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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Understanding the Thermostability and Activity of Bacillus subtilis Lipase Mutants: Insights from Molecular Dynamics Simulations
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Understanding the Thermostability and Activity of Bacillus subtilis Lipase Mutants: Insights from Molecular Dynamics Simulations

机译:了解枯草芽孢杆菌脂肪酶突变体的热稳定性和活性:分子动力学模拟的见解。

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摘要

Improving the thermostability of industrial enzymes is an important protein engineering challenge. Point mutations, induced to increase thermostability, affect the structure and dynamics of the target protein in several ways and thus can also affect its activity. There appears to be no general rules for improving the thermostabilty of enzymes without adversely affecting their enzymatic activity. We report MD simulations, of wild type Bacillus subtilis lipase (WT) and its six progressively thermostable mutants (2M, 3M, 4M, 6M, 9M, and 12M), performed at different temperatures, to address this issue. Less thermostable mutants (LTMs), 2M to 6M, show WT-like dynamics at all simulation temperatures. However, the two more thermostable mutants (MTMs) show the required flexibility at appropriate temperature ranges and maintain conformational stability at high temperature. They show a deep and rugged free-energy landscape, confining them within a near-native conformational space by conserving noncovalent interactions, and thus protecting them from possible aggregation. In contrast, the LTMs having marginally higher thermostabilities than WT show greater probabilities of accessing non-native conformations, which, due to aggregation, have reduced possibilities of reverting to their respective native states under refolding conditions. Our analysis indicates the possibility of nonadditive effects of point mutations on the conformational stability of LTMs.
机译:改善工业酶的热稳定性是重要的蛋白质工程挑战。诱导增加热稳定性的点突变以几种方式影响靶蛋白的结构和动力学,因此也可以影响其活性。似乎没有提高酶的热稳定性而不会对酶活性产生不利影响的一般规则。我们报告了在不同温度下进行的野生型枯草芽孢杆菌脂肪酶(WT)及其六个逐步热稳定突变体(2M,3M,4M,6M,9M和12M)的MD模拟,以解决此问题。不太耐热的突变体(LTM),从2M到6M,在所有模拟温度下均表现出类似WT的动力学。但是,另外两个热稳定突变体(MTM)在适当的温度范围内显示出所需的柔韧性,并在高温下保持构象稳定性。它们显示出深deep而粗糙的自由能景观,通过保留非共价相互作用将它们限制在近乎自然的构象空间内,从而保护它们免受可能的聚集。相反,具有比WT稍高的热稳定性的LTM显示出访问非天然构象的更大概率,由于聚集,在重新折叠条件下还原为它们各自的原始状态的可能性降低了。我们的分析表明,点突变对LTM构象稳定性无累加作用的可能性。

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