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多糖裂解酶 Smlt1473 对 pH 具有选择性底物特异性的结构见解。

Structural insights into the mechanism of pH-selective substrate specificity of the polysaccharide lyase Smlt1473.

机构信息

School of Biological Sciences, National Institute of Science Education and Research, Bhubaneswar, Odisha, India; Homi Bhabha National Institute, Mumbai, Maharashtra, India.

School of Biological Sciences, National Institute of Science Education and Research, Bhubaneswar, Odisha, India.

出版信息

J Biol Chem. 2021 Oct;297(4):101014. doi: 10.1016/j.jbc.2021.101014. Epub 2021 Aug 3.

Abstract

Polysaccharide lyases (PLs) are a broad class of microbial enzymes that degrade anionic polysaccharides. Equally broad diversity in their polysaccharide substrates has attracted interest in biotechnological applications such as biomass conversion to value-added chemicals and microbial biofilm removal. Unlike other PLs, Smlt1473 present in the clinically relevant Stenotrophomonas maltophilia strain K279a demonstrates a wide range of pH-dependent substrate specificities toward multiple, diverse polysaccharides: hyaluronic acid (pH 5.0), poly-β-D-glucuronic (celluronic) acid (pH 7.0), poly-β-D-mannuronic acid, and poly-α-L-guluronate (pH 9.0). To decode the pH-driven multiple substrate specificities and selectivity in this single enzyme, we present the X-ray structures of Smlt1473 determined at multiple pH values in apo and mannuronate-bound states as well as the tetra-hyaluronate-docked structure. Our results indicate that structural flexibility in the binding site and N-terminal loop coupled with specific substrate stereochemistry facilitates distinct modes of entry for substrates having diverse charge densities and chemical structures. Our structural analyses of wild-type apo structures solved at different pH values (5.0-9.0) and pH-trapped (5.0 and 7.0) catalytically relevant wild-type mannuronate complexes (1) indicate that pH modulates the catalytic microenvironment for guiding structurally and chemically diverse polysaccharide substrates, (2) further establish that molecular-level fluctuation in the enzyme catalytic tunnel is preconfigured, and (3) suggest that pH modulates fluctuations resulting in optimal substrate binding and cleavage. Furthermore, our results provide key insight into how strategies to reengineer both flexible loop and regions distal to the active site could be developed to target new and diverse substrates in a wide range of applications.

摘要

多糖裂解酶(PLs)是一大类能够降解阴离子多糖的微生物酶。由于其多糖底物具有广泛的多样性,因此在生物技术应用中引起了广泛关注,例如将生物质转化为有价值的化学品和去除微生物生物膜。与其他 PLs 不同,临床相关嗜麦芽窄食单胞菌 K279a 菌株中存在的 Smlt1473 对多种不同多糖具有广泛的 pH 依赖性底物特异性:透明质酸(pH5.0)、聚-β-D-葡萄糖醛酸(celluronic)酸(pH7.0)、聚-β-D-甘露糖和聚-α-L-古洛糖酸(pH9.0)。为了解码该单一酶中 pH 驱动的多种底物特异性和选择性,我们展示了 Smlt1473 在多个 pH 值下的 X 射线结构,分别为无配体状态、mannuronate 结合状态以及四透明质酸钠结合状态。我们的结果表明,结合位点和 N 端环的结构灵活性以及特定的底物立体化学促进了具有不同电荷密度和化学结构的底物以不同的方式进入。我们对不同 pH 值(5.0-9.0)下和 pH 捕获(5.0 和 7.0)的野生型 apo 结构的结构分析(1)表明 pH 调节了催化微环境,以指导具有结构和化学多样性的多糖底物,(2)进一步证实了酶催化隧道中分子水平的波动是预先配置的,(3)表明 pH 调节波动,从而实现最佳的底物结合和切割。此外,我们的结果为如何重新设计灵活环和远离活性位点的区域提供了关键的见解,以便在广泛的应用中针对新的和不同的底物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7e18/8511899/e7d5395b4fa7/gr1.jpg

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