Literature DB >> 27378772

An AT-barrier mechanically controls DNA reannealing under tension.

L Bongini1, C Pongor2, G Falorsi1, I Pertici1, M Kellermayer2, V Lombardi3, P Bianco1.   

Abstract

Regulation of genomic activity occurs through the manipulation of DNA by competent mechanoenzymes. Force-clamp optical tweezers that allow the structural dynamics of the DNA molecule to be measured were used here to investigate the kinetics of mechanically-driven strand reannealing. When the force on the torsionally unconstrained λ-phage DNA is decreased stepwise from above to below the overstretching transition, reannealing occurs via discrete shortening steps separated by exponentially distributed time intervals. Kinetic analysis reveals a transition barrier 0.58 nm along the reaction coordinate and an average reannealing-step size of ∼750 bp, consistent with the average bp interval separating segments of more than 10 consecutive AT bases. In an AT-rich DNA construct, in which the distance between segments of more than 10 consecutive AT is reduced to ∼210 bps, the reannealing step reduces accordingly without changes in the position of the transition barrier. Thus, the transition barrier for reannealing is determined by the presence of segments of more than 10 consecutive AT bps independent of changes in sequence composition, while the length of the reannealing strand changes according to the distance between poly-AT segments at least 10 bps long.
© The Author(s) 2016. Published by Oxford University Press on behalf of Nucleic Acids Research.

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Year:  2016        PMID: 27378772      PMCID: PMC5027502          DOI: 10.1093/nar/gkw604

Source DB:  PubMed          Journal:  Nucleic Acids Res        ISSN: 0305-1048            Impact factor:   16.971


  27 in total

1.  DNA unzipped under a constant force exhibits multiple metastable intermediates.

Authors:  Claudia Danilowicz; Vincent W Coljee; Cedric Bouzigues; David K Lubensky; David R Nelson; Mara Prentiss
Journal:  Proc Natl Acad Sci U S A       Date:  2003-02-06       Impact factor: 11.205

2.  Direct mechanical measurements of the elasticity of single DNA molecules by using magnetic beads.

Authors:  S B Smith; L Finzi; C Bustamante
Journal:  Science       Date:  1992-11-13       Impact factor: 47.728

3.  Overstretching DNA at 65 pN does not require peeling from free ends or nicks.

Authors:  D Hern Paik; Thomas T Perkins
Journal:  J Am Chem Soc       Date:  2011-01-05       Impact factor: 15.419

4.  There and (slowly) back again: entropy-driven hysteresis in a model of DNA overstretching.

Authors:  Stephen Whitelam; Sander Pronk; Phillip L Geissler
Journal:  Biophys J       Date:  2007-11-02       Impact factor: 4.033

5.  PicoNewton-millisecond force steps reveal the transition kinetics and mechanism of the double-stranded DNA elongation.

Authors:  Pasquale Bianco; Lorenzo Bongini; Luca Melli; Mario Dolfi; Vincenzo Lombardi
Journal:  Biophys J       Date:  2011-08-17       Impact factor: 4.033

6.  Overstretching B-DNA: the elastic response of individual double-stranded and single-stranded DNA molecules.

Authors:  S B Smith; Y Cui; C Bustamante
Journal:  Science       Date:  1996-02-09       Impact factor: 47.728

7.  Opening of nucleic-acid double strands by helicases: active versus passive opening.

Authors:  M D Betterton; Frank Jülicher
Journal:  Phys Rev E Stat Nonlin Soft Matter Phys       Date:  2005-01-19

8.  Tension induces a base-paired overstretched DNA conformation.

Authors:  Niklas Bosaeus; Afaf H El-Sagheer; Tom Brown; Steven B Smith; Björn Akerman; Carlos Bustamante; Bengt Nordén
Journal:  Proc Natl Acad Sci U S A       Date:  2012-09-04       Impact factor: 11.205

9.  Two distinct overstretched DNA states.

Authors:  Hongxia Fu; Hu Chen; John F Marko; Jie Yan
Journal:  Nucleic Acids Res       Date:  2010-04-30       Impact factor: 16.971

10.  GenBank.

Authors:  Dennis A Benson; Ilene Karsch-Mizrachi; David J Lipman; James Ostell; Eric W Sayers
Journal:  Nucleic Acids Res       Date:  2010-11-10       Impact factor: 16.971

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