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Open AccessJournal ArticleDOI

Single-molecule assay reveals strand switching and enhanced processivity of UvrD

TLDR
A single-molecule manipulation technique is used to monitor real-time changes in extension of a single, stretched, nicked dsDNA substrate as it is unwound by a single enzyme, and observes a feature not seen in bulk assays: unwinding is preferentially followed by a slow, enzyme-translocation-limited rezipping of the separated strands.
Abstract
DNA helicases are enzymes capable of unwinding double-stranded DNA (dsDNA) to provide the single-stranded DNA template required in many biological processes. Among these, UvrD, an essential DNA repair enzyme, has been shown to unwind dsDNA while moving 3′-5′ on one strand. Here, we use a single-molecule manipulation technique to monitor real-time changes in extension of a single, stretched, nicked dsDNA substrate as it is unwound by a single enzyme. This technique offers a means for measuring the rate, lifetime, and processivity of the enzymatic complex as a function of ATP, and for estimating the helicase step size. Strikingly, we observe a feature not seen in bulk assays: unwinding is preferentially followed by a slow, enzyme-translocation-limited rezipping of the separated strands rather than by dissociation of the enzymatic complex followed by quick rehybridization of the DNA strands. We address the mechanism underlying this phenomenon and propose a fully characterized model in which UvrD switches strands and translocates backwards on the other strand, allowing the DNA to reanneal in its wake.

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Citations
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Journal ArticleDOI

Translocation and Unwinding Mechanisms of RNA and DNA Helicases

TL;DR: Through structural and single-molecule investigations, researchers are developing coherent models to explain the functions and dynamic motions of helicase enzymes.
Journal ArticleDOI

Single-molecule experiments in biological physics: methods and applications.

TL;DR: This review discusses single-molecule experiments (SMEs) in biological physics from an experimental perspective, first exposing the most common experimental methodologies and later presenting various molecular systems where such techniques have been applied.
Journal ArticleDOI

RNA translocation and unwinding mechanism of HCV NS3 helicase and its coordination by ATP

TL;DR: This work follows in real time, at a resolution of two base pairs and 20 ms, the RNA translocation and unwinding cycles of a hepatitis C virus helicase (NS3) monomer, a representative superfamily-2 helicase essential for viral replication, and therefore a potentially important drug target.
Journal ArticleDOI

Non-hexameric DNA helicases and translocases: mechanisms and regulation

TL;DR: Self assembly and/or interactions with accessory proteins seem to regulate their translocase and helicase activities, and the ability to simply translocate along single-stranded DNA is, in many cases, insufficient for helicase activity.
References
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Journal ArticleDOI

The Elasticity of a Single Supercoiled DNA Molecule

TL;DR: Here, the elastic behavior of individual λ DNA molecules over- and underwound by up to 500 turns was studied and a sharp transition was discovered, probably reflecting the formation of alternative structures in stretched coiled DNA molecules, which might be relevant for DNA transcription and replication.
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Photophosphorylation by swiss-chard chloroplasts

TL;DR: Confirmation was presented for the ineffectiveness of 2,4-dinitrophenol and effectiveness of ammonium ions as uncoupling agents, and the lack of exchange between inorganic phosphate and ATP in swiss-chard chloroplasts.
Journal ArticleDOI

Mechanisms of helicase-catalyzed DNA unwinding.

TL;DR: This review discusses mechanistic aspects of helicase-catalyzed DNA unwinding and translocation with a focus on energetic (thermodynamic), kinetic, and structural studies of the few DNA helicases for which such information is available.
Journal ArticleDOI

DNA helicase Srs2 disrupts the Rad51 presynaptic filament

TL;DR: The role of SRS2 in recombination modulation is clarified by purifying its encoded product and examining its interactions with the Rad51 recombinase, and it is shown that Srs2 acts by dislodging Rad51 from ssDNA.
Journal ArticleDOI

The Srs2 helicase prevents recombination by disrupting Rad51 nucleoprotein filaments.

TL;DR: It is shown that DNA strand exchange mediated in vitro by Rad51 is inhibited by Srs2, and that SRS2 disrupts Rad51 filaments formed on single-stranded DNA, providing an explanation for the anti-recombinogenic role of Srs1 in vivo and highlighting a previously unknown mechanism for recombination control.
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