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镍超氧化物歧化酶的结构与机制。

Nickel superoxide dismutase structure and mechanism.

作者信息

Barondeau David P, Kassmann Carey J, Bruns Cami K, Tainer John A, Getzoff Elizabeth D

机构信息

Department of Molecular Biology, The Skaggs Institute for Chemical Biology, The Scripps Research Institute, 10550 North Torrey Pines Road, La Jolla, California 92037, USA.

出版信息

Biochemistry. 2004 Jun 29;43(25):8038-47. doi: 10.1021/bi0496081.

Abstract

The 1.30 A resolution crystal structure of nickel superoxide dismutase (NiSOD) identifies a novel SOD fold, assembly, and Ni active site. NiSOD is a hexameric assembly of right-handed 4-helix bundles of up-down-up-down topology with N-terminal hooks chelating the active site Ni ions. This newly identified nine-residue Ni-hook structural motif (His-Cys-X-X-Pro-Cys-Gly-X-Tyr) provides almost all interactions critical for metal binding and catalysis, and thus will likely be diagnostic of NiSODs. Conserved lysine residues are positioned for electrostatic guidance of the superoxide anion to the narrow active site channel. Apo structures show that the Ni-hook motif is unfolded prior to metal binding. The active site Ni geometry cycles from square planar Ni(II), with thiolate (Cys2 and Cys6) and backbone nitrogen (His1 and Cys2) ligands, to square pyramidal Ni(III) with an added axial His1 side chain ligand, consistent with electron paramagentic resonance spectroscopy. Analyses of the three NiSOD structures and comparisons to the Cu,Zn and Mn/Fe SODs support specific molecular mechanisms for NiSOD maturation and catalysis, and identify important structure-function relationships conserved among SODs.

摘要

镍超氧化物歧化酶(NiSOD)分辨率为1.30埃的晶体结构确定了一种新型的超氧化物歧化酶折叠、组装方式及镍活性位点。NiSOD是一种六聚体,由具有上下上下拓扑结构的右手4螺旋束组成,其N端钩子螯合活性位点的镍离子。这个新发现的九残基镍钩结构基序(His-Cys-X-X-Pro-Cys-Gly-X-Tyr)提供了几乎所有对金属结合和催化至关重要的相互作用,因此可能是NiSOD的诊断标志。保守的赖氨酸残基的位置可将超氧阴离子静电导向狭窄的活性位点通道。脱辅基结构表明,镍钩基序在金属结合之前是未折叠的。活性位点的镍几何结构从具有硫醇盐(Cys2和Cys6)和主链氮(His1和Cys2)配体的平面正方形Ni(II),循环到带有额外轴向His1侧链配体的四方锥Ni(III),这与电子顺磁共振光谱一致。对三种NiSOD结构的分析以及与铜锌和锰/铁超氧化物歧化酶的比较,支持了NiSOD成熟和催化的特定分子机制,并确定了超氧化物歧化酶之间保守的重要结构-功能关系。

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