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DNA十字形结构中的机械协同性。

Mechanical Cooperativity in DNA Cruciform Structures.

作者信息

Mandal Shankar, Selvam Sangeetha, Cui Yunxi, Hoque Mohammed Enamul, Mao Hanbin

机构信息

Department of Chemistry & Biochemistry and School of Biomedical Sciences, Kent State University, Kent, OH, 44242, USA.

State Key Laboratory of Medicinal Chemical Biology, Nankai University, 94 Weijin Road, Tianjin, 300071, China.

出版信息

Chemphyschem. 2018 Oct 19;19(20):2627-2634. doi: 10.1002/cphc.201800480. Epub 2018 Aug 1.

Abstract

Unlike short-range chemical bonds that maintain chemical properties of a biological molecule, long-range mechanical interactions determine mechanochemical properties of molecules. Limited by experimental approaches, however, direct quantification of such mechanical interactions is challenging. Using magneto-optical tweezers, herein we found torque can change the topology and mechanochemical property of DNA cruciform, a naturally occurring structure consisting of two opposing hairpin arms. Both mechanical and thermodynamic stabilities of DNA cruciforms increase with positive torque, which have been attributed to the topological coupling between DNA template and the cruciform. The coupling exists simultaneously in both arms of a cruciform, which coordinates the folding and unfolding of the cruciform, leading to a mechanical cooperativity not observed previously. As DNA torque readily varies during transcriptions, our finding suggests that DNA cruciforms can modulate transcriptions by adjusting their properties according to the torque.

摘要

与维持生物分子化学性质的短程化学键不同,长程机械相互作用决定了分子的机械化学性质。然而,受实验方法的限制,直接定量这种机械相互作用具有挑战性。在此,我们使用磁光镊子发现,扭矩可以改变DNA十字形结构的拓扑结构和机械化学性质,DNA十字形结构是一种由两个相对的发夹臂组成的天然结构。DNA十字形结构的机械稳定性和热力学稳定性都随着正扭矩的增加而提高,这归因于DNA模板与十字形结构之间的拓扑耦合。这种耦合同时存在于十字形结构的两个臂中,它协调了十字形结构的折叠和展开,导致了一种以前未观察到的机械协同性。由于DNA扭矩在转录过程中很容易发生变化,我们的发现表明,DNA十字形结构可以根据扭矩调整其性质来调节转录。

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