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A Study of the Structural Properties and Thermal Stability of Chitosanases EAG1 by Molecular Dynamics Simulations

机译:壳聚糖酶EAG1的结构性质和热稳定性的分子动力学模拟研究

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摘要

Chitosanases EAG1, a classical glycoside hydrolase from Bacillus ehimensis , is relatively unstable with higher temperature. This shortcoming seriously restricts its industrial application. Therefore, it is crucial to clarify the theoretical basis of thermo stability and to produce enzymes with high activity and stability. Using the structural modeling and molecular dynamical simulation, residues Leu84, Gly113, Asp116, Ala207 and Leu286 were believed to be the key residues for structural stability. Then the predicted residue Leu84 was mutated to ALA. It was shown that the L84A mutation can improve the thermal stability of chitosanases EAG1. Together with previous studies, mutations of G113C, D116C, A207C and L286C forms two sulfur bonds can change the thermal stability of EAG1. The results suggest that the thermal stability of EAG1 could be engineered by site-directed mutagenesis on the conserved residues. This protocol could be employed for improving thermal stability of other chitosanases EAG1.
机译:壳聚糖酶EAG1是一种来自Ehimensis的经典糖苷水解酶,在较高温度下相对不稳定。该缺点严重限制了其工业应用。因此,弄清热稳定性的理论基础并生产具有高活性和稳定性的酶至关重要。使用结构建模和分子动力学模拟,残基Leu84,Gly113,Asp116,Ala207和Leu286被认为是结构稳定性的关键残基。然后将预测的残基Leu84突变为ALA。结果表明,L84A突变可以提高壳聚糖酶EAG1的热稳定性。与以前的研究一起,G113C,D116C,A207C和L286C的突变形成两个硫键可以改变EAG1的热稳定性。结果表明,可以通过对保守残基进行定点诱变来设计EAG1的热稳定性。该协议可用于改善其他壳聚糖酶EAG1的热稳定性。

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