment than those of HbCO. Longer time scale structural dynamics (tens of picoseconds), as measured by the extent of spectral diffusion, are the same for both proteins encapsulated in sol-gel glasses compared to that in aqueous solutions. A comparison of the sol-gel experimental results to viscosity-dependent vibrational echo data taken on various mixtures of water and fructose shows that the sol-gel-encapsulated MbCO exhibits dynamics that are the equivalent of the protein in a solution that is nearly 20 times more viscous than bulk water. In contrast, the HbCO dephasing in the sol-gel reflects only a 2-fold increase in viscosity. Attempts to alter the encapsulating pore size by varying the molar ratio of silane precursor to water (R value) used to prepare the sol-gel glasses were found to have no effect on the fast or steady-state spectroscopic results. The vibrational echo data are discussed in the context of solvent confinement and protein-pore wall interactions to provide insights into the influence of a confined environment on the fast structural dynamics experienced by a biomolecule.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/proteins-silica-glasses-ir</link>
                <guid>https://finkelsteinlab.org/papers/paper/proteins-silica-glasses-ir</guid>
                <pubDate>2006-03-29T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>The influence of aqueous versus glassy solvents on protein dynamics: vibrational echo experiments and molecular dynamics simulations.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Spectrally resolved infrared stimulated vibrational echo measurements are used to measure the vibrational dephasing of the CO stretching mode of carbonmonoxy-hemoglobin (HbCO), a myoglobin mutant (H64V), and a bacterial cytochrome c(552) mutant (Ht-M61A) in aqueous solution and trehalose glasses. The vibrational dephasing of the heme-bound CO is significantly slower for all three proteins embedded in trehalose glasses compared to that of aqueous protein solutions. All three proteins exhibit persistent but notably slower spectral diffusion when the protein surface is fixed by the glassy solvent. Frequency-frequency correlation functions (FFCFs) of the CO are extracted from the vibrational echo data to reveal that the structural dynamics, as sensed by the CO, of the three proteins in trehalose and aqueous solution are dominated by fast (tens of femtoseconds), motionally narrowed fluctuations. MD simulations of H64V in dynamic and “static” water are presented as models of the aqueous and glassy environments. FFCFs are calculated from the H64V simulations and qualitatively reproduce the important features of the experimentally extracted FFCFs. The suppression of long time scale (picoseconds to tens of picoseconds) frequency fluctuations (spectral diffusion) in the glassy solvent is the result of a damping of atomic displacements throughout the protein structure and is not limited to structural dynamics that occur only at the protein surface. The analysis provides evidence that some dynamics are coupled to the hydration shell of water, supporting the idea that the bioprotection offered by trehalose is due to its ability to immobilize the protein surface through a thin, constrained layer of water.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/glassy-solvents-protein-dynamics</link>
                <guid>https://finkelsteinlab.org/papers/paper/glassy-solvents-protein-dynamics</guid>
                <pubDate>2005-10-19T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Ultrafast dynamics of myoglobin without the distal histidine: stimulated vibrational echo experiments and molecular dynamics simulations.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Ultrafast protein dynamics of the CO adduct of a myoglobin mutant with the polar distal histidine replaced by a nonpolar valine (H64V) have been investigated by spectrally resolved infrared stimulated vibrational echo experiments and molecular dynamics (MD) simulations. In aqueous solution at room temperature, the vibrational dephasing rate of CO in the mutant is reduced by approximately 50% relative to the native protein. This finding confirms that the dephasing of the CO vibration in the native protein is sensitive to the interaction between the ligand and the distal histidine. The stimulated vibrational echo observable is calculated from MD simulations of H64V within a model in which vibrational dephasing is driven by electrostatic forces. In agreement with experiment, calculated vibrational echoes show slower dephasing for the mutant than for the native protein. However, vibrational echoes calculated for H64V do not show the quantitative agreement with measurements demonstrated previously for the native protein.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/myoglobin-dynamics-histidine</link>
                <guid>https://finkelsteinlab.org/papers/paper/myoglobin-dynamics-histidine</guid>
                <pubDate>2005-09-08T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Dynamics of hemoglobin in human erythrocytes and in solution: influence of viscosity studied by ultrafast vibrational echo experiments.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Ultrafast spectrally resolved stimulated vibrational echo experiments are used to measure the vibrational dephasing of the CO stretching mode of hemoglobin-CO (HbCO) inside living human erythrocytes (red blood cells), in liquid solutions, and in a glassy matrix. A method is presented to overcome the adverse impact on the vibrational echo signal from the strong light scattering caused by the cells. The results from the cytoplasmic HbCO are compared to experiments on aqueous HbCO samples prepared in different buffers, solutions containing low and high concentrations of glycerol, and in a solid trehalose matrix. Measurements are also presented that provide an accurate determination of the viscosity at the very high Hb concentration that is found inside the cells. It is demonstrated that the dynamics of the protein, as sensed by the CO ligand, are the same inside the erythrocytes and in aqueous solution and are independent of the viscosity. In solutions that are predominantly glycerol, the dynamics are modified somewhat but are still independent of viscosity. The experiments in trehalose give the dynamics at infinite viscosity and are used to separate the viscosity-dependent dynamics from the viscosity-independent dynamics. Although the HbCO dynamics are the same in the red blood cell and in the equivalent aqueous solutions, differences in the absorption spectra show that the distribution of a protein’s equilibrium substates is sensitive to small pH differences.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/hemoglobin-dynamics-vibrational-echo</link>
                <guid>https://finkelsteinlab.org/papers/paper/hemoglobin-dynamics-vibrational-echo</guid>
                <pubDate>2004-12-08T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Fifth-order contributions to ultrafast spectrally resolved vibrational echoes: heme-CO proteins.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;The fifth order contributions to the signals of ultrafast infrared spectrally resolved stimulated vibrational echoes at high intensities have been investigated in carbonmonoxy heme proteins. High intensities are often required to obtain good data. Intensity dependent measurements are presented on hemoglobin-CO (Hb-CO) and a mutant of myoglobin, H64V-CO. The spectrally resolved vibrational echoes demonstrate that fifth order effects arise at both the 1-0 and the 2-1 emission frequencies of the stretching mode of the CO chromophore bound at the active site of heme proteins. Unlike one-dimensional experiments, in which the signal is integrated over all emission frequencies, spectrally resolving the signal shows that the fifth order contributions have a much more pronounced influence on the 2-1 transition than on the 1-0 transition. By spectrally isolating the 1-0 transition, the influence of fifth order contributions to vibrational echo data can be substantially reduced. Analysis of fifth order Feynman diagrams that contribute in the vibrational echo phase-matched direction demonstrates the reason for the greater influence of fifth order processes on the 1-2 transition, and that the fifth order contributions are heterodyne amplified by the third order signal. Finally, it is shown that the anharmonic oscillations in vibrational echo data of Hb-CO that previous work had attributed strictly to fifth order effects arise even without fifth order contributions.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/vibrational-echos-heme-co</link>
                <guid>https://finkelsteinlab.org/papers/paper/vibrational-echos-heme-co</guid>
                <pubDate>2004-07-08T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Vibrational echo experiments on red blood cells: Comparison of the dynamics of cytoplasmic and aqueous hemoglobin.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Ultrafast spectrally resolved stimulated vibrational echo experiments measure the dephasing of the CO stretching mode of hemoglobin–CO
(Hb–CO) inside living human erythrocytes (red blood cells). A method is presented to overcome the adverse impact
on the vibrational echo signal from the strong light scattering caused by the cells. The results are compared to experiments on Hb–
CO aqueous solutions. It is demonstrated that the dynamics of the protein as sensed by the CO ligand are the same inside the
erythrocytes and in aqueous solution, but differences in the absorption spectra show that the cell affects the protein’s potential
energy surface.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/vibrational-echoes-red-blood-cells</link>
                <guid>https://finkelsteinlab.org/papers/paper/vibrational-echoes-red-blood-cells</guid>
                <pubDate>2004-06-15T00:00:00+00:00</pubDate>
        </item>

        <item>
                <title>Myoglobin-CO substate structures and dynamics: multidimensional vibrational echoes and molecular dynamics simulations.</title>
                <description>
&lt;h2 id=&quot;abstract&quot;&gt;Abstract&lt;/h2&gt;

&lt;p&gt;Spectrally resolved infrared stimulated vibrational echo data were obtained for sperm whale
carbonmonoxymyoglobin (MbCO) at 300 K. The measured dephasing dynamics of the CO ligand are in
agreement with dephasing dynamics calculated with molecular dynamics (MD) simulations for MbCO with
the residue histidine-64 (His64) having its imidazole ε nitrogen protonated (Nε-H). The two conformational
substate structures Bε and Rε observed in the MD simulations are assigned to the spectroscopic A1 and A3
conformational substates of MbCO, respectively, based on the agreement between the experimentally
measured and calculated dephasing dynamics for these substates. In the A1 substate, the Nε-H proton
and Nδ of His64 are approximately equidistant from the CO ligand, while in the A3 substate, the Nε-H of
His64 is oriented toward the CO, and the Nδ is on the surface of the protein. The MD simulations show that
dynamics of His64 represent the major source of vibrational dephasing of the CO ligand in the A3 state on
both femtosecond and picosecond time scales. Dephasing in the A1 state is controlled by His64 on
femtosecond time scales, and by the rest of the protein and the water solvent on longer time scales.&lt;/p&gt;
</description>
                <link>https://finkelsteinlab.org/papers/paper/myoglobin-substates</link>
                <guid>https://finkelsteinlab.org/papers/paper/myoglobin-substates</guid>
                <pubDate>2003-11-03T00:00:00+00:00</pubDate>
        </item>


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