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使用动态共价交联剂的双足迁移沿 DNA 行走。

A walk along DNA using bipedal migration of a dynamic and covalent crosslinker.

机构信息

Department of Chemistry, Johns Hopkins University, 3400 N. Charles Street, Baltimore, Maryland 21218, USA.

出版信息

Nat Commun. 2014 Nov 21;5:5591. doi: 10.1038/ncomms6591.

Abstract

DNA has previously served as an excellent scaffold for molecular transport based on its non-covalent base pairing to assemble both stationary and mobile elements. Use of DNA can now be extended to transport systems based on reversible covalent chemistry. Autonomous and bipedal-like migration of crosslinking within helical DNA is made possible by tandem exchange of a quinone methide intermediate. In this report, net transport is illustrated to proceed over 10 base pairs. This process is driven towards its equilibrium distribution of crosslinks and consumes neither the walker nor the track irreversibly. Successful migration requires an electron-rich quinone methide to promote its regeneration and a continuous array of nucleophilic sites along its DNA track. Accordingly, net migration can be dramatically influenced by the presence of noncanonical structures within duplex DNA as demonstrated with a backbone nick and extrahelical bulge.

摘要

DNA 以前曾作为分子运输的极好支架,基于其非共价碱基配对来组装固定和移动元件。现在可以将 DNA 的用途扩展到基于可逆共价化学的运输系统。通过醌亚甲中间物的串联交换,使交联在螺旋 DNA 内的自主和类似双足的迁移成为可能。在本报告中,净传输被说明可以进行超过 10 个碱基对。该过程朝着交联的平衡分布进行,并且既不会使步行者也不会使轨道不可逆地消耗。成功的迁移需要富电子的醌亚甲化物来促进其再生,以及沿着其 DNA 轨道的连续亲核位点。因此,正如通过骨干缺口和额外螺旋膨出所证明的那样,双链 DNA 中存在非规范结构会极大地影响净迁移。

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