Egyszerű nézet

dc.contributor.author Bongini L
dc.contributor.author Pongor, Csaba István
dc.contributor.author Falorsi G
dc.contributor.author Pertici I
dc.contributor.author Kellermayer, Miklós
dc.contributor.author Lombardi V
dc.contributor.author Bianco P
dc.date.accessioned 2018-06-18T12:15:17Z
dc.date.available 2018-06-18T12:15:17Z
dc.date.issued 2016
dc.identifier 84988917338
dc.identifier.citation pagination=7954-7962; journalVolume=44; journalIssueNumber=16; journalTitle=NUCLEIC ACIDS RESEARCH;
dc.identifier.uri http://repo.lib.semmelweis.hu//handle/123456789/5415
dc.identifier.uri doi:10.1093/nar/gkw604
dc.description.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 lambda-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 approximately 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 approximately 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.
dc.relation.ispartof urn:issn:0305-1048
dc.title An AT-barrier mechanically controls DNA reannealing under tension
dc.type Journal Article
dc.date.updated 2018-05-10T12:22:25Z
dc.language.rfc3066 en
dc.identifier.mtmt 3112348
dc.identifier.wos 000384687000039
dc.identifier.pubmed 27378772
dc.contributor.department SE/AOK/I/Biofizikai és Sugárbiológiai Intézet
dc.contributor.institution Semmelweis Egyetem
dc.mtmt.swordnote FELTÖLTŐ: Haluszka Dóra - haluszka.dora@med.semmelweis-univ.hu


Kapcsolódó fájlok:

A fájl jelenleg csak egyetemi IP címről érhető el.

Megtekintés/Megnyitás

Ez a rekord az alábbi gyűjteményekben szerepel:

Egyszerű nézet