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首页> 外文期刊>Catalysis science & technology >Semi-rational hinge engineering: modulating the conformational transformation of glutamate dehydrogenase for enhanced reductive amination activity towards non-natural substrates
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Semi-rational hinge engineering: modulating the conformational transformation of glutamate dehydrogenase for enhanced reductive amination activity towards non-natural substrates

机译:比较理性的时候铰链工程:调制构象转变谷氨酸为增强还原胺脱氢酶活动对非天然的基质

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The active site is the common hotspot for rational and semi-rational enzyme activity engineering. However, the active site represents only a small portion of the whole enzyme. Identifying more hotspots other than the active site for enzyme activity engineering should aid in the development of biocatalysts with better catalytic performance. Glutamate dehydrogenases (GluDHs) are promising and environmentally benign biocatalysts for the synthesis of valuable chiral l-amino acids by asymmetric reductive amination of alpha-keto acids. GluDHs contain an inter-domain hinge structure that facilitates dynamic reorientations of the domains relative to each other. Such hinge-bending conformational motions of GluDHs play an important role in regulating the catalytic activity. Thus, the hinge region represents a potential hotspot for catalytic activity engineering for GluDHs. Herein, we report semi-rational activity engineering of GluDHs with the hinge region as the hotspot. Mutants exhibiting significantly improved catalytic activity toward several non-natural substrates were identified and the highest activity increase reached 104-fold. Molecular dynamics simulations revealed that enhanced catalytic activity may arise from improving the open/closed conformational transformation efficiency of the protein with hinge engineering. In the batch production of three valuable l-amino acids, the mutants exhibited significantly improved catalytic efficiency, highlighting their industrial potential. Moreover, the catalytic activity of several active site tailored GluDHs was also increased by hinge engineering, indicating that hinge and active site engineering are compatible. The results show that the hinge region is a promising hotspot for activity engineering of GluDHs and provides a potent alternative for developing high-performance biocatalysts toward chiral l-amino acid production.
机译:活性部位是常见的热点理性和比较理性的时候酶活性工程。然而,活跃的网站只代表一个小部分的酶。酶的活性部位以外的热点工程应该援助活动生物催化剂有更好的催化的发展的性能。承诺和环保吗生物催化剂的合成有价值的手性l -氨基酸的不对称还原胺化作用alpha-keto酸。域间铰链结构,促进相对于动态做到域对方。GluDHs扮演重要角色的动作调节催化活性。铰链区代表一个潜在的热点催化活性GluDHs工程。在此,我们报告比较理性的时候活动工程的GluDHs铰链区热点。对几种提高催化活性非天然的基质是确定的活动增加最高达到104倍。分子动力学模拟显示提高催化活性可能出现提高打开/关闭的构象蛋白质的转化效率枢纽工程。三个宝贵的l -氨基酸,突变体表现出显著提高催化效率,强调他们的工业的潜力。几个活跃的网站定制GluDHs也增加了铰链工程,表明铰链和活性部位工程是兼容的。结果表明,铰链区是一个有前途的热点活动工程GluDHs和提供了一个有效的选择开发高性能的生物催化剂对手性l-amino酸生产。

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