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裂解多糖单加氧酶与糖苷水解酶的相互作用。

The interplay between lytic polysaccharide monooxygenases and glycoside hydrolases.

机构信息

Faculty of Chemistry, Biotechnology, and Food Science, Norwegian University of Life Sciences (NMBU), P.O. Box 5003, N-1432 Ås, Norway.

Department of Biotechnology and Biomedicine, Section for Protein Chemistry and Enzyme Technology, DTU, Søltofts Plads, 224, 030 2800 Kgs. Lyngby, Denmark.

出版信息

Essays Biochem. 2023 Apr 18;67(3):551-559. doi: 10.1042/EBC20220156.

Abstract

In nature, enzymatic degradation of recalcitrant polysaccharides such as chitin and cellulose takes place by a synergistic interaction between glycoside hydrolases (GHs) and lytic polysaccharide monooxygenases (LPMOs). The two different families of carbohydrate-active enzymes use two different mechanisms when breaking glycosidic bonds between sugar moieties. GHs employ a hydrolytic activity and LPMOs are oxidative. Consequently, the topologies of the active sites differ dramatically. GHs have tunnels or clefts lined with a sheet of aromatic amino acid residues accommodating single polymer chains being threaded into the active site. LPMOs are adapted to bind to the flat crystalline surfaces of chitin and cellulose. It is believed that the LPMO oxidative mechanism provides new chain ends that the GHs can attach to and degrade, often in a processive manner. Indeed, there are many reports of synergies as well as rate enhancements when LPMOs are applied in concert with GHs. Still, these enhancements vary in magnitude with respect to the nature of the GH and the LPMO. Moreover, impediment of GH catalysis is also observed. In the present review, we discuss central works where the interplay between LPMOs and GHs has been studied and comment on future challenges to be addressed to fully use the potential of this interplay to improve enzymatic polysaccharide degradation.

摘要

在自然界中,糖苷水解酶(GHs)和裂解多糖单加氧酶(LPMOs)之间的协同作用促使甲壳素和纤维素等难降解多糖发生酶促降解。这两种不同的碳水化合物活性酶家族在打断糖基之间的糖苷键时采用了两种不同的机制。GHs 采用水解活性,而 LPMOs 是氧化的。因此,活性位点的拓扑结构差异很大。GHs 具有由芳香族氨基酸残基组成的隧道或裂缝,容纳单条聚合物链被穿入活性位点。LPMOs 适用于结合甲壳素和纤维素的平整结晶表面。据信,LPMO 的氧化机制提供了新的链端,GHs 可以附着在这些链端并进行降解,通常以连续的方式进行。事实上,有许多报道称,当 LPMOs 与 GHs 协同应用时,会产生协同作用和速率增强。尽管如此,这些增强效果的幅度取决于 GH 和 LPMO 的性质。此外,还观察到 GH 催化的抑制。在本综述中,我们讨论了研究 LPMOs 和 GHs 相互作用的核心工作,并对未来需要解决的挑战进行了评论,以便充分利用这种相互作用的潜力来提高酶促多糖降解。

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