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人类拓扑异构酶I作用机制的模型。

A model for the mechanism of human topoisomerase I.

作者信息

Stewart L, Redinbo M R, Qiu X, Hol W G, Champoux J J

机构信息

Biomolecular Structure Center and Department of Biological Structure, School of Medicine, University of Washington, Seattle, WA 98195-7742, USA.

出版信息

Science. 1998 Mar 6;279(5356):1534-41. doi: 10.1126/science.279.5356.1534.

Abstract

The three-dimensional structure of a 70-kilodalton amino terminally truncated form of human topoisomerase I in complex with a 22-base pair duplex oligonucleotide, determined to a resolution of 2.8 angstroms, reveals all of the structural elements of the enzyme that contact DNA. The linker region that connects the central core of the enzyme to the carboxyl-terminal domain assumes a coiled-coil configuration and protrudes away from the remainder of the enzyme. The positively charged DNA-proximal surface of the linker makes only a few contacts with the DNA downstream of the cleavage site. In combination with the crystal structures of the reconstituted human topoisomerase I before and after DNA cleavage, this information suggests which amino acid residues are involved in catalyzing phosphodiester bond breakage and religation. The structures also lead to the proposal that the topoisomerization step occurs by a mechanism termed "controlled rotation."

摘要

人拓扑异构酶I氨基端截短的70千道尔顿形式与22碱基对双链寡核苷酸复合物的三维结构,分辨率达2.8埃,揭示了该酶与DNA接触的所有结构元件。连接酶中央核心与羧基末端结构域的连接区呈卷曲螺旋结构,并从酶的其余部分突出。连接区带正电荷的靠近DNA的表面仅与切割位点下游的DNA有少量接触。结合DNA切割前后重组人拓扑异构酶I的晶体结构,这些信息表明哪些氨基酸残基参与催化磷酸二酯键的断裂和重新连接。这些结构还提出拓扑异构化步骤是通过一种称为“受控旋转”的机制发生的。

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