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Switched reaction specificity in polyesterases towards amide bond hydrolysis by enzyme engineering

机译:通过酶工程将聚酯酶切换反应特异性朝向酰胺键水解

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The recalcitrance of plastics like nylon and other polyamides contributes to environmental problems (e.g. microplastics in oceans) and restricts possibilities for recycling. The fact that hitherto discovered amidases (EC 3.5.1. and 3.5.2.) only show no, or low, activity on polyamides currently obstructs biotechnological-assisted depolymerization of man-made materials. In this work, we capitalized on enzyme engineering to enhance the promiscuous amidase activity of polyesterases. Through enzyme design we created a reallocated water network adapted for hydrogen bond formation to synthetic amide backbones for enhanced transition state stabilization in the polyester-hydrolyzing biocatalysts Humicola insolens cutinase and Thermobifida cellulosilytica cutinase 1. This novel concept enabled increased catalytic efficiency towards amide-containing soluble substrates. The afforded enhanced hydrolysis of the amide bond-containing insoluble substrate 3PA 6,6 by designed variants was aligned with improved transition state stabilization identified by molecular dynamics (MD) simulations. Furthermore, the presence of a favorable water-molecule network that interacted with synthetic amides in the variants resulted in a reduced activity on polyethylene terephthalate (PET). Our data demonstrate the potential of using enzyme engineering to improve the amidase activity for polyesterases to act on synthetic amide-containing polymers.
机译:诸如尼龙和其他聚酰胺等塑料的克拉特氏素有助于环境问题(例如海洋中的微薄塑料),并限制回收的可能性。迄今为止发现酰胺酶(EC 3.5.1和3.5.2。)仅显示不显示或低,聚酰胺的活性目前阻碍了人造材料的生物技术辅助解聚。在这项工作中,我们利用酶工程资本化以增强聚酯酶的混杂酰胺酶活性。通过酶设计,我们创建了一种适用于合成酰胺骨架的氢键形成的重新分配的水网络,用于增强聚酯 - 水解的生物催化剂Humicola Insolalens Cutinase和Thermobifida Cellulosilytica Cux酶1。这种新颖的概念使催化效率提高了含酰胺可溶性的催化效率基板。通过设计变体的含酰胺键的不溶性底物3Pa 6,6的得到的增强的水解与通过分子动力学(MD)模拟鉴定的改进的过渡状态稳定对齐。此外,在变体中与合成酰胺相互作用的有利水分子网络的存在导致聚对苯二甲酸乙二醇酯(PET)的活性减少。我们的数据证明了使用酶工程改善聚酯酶的酰胺酶活性以作用于合成酰胺的聚合物的潜力。

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    《RSC Advances 》 |2019年第62期| 共10页
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  • 正文语种 eng
  • 中图分类 化学 ;
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