亚基界面van der Waals体积减小导致3-异丙基苹果酸脱氢酶不可逆失活,提高了热稳定性。

Takatoshi Ohkuri, Akihiko Yamagishi
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引用次数: 10

摘要

我们研究了枯草芽孢杆菌二聚体酶3-异丙基苹果酸脱氢酶(IPMDH)亚基-亚基界面稳定性的影响因素。利用位点定向诱变将亚基相互作用中的关键残基蛋氨酸256替换为其他氨基酸。通过分析热处理后的残余活性,考察了突变酶对不可逆失活的热稳定性。突变M256V和M256A的热稳定性分别提高了2.0和6.0℃,而突变M256L和M256I的热稳定性没有影响。M256F突变酶的热稳定性比野生型酶低4.0℃。令我们惊讶的是,增加酶疏水核心内256号残基的疏水性会导致较低的热稳定性。突变酶的热稳定性与256位侧链的体积呈负相关。根据大肠杆菌IPMDH的x射线晶体结构,预测枯草芽孢杆菌同源物M256附近的环境为空间拥挤环境。这些结果表明Met256阻碍了有利的包装。在256位引入一个较小的氨基酸改善了IPMDH的填充并稳定了二聚体结构。疏水亚基界面上氨基酸残基的范德华体积是维持亚基-亚基界面稳定性的重要因素,在中亲水性IPMDH酶中并不总是优化的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Increased thermal stability against irreversible inactivation of 3-isopropylmalate dehydrogenase induced by decreased van der Waals volume at the subunit interface.

We have investigated factors affecting stability at the subunit-subunit interface of the dimeric enzyme 3-isopropylmalate dehydrogenase (IPMDH) from Bacillus subtilis. Site-directed mutagenesis was used to replace methionine 256, a key residue in the subunit interaction, with other amino acids. Thermal stability against irreversible inactivation of the mutated enzymes was examined by analyzing the residual activity after heat treatment. The mutations M256V and M256A increased thermostability by 2.0 and 6.0 degrees C, respectively, whereas the mutations M256L and M256I had no effect. Thermostability of the M256F mutated enzyme was 4.0 degrees C lower than that of the wild-type enzyme. To our surprise, increasing the hydrophobicity of residue 256 within the hydrophobic core of the enzyme resulted in a lower thermal stability. The mutated enzymes showed an inverse correlation between thermostability and the volume of the side chain at position 256. Based on the X-ray crystallographic structure of Escherichia coli IPMDH, the environment around M256 in the B.subtilis homolog is predicted to be sterically crowded. These results suggest that Met256 prevents favorable packing. Introduction of a smaller amino acid at position 256 improves the packing and stabilizes the dimeric structure of IPMDH. The van der Waals volume of the amino acid residue at the hydrophobic subunit interface is an important factor for maintaining the stability of the subunit-subunit interface and is not always optimized in the mesophilic IPMDH enzyme.

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