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揭示一种工程化DyP型过氧化物酶在中性至碱性pH条件下活性提高背后的分子细节。

Unveiling molecular details behind improved activity at neutral to alkaline pH of an engineered DyP-type peroxidase.

作者信息

Borges Patrícia T, Silva Diogo, Silva Tomás F D, Brissos Vânia, Cañellas Marina, Lucas Maria Fátima, Masgrau Laura, Melo Eduardo P, Machuqueiro Miguel, Frazão Carlos, Martins Lígia O

机构信息

Instituto de Tecnologia Química e Biológica António Xavier, Universidade NOVA de Lisboa, Av. da República, 2780-157 Oeiras, Portugal.

BioISI - Biosystems & Integrative Sciences Institute, Faculdade de Ciências, Universidade de Lisboa, 1749-016 Lisboa, Portugal.

出版信息

Comput Struct Biotechnol J. 2022 Jul 21;20:3899-3910. doi: 10.1016/j.csbj.2022.07.032. eCollection 2022.

Abstract

DyP-type peroxidases (DyPs) are microbial enzymes that catalyze the oxidation of a wide range of substrates, including synthetic dyes, lignin-derived compounds, and metals, such as Mn and Fe, and have enormous biotechnological potential in biorefineries. However, many questions on the molecular basis of enzyme function and stability remain unanswered. In this work, high-resolution structures of DyP wild-type and two engineered variants (6E10 and 29E4) generated by directed evolution were obtained. The X-ray crystal structures revealed the typical ferredoxin-like folds, with three heme access pathways, two tunnels, and one cavity, limited by three long loops including catalytic residues. Variant 6E10 displays significantly increased loops' flexibility that favors function over stability: despite the considerably higher catalytic efficiency, this variant shows poorer protein stability compared to wild-type and 29E4 variants. Constant-pH MD simulations revealed a more positively charged microenvironment near the heme pocket of variant 6E10, particularly in the neutral to alkaline pH range. This microenvironment affects enzyme activity by modulating the p of essential residues in the heme vicinity and should account for variant 6E10 improved activity at pH 7-8 compared to the wild-type and 29E4 that show optimal enzymatic activity close to pH 4. Our findings shed light on the structure-function relationships of DyPs at the molecular level, including their pH-dependent conformational plasticity. These are essential for understanding and engineering the catalytic properties of DyPs for future biotechnological applications.

摘要

DyP型过氧化物酶(DyPs)是一类微生物酶,可催化多种底物的氧化反应,包括合成染料、木质素衍生化合物以及锰和铁等金属,在生物炼制中具有巨大的生物技术潜力。然而,关于酶功能和稳定性的分子基础仍有许多问题未得到解答。在这项研究中,我们获得了通过定向进化产生的DyP野生型和两个工程变体(6E10和29E4)的高分辨率结构。X射线晶体结构揭示了典型的铁氧化还原蛋白样折叠,具有三条血红素通道、两条隧道和一个腔,由包括催化残基在内的三个长环限制。变体6E10的环柔韧性显著增加,有利于功能而非稳定性:尽管催化效率显著提高,但与野生型和29E4变体相比,该变体的蛋白质稳定性较差。恒定pH分子动力学模拟显示,变体6E10的血红素口袋附近存在带更多正电荷的微环境,特别是在中性至碱性pH范围内。这种微环境通过调节血红素附近必需残基的p来影响酶活性,这应该解释了变体6E10在pH 7-8时比野生型和29E4具有更高的活性,而野生型和29E4在接近pH 4时显示最佳酶活性。我们的研究结果揭示了DyPs在分子水平上的结构-功能关系,包括其pH依赖性构象可塑性。这些对于理解和改造DyPs的催化特性以用于未来的生物技术应用至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2cf3/9334217/5d0a12743f43/ga1.jpg

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