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从鞘氨醇单胞菌 DS-1 中提取的有机溶剂稳定胆固醇氧化酶的结构特征。

Structural characterization of the organic solvent-stable cholesterol oxidase from Chromobacterium sp. DS-1.

机构信息

Department of Chemistry and Biochemistry, University of California, Santa Barbara, CA 93106-9510, USA.

出版信息

J Struct Biol. 2010 Apr;170(1):32-40. doi: 10.1016/j.jsb.2010.01.012. Epub 2010 Jan 25.

Abstract

Cholesterol oxidase is of significant commercial interest as it is widely used as a biosensor for the detection of cholesterol in clinical samples, blood serum and food. Increased stability of this enzyme with regards to temperature and different solvent conditions are of great importance to the reliability and versatility of its applications. We here report the crystal structure of the cholesterol oxidase of Chromobacterium sp. DS-1 (CHOLOX). In contrast to other previously characterized cholesterol oxidases, this enzyme retains high activity in organic solvents and detergents at temperatures above 85 degrees C despite its mesophilic origin. With the availability of one other homologous oxidase of known three-dimensional structure, a detailed comparison of its sequence and structure was performed to elucidate the mechanisms of stabilization. In contrast to factors that typically contribute to the stability of thermophilic proteins, the structure of CHOLOX exhibits a larger overall cavity volume, less charged residues and less salt bridge interactions. Moreover, the vast majority of residue substitutions were found on or near the protein's solvent exposed surface. We propose that the engineering of enhanced stability may also be accomplished through selective engineering of the protein periphery rather than by redesigning its entire core.

摘要

胆固醇氧化酶具有重要的商业价值,因为它被广泛用作生物传感器,用于检测临床样本、血清和食品中的胆固醇。该酶在温度和不同溶剂条件下的稳定性的提高对于其应用的可靠性和多功能性非常重要。我们在此报告了 Chromobacterium sp. DS-1(CHOLOX)的胆固醇氧化酶的晶体结构。与其他以前表征的胆固醇氧化酶不同,尽管这种酶起源于嗜温菌,但它在 85°C 以上的有机溶剂和洗涤剂中仍保持高活性。由于有另一种已知三维结构的同源氧化酶,因此对其序列和结构进行了详细比较,以阐明稳定的机制。与通常有助于耐热蛋白稳定性的因素相反,CHOLOX 的结构具有更大的整体腔体积、更少的带电荷残基和更少的盐桥相互作用。此外,绝大多数取代残基位于蛋白质的溶剂暴露表面上或附近。我们提出,通过选择性地对蛋白质的外围进行工程设计,而不是重新设计其整个核心,也可以实现增强稳定性的工程设计。

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