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桥接酶促 PET 降解结构-功能范式中的差距 - 芳香族残基与催化和锚定位点的平衡相互作用。

Bridging the Gap in the Structure-Function Paradigm of Enzymatic PET Degradation-Aromatic Residue Driven Balanced Interactions with Catalytic and Anchoring Subsite.

机构信息

Department of Applied Chemistry, Cochin University of Science and Technology, Thrikakkara, Kochi, Kerala, 682 022, India.

Department of Chemistry, University of Calicut, Calicut University P.O., Malappuram, Kerala, 673 635, India.

出版信息

Chembiochem. 2024 Nov 4;25(21):e202400555. doi: 10.1002/cbic.202400555. Epub 2024 Oct 17.

Abstract

Understanding all parameters contributing to enzyme activity is crucial in enzyme catalysis. For enzymatic PET degradation, this involves examining the formation of the enzyme-PET complex. In IsPETase (WT), a PET-degrading enzyme from Ideonella sakaiensis, mutating two non-catalytic residues (DM) significantly enhances activity. Such mutations, depending on their position in the tertiary structure, fine-tune enzyme function. However, detailed molecular insights into these mutations' structure-function relationship for PET degradation are lacking. This study characterizes IsPETase's catalytic ability compared to WT TfCut2 using molecular dynamics simulations and quantum mechanical methods. We explore the conformational landscape of the enzyme-PET complex and quantify residue-wise interaction energy. Notably, aromatic and hydrophobic residues Tyr, Trp, and Ile in the catalytic subsite S1, and aromatic Phe and polar Asn in the anchoring subsite S3, crucially optimize PET binding. These residues enhance PET specificity over non-aromatic plastics. Our findings suggest that the balance between binding at subsite S1 and subsite S3, which is influenced by cooperative mutations, underlies catalytic activity. This balance shows a positive correlation with experimentally obtained kcat/Km values: WT TfCut2<WT IsPETase≪DM IsPETase.

摘要

理解所有影响酶活性的参数在酶催化中至关重要。对于酶促 PET 降解,这涉及到检查酶-PET 复合物的形成。在 IsPETase(WT)中,一种来自 Ideonella sakaiensis 的 PET 降解酶,突变两个非催化残基(DM)可显著提高活性。这些突变取决于它们在三级结构中的位置,可微调酶的功能。然而,对于这些突变对 PET 降解的结构-功能关系的详细分子见解仍然缺乏。本研究使用分子动力学模拟和量子力学方法,比较了 IsPETase 的催化能力与 WT TfCut2。我们探索了酶-PET 复合物的构象景观,并量化了残基相互作用能。值得注意的是,催化亚基 S1 中的芳香族和疏水性残基 Tyr、Trp 和 Ile,以及锚定亚基 S3 中的芳香族残基 Phe 和极性残基 Asn,对 PET 结合至关重要。这些残基提高了 PET 的特异性,使其优于非芳香族塑料。我们的研究结果表明,亚基 S1 和亚基 S3 之间的结合平衡,受协同突变的影响,是催化活性的基础。这种平衡与实验获得的 kcat/Km 值呈正相关:WT TfCut2<WT IsPETase≪DM IsPETase。

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