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嗜热酶3-异丙基苹果酸脱氢酶的低温适应性

Adaptation of a thermophilic enzyme, 3-isopropylmalate dehydrogenase, to low temperatures.

作者信息

Suzuki T, Yasugi M, Arisaka F, Yamagishi A, Oshima T

机构信息

Department of Life Science, Tokyo Institute of Technology, Nagatsuta 4259, Yokohama 226-8503, Japan.

出版信息

Protein Eng. 2001 Feb;14(2):85-91. doi: 10.1093/protein/14.2.85.

DOI:10.1093/protein/14.2.85
PMID:11297666
Abstract

Random mutagenesis coupled with screening of the active enzyme at a low temperature was applied to isolate cold-adapted mutants of a thermophilic enzyme. Four mutant enzymes with enhanced specific activities (up to 4.1-fold at 40 degrees C) at a moderate temperature were isolated from randomly mutated Thermus thermophilus 3-isopropylmalate dehydrogenase. Kinetic analysis revealed two types of cold-adapted mutants, i.e. k(cat)-improved and K(m)-improved types. The k(cat)-improved mutants showed less temperature-dependent catalytic properties, resulting in improvement of k(cat) (up to 7.5-fold at 40 degrees C) at lower temperatures with increased K(m) values mainly for NAD. The K(m)-improved enzyme showed higher affinities toward the substrate and the coenzyme without significant change in k(cat) at the temperatures investigated (30-70 degrees C). In k(cat)-improved mutants, replacement of a residue was found near the binding pocket for the adenine portion of NAD. Two of the mutants retained thermal stability indistinguishable from the wild-type enzyme. Extreme thermal stability of the thermophilic enzyme is not necessarily decreased to improve the catalytic function at lower temperatures. The present strategy provides a powerful tool for obtaining active mutant enzymes at lower temperatures. The results also indicate that it is possible to obtain cold-adapted mutant enzymes with high thermal stability.

摘要

通过随机诱变并结合在低温下筛选活性酶,来分离嗜热酶的冷适应突变体。从随机诱变的嗜热栖热菌3-异丙基苹果酸脱氢酶中分离出四种在中等温度下比活性增强(在40℃时高达4.1倍)的突变酶。动力学分析揭示了两种冷适应突变体,即k(cat)提高型和K(m)提高型。k(cat)提高型突变体表现出较少的温度依赖性催化特性,导致在较低温度下k(cat)提高(在40℃时高达7.5倍),同时主要针对NAD的K(m)值增加。K(m)提高型酶对底物和辅酶表现出更高的亲和力,在所研究的温度(30 - 70℃)下k(cat)没有显著变化。在k(cat)提高型突变体中,发现在NAD腺嘌呤部分的结合口袋附近有一个残基被取代。其中两个突变体保留了与野生型酶难以区分得热稳定性。嗜热酶的极端热稳定性不一定会降低以改善其在较低温度下的催化功能。目前的策略为在较低温度下获得活性突变酶提供了一个强大的工具。结果还表明有可能获得具有高热稳定性的冷适应突变酶。

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