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通过化学修饰提高酶的功能。

Chemical modification of enzymes for enhanced functionality.

作者信息

DeSantis G, Jones J B

机构信息

Department of Chemistry, University of Toronto, 80 St George Street, Toronto, Ontario, M5S 3H6, Canada.

出版信息

Curr Opin Biotechnol. 1999 Aug;10(4):324-30. doi: 10.1016/S0958-1669(99)80059-7.

Abstract

The explosion in commercial and synthetic applications of enzymes has stimulated much of the interest in enhancing enzyme functionality and stability. Covalent chemical modification, the original method available for altering protein properties, has now re-emerged as a powerful complementary approach to site-directed mutagenesis and directed evolution for tailoring proteins and enzymes. Glutaraldehyde crosslinking of enzyme crystals and polyethylene glycol (PEG) modification of enzyme surface amino groups are practical methods to enhance biocatalyst stability. Whereas crosslinking of enzyme crystals generates easily recoverable insoluble biocatalysts, PEGylation increases solubility in organic solvents. Chemical modification has been exploited for the incorporation of cofactors onto protein templates and for atom replacement in order to generate new functionality, such as the conversion of a hydrolase into a peroxidase. Despite the breadth of applicability of chemically modified enzymes, a difficulty that has previously impeded their implementation is the lack of chemo- or regio-specificity of chemical modifications, which can yield heterogeneous and irreproducible product mixtures. This challenge has recently been addressed by the introduction of a unique position for modification by a site-directed mutation that can subsequently be chemically modified to introduce an unnatural amino acid sidechain in a highly chemo- and regio-specific manner.

摘要

酶在商业和合成应用中的迅猛发展激发了人们对提高酶功能和稳定性的浓厚兴趣。共价化学修饰作为最初可用于改变蛋白质性质的方法,如今已重新成为一种强大的补充方法,可与定点诱变和定向进化相结合,用于定制蛋白质和酶。酶晶体的戊二醛交联以及酶表面氨基的聚乙二醇(PEG)修饰是增强生物催化剂稳定性的实用方法。酶晶体交联可生成易于回收的不溶性生物催化剂,而聚乙二醇化则可增加在有机溶剂中的溶解度。化学修饰已被用于将辅因子掺入蛋白质模板以及进行原子置换,以产生新的功能,例如将水解酶转化为过氧化物酶。尽管化学修饰酶具有广泛的适用性,但此前阻碍其应用的一个难题是化学修饰缺乏化学或区域特异性,这可能会产生异质且不可重复的产物混合物。最近,通过定点突变引入一个独特的修饰位点,随后可对其进行化学修饰,以高度化学和区域特异性的方式引入非天然氨基酸侧链,从而解决了这一挑战。

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