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关于裂解多糖单加氧酶生物学功能的扩展

On the expansion of biological functions of lytic polysaccharide monooxygenases.

作者信息

Vandhana Theruvothu Madathil, Reyre Jean-Lou, Sushmaa Dangudubiyyam, Berrin Jean-Guy, Bissaro Bastien, Madhuprakash Jogi

机构信息

Department of Plant Sciences, School of Life Sciences, University of Hyderabad, Gachibowli, Hyderabad, 500046, India.

INRAE, UMR1163 Biodiversité et Biotechnologie Fongiques, Aix Marseille University, 13009, Marseille, France.

出版信息

New Phytol. 2022 Mar;233(6):2380-2396. doi: 10.1111/nph.17921. Epub 2022 Jan 8.

DOI:10.1111/nph.17921
PMID:34918344
Abstract

Lytic polysaccharide monooxygenases (LPMOs) constitute an enigmatic class of enzymes, the discovery of which has opened up a new arena of riveting research. LPMOs can oxidatively cleave the glycosidic bonds found in carbohydrate polymers enabling the depolymerisation of recalcitrant biomasses, such as cellulose or chitin. While most studies have so far mainly explored the role of LPMOs in a (plant) biomass conversion context, alternative roles and paradigms begin to emerge. In the present review, we propose a historical perspective of LPMO research providing a succinct overview of the major achievements of LPMO research over the past decade. This journey through LPMOs landscape leads us to dive into the emerging biological functions of LPMOs and LPMO-like proteins. We notably highlight roles in fungal and oomycete plant pathogenesis (e.g. potato late blight), but also in mutualistic/commensalism symbiosis (e.g. ectomycorrhizae). We further present the potential importance of LPMOs in other microbial pathogenesis including diseases caused by bacteria (e.g. pneumonia), fungi (e.g. human meningitis), oomycetes and viruses (e.g. entomopox), as well as in (micro)organism development (including several plant pests). Our assessment of the literature leads to the formulation of outstanding questions, promising for the coming years exciting research and discoveries on these moonlighting proteins.

摘要

裂解多糖单加氧酶(LPMOs)是一类神秘的酶,其发现开辟了一个引人入胜的新研究领域。LPMOs可以氧化裂解碳水化合物聚合物中的糖苷键,从而使难降解的生物质(如纤维素或几丁质)解聚。虽然迄今为止大多数研究主要探讨了LPMOs在(植物)生物质转化背景下的作用,但其他作用和模式也开始出现。在本综述中,我们提出了LPMO研究的历史观点,简要概述了过去十年LPMO研究的主要成就。这次对LPMOs领域的探索之旅使我们深入研究LPMOs和类LPMO蛋白的新兴生物学功能。我们特别强调了它们在真菌和卵菌植物致病过程(如马铃薯晚疫病)中的作用,也包括在互利共生/共生关系(如外生菌根)中的作用。我们还阐述了LPMOs在其他微生物致病过程中的潜在重要性,包括由细菌引起的疾病(如肺炎)、真菌引起的疾病(如人类脑膜炎)、卵菌和病毒引起的疾病(如昆虫痘病毒),以及在(微)生物发育过程中的作用(包括几种植物害虫)。我们对文献的评估引出了一些悬而未决的问题,有望在未来几年激发对这些兼职蛋白的令人兴奋的研究和发现。

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