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嗜热酶3-异丙基苹果酸脱氢酶的冷适应性

Cold adaptation of the thermophilic enzyme 3-isopropylmalate dehydrogenase.

作者信息

Yasugi M, Amino M, Suzuki T, Oshima T, Yamagishi A

机构信息

Institute of Applied Biochemistry, University of Tsukuba, Tsukuba, Ibaraki 305-8572, Japan.

出版信息

J Biochem. 2001 Mar;129(3):477-84. doi: 10.1093/oxfordjournals.jbchem.a002880.

Abstract

We have performed random mutagenesis coupled with selection to isolate mutant enzymes with high catalytic activities at low temperature from thermophilic 3-isopropylmalate dehydrogenase (IPMDH) originally isolated from Thermus thermophilus. Five cold-adapted mutant IPMDHs with single-amino-acid substitutions were obtained and analyzed. Kinetic analysis revealed that there are two types of cold-adapted mutant IPMDH: k(cat)-improved (improved in k(cat)) and K(m)-improved (improved in k(cat)/K(m)) types. To determine the mechanisms of cold adaptation of these mutants, thermodynamic parameters were estimated and compared with those of the Escherichia coli wild-type IPMDH. The Delta G(m) values for Michaelis intermediate formation of the k(cat)-improved-type enzymes were larger than that of the T. thermophilus wild-type IPMDH and similar to that of the E. coli wild-type IPMDH. The Delta G(m) values of K(m)-improved-type enzymes were smaller than that of the T. thermophilus wild-type IPMDH. Fitting of NAD(+) binding was improved in the K(m)-improved-type enzymes. The two types of cold-adapted mutants employed one of the two strategies of E. coli wild-type IPMDH: relative destabilization of the Michaelis complex in k(cat)-improved-type, and destabilization of the rate-limiting step in K(m)-improved type mutants. Some cold-adapted mutant IPMDHs retained thermostability similar to that of the T. thermophilus wild-type IPMDH.

摘要

我们进行了随机诱变并结合筛选,以从最初分离自嗜热栖热菌的嗜热3 - 异丙基苹果酸脱氢酶(IPMDH)中分离出在低温下具有高催化活性的突变酶。获得并分析了五个具有单氨基酸取代的冷适应突变型IPMDH。动力学分析表明,存在两种冷适应突变型IPMDH:k(cat)提高型(k(cat)得到改善)和K(m)提高型(k(cat)/K(m)得到改善)。为了确定这些突变体的冷适应机制,估算了热力学参数并与大肠杆菌野生型IPMDH的参数进行比较。k(cat)提高型酶形成米氏中间体的ΔG(m)值大于嗜热栖热菌野生型IPMDH的该值,且与大肠杆菌野生型IPMDH的相似。K(m)提高型酶的ΔG(m)值小于嗜热栖热菌野生型IPMDH的该值。K(m)提高型酶中NAD(+)结合的拟合得到改善。这两种冷适应突变体采用了大肠杆菌野生型IPMDH的两种策略之一:k(cat)提高型中米氏复合物的相对不稳定,以及K(m)提高型突变体中限速步骤的不稳定。一些冷适应突变型IPMDH保留了与嗜热栖热菌野生型IPMDH相似的热稳定性。

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