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一种设计用于多糖氧化解聚的铜组氨酸支撑酶,作为裂解多糖单加氧酶的模型。

A designed Copper Histidine-brace enzyme for oxidative depolymerization of polysaccharides as a model of lytic polysaccharide monooxygenase.

作者信息

Liu Yiwei, Harnden Kevin A, Van Stappen Casey, Dikanov Sergei A, Lu Yi

机构信息

Department of Chemistry, University of Illinois at Urbana-Champaign, Urbana, IL 61801.

Department of Chemistry, University of Texas at Austin, Austin, TX 78712.

出版信息

Proc Natl Acad Sci U S A. 2023 Oct 24;120(43):e2308286120. doi: 10.1073/pnas.2308286120. Epub 2023 Oct 16.

Abstract

The "Histidine-brace" (His-brace) copper-binding site, composed of Cu(His) with a backbone amine, is found in metalloproteins with diverse functions. A primary example is lytic polysaccharide monooxygenase (LPMO), a class of enzymes that catalyze the oxidative depolymerization of polysaccharides, providing not only an energy source for native microorganisms but also a route to more effective industrial biomass conversion. Despite its importance, how the Cu His-brace site performs this unique and challenging oxidative depolymerization reaction remains to be understood. To answer this question, we have designed a biosynthetic model of LPMO by incorporating the Cu His-brace motif into azurin, an electron transfer protein. Spectroscopic studies, including ultraviolet-visible (UV-Vis) absorption and electron paramagnetic resonance, confirm copper binding at the designed His-brace site. Moreover, the designed protein is catalytically active towards both cellulose and starch, the native substrates of LPMO, generating degraded oligosaccharides with multiturnovers by C1 oxidation. It also performs oxidative cleavage of the model substrate 4-nitrophenyl-D-glucopyranoside, achieving a turnover number ~9% of that of a native LPMO assayed under identical conditions. This work presents a rationally designed artificial metalloenzyme that acts as a structural and functional mimic of LPMO, which provides a promising system for understanding the role of the Cu His-brace site in LPMO activity and potential application in polysaccharide degradation.

摘要

由带有主链胺的铜(组氨酸)组成的“组氨酸支架”(His-brace)铜结合位点存在于具有多种功能的金属蛋白中。一个主要例子是裂解多糖单加氧酶(LPMO),这是一类催化多糖氧化解聚的酶,不仅为天然微生物提供能量来源,还为更有效的工业生物质转化提供途径。尽管其很重要,但铜组氨酸支架位点如何进行这种独特且具有挑战性的氧化解聚反应仍有待了解。为了回答这个问题,我们通过将铜组氨酸支架基序整合到电子传递蛋白天青蛋白中,设计了一种LPMO的生物合成模型。包括紫外可见(UV-Vis)吸收和电子顺磁共振在内的光谱研究证实了铜在设计的组氨酸支架位点处的结合。此外,设计的蛋白质对LPMO的天然底物纤维素和淀粉均具有催化活性,通过C1氧化产生具有多轮周转的降解寡糖。它还能对模型底物4-硝基苯基-D-吡喃葡萄糖苷进行氧化裂解,在相同条件下测得的周转数约为天然LPMO的9%。这项工作展示了一种经过合理设计的人工金属酶,它作为LPMO的结构和功能模拟物,为理解铜组氨酸支架位点在LPMO活性中的作用以及在多糖降解中的潜在应用提供了一个有前景的系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7161/10614608/5103a7a84519/pnas.2308286120fig01.jpg

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