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白腐真菌耐热菌漆酶降解聚乳酸的独特机制的结构见解。

Structural insights into the unique polylactate-degrading mechanism of Thermobifida alba cutinase.

机构信息

Department of Biomolecular Engineering, Graduate School of Science and Technology, Kyoto Institute of Technology, Japan.

Department of Industrial Biotechnology, Faculty of Agro-Industry, Prince of Songkla University, Hat Yai, Thailand.

出版信息

FEBS J. 2019 Jun;286(11):2087-2098. doi: 10.1111/febs.14781. Epub 2019 Feb 28.

DOI:10.1111/febs.14781
PMID:30761732
Abstract

Cutinases are enzymes known to degrade polyester-type plastics. Est119, a plastic-degrading type of cutinase from Thermobifida alba AHK119 (herein called Ta_cut), shows a broad substrate specificity toward polyesters, and can degrade substrates including polylactic acid (PLA). However, the PLA-degrading mechanism of cutinases is still poorly understood. Here, we report the structure complexes of cutinase with ethyl lactate (EL), the constitutional unit. From this complex structure, the electron density maps clearly showed one lactate (LAC) and one EL occupying different positions in the active site cleft. The binding mode of EL is assumed to show a figure prior to reaction and LAC is an after-reaction product. These complex structures demonstrate the role of active site residues in the esterase reaction and substrate recognition. The complex structures were compared with other documented complex structures of cutinases and with the structure of PETase from Ideonella sakaiensis. The amino acid residues involved in substrate interaction are highly conserved among these enzymes. Thus, mapping the precise interactions in the Ta_cut and EL complex will pave the way for understanding the plastic-degrading mechanism of cutinases and suggest ways of creating more potent enzymes by structural protein engineering.

摘要

角质酶是已知能够降解聚酯型塑料的酶。来自嗜热放线菌 AHK119 的塑料降解型角质酶 Est119(本文称为 Ta_cut)对聚酯具有广泛的底物特异性,能够降解聚乳酸(PLA)等底物。然而,角质酶的 PLA 降解机制仍知之甚少。在此,我们报告了角质酶与结构单元乳酸乙酯(EL)的结构复合物。从这个复合物结构中,电子密度图清晰地显示了一个乳酸(LAC)和一个 EL 占据活性位点裂缝中的不同位置。EL 的结合模式被假定为显示反应前的形态,而 LAC 是反应后的产物。这些复合物结构展示了活性位点残基在酯酶反应和底物识别中的作用。将复合物结构与其他已记录的角质酶复合物结构以及来自 Ideonella sakaiensis 的 PETase 结构进行了比较。参与底物相互作用的氨基酸残基在这些酶中高度保守。因此,绘制 Ta_cut 和 EL 复合物中的精确相互作用图谱将为理解角质酶的塑料降解机制铺平道路,并通过结构蛋白工程提出创造更有效酶的方法。

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