超氧化物歧化酶的结构、功能及应用。

J V Bannister, W H Bannister, G Rotilio
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引用次数: 844

摘要

超氧化物歧化酶(SOD)是一种具有多种分支的酶。这篇综述试图理解SOD作为一个结构,功能和生物学实体。因此,审查分为三个部分。第一部分从蛋白质结构的角度讨论SOD,从一级到二级以及三种形式的SOD:铜/锌SOD、锰SOD和铁SOD的三维结构。这是酶的结构知识的顺序。铁SOD是原核生物和一些高等植物的酶。锰SOD是原核生物和真核生物的一种酶。铜/锌超氧化物歧化酶是真核生物和某些原核生物的酶。本文讨论了三种SOD的进化关系、铜/锌SOD基因在原核生物中的地位以及SOD基因的克隆和测序。第二部分综述了SOD在三种形式下的催化机理。从各种光谱研究中得出的结构和机理结论被严格考虑。对铜/锌超氧化物歧化酶的活性位点进行了详细的描述。第三部分是对氧毒性背景下SOD的综述。在考虑了超氧化物毒性和超氧化物病理学问题后,讨论了SOD在生化、药理学或临床环境中作为工具进行研究或使用的几个领域,包括群体遗传学;称21三体综合症;发育与衰老;铜、锌、锰的营养状况;溶血和贫血;肺和神经系统的氧中毒;炎症、自身免疫性疾病、染色体断裂、缺血和退行性改变;辐射损伤;和恶性肿瘤。对疾病状态下SOD活性的测量给出了一个全面的描述,并在几个点上考虑了超氧化物相关疾病的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Aspects of the structure, function, and applications of superoxide dismutase.

The current status of superoxide dismutase (SOD) is that it is an enzyme with diverse ramifications. This review attempts an understanding of SOD as a structural, functional, and biological entity. Accordingly, the review is in three parts. The first part discusses SOD in terms of protein structure, proceeding from primary to secondary and three-dimensional structure for the three forms of SOD: copper/zinc SOD, manganese SOD, and iron SOD. This is the order of structural knowledge of the enzyme. Iron SOD is an enzyme of prokaryotes and some higher plants. Manganese SOD is an enzyme of prokaryotes and eukaryotes. Copper/zinc SOD is an enzyme of eukaryotes and certain prokaryotes. The evolutionary relationships of the three forms of SOD, the status of the copper/zinc SOD gene in prokaryotes, and the cloning and sequencing of SOD genes are discussed. The second part of the review deals with the catalytic mechanism of SOD in the three forms of the enzyme. Structural and mechanistic conclusions from various spectroscopic studies are critically considered. A detailed picture is given of the active site of copper/zinc SOD. The third part is a review of SOD in the general context of oxygen toxicity. After consideration of the question of superoxide toxicity and superoxide pathology, several areas in which SOD has been investigated or used as a tool in a biochemical, pharmacological, or clinical context are discussed, including population genetics; trisomy 21; development and senescence; the nutritional copper, zinc, and manganese status; hemolysis and anemia; oxygen toxicity in the lung and nervous system; inflammation, autoimmune disease and chromosome breakage, ischemia and degenerative changes; radiation damage; and malignancy. A comprehensive picture is given of measurements of SOD activity in disease states, and the question of superoxide-related disease is considered at several points.

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