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探究卵菌寄生疫霉CBEL蛋白中碳水化合物结合模块的功能

Probing the Functions of Carbohydrate Binding Modules in the CBEL Protein from the Oomycete Phytophthora parasitica.

作者信息

Martinez Thomas, Texier Hélène, Nahoum Virginie, Lafitte Claude, Cioci Gianluca, Heux Laurent, Dumas Bernard, O'Donohue Michael, Gaulin Elodie, Dumon Claire

机构信息

Université Toulouse 3, UPS, Laboratoire de Recherche en Sciences Végétales, 24 chemin de Borde Rouge, BP42617, Auzeville, F-31326, Castanet-Tolosan, France; CNRS, Laboratoire de Recherche en Sciences Végétales, 24 chemin de Borde Rouge, BP42617, Auzeville, F-31326, Castanet-Tolosan, France; Université de Toulouse; INSA, UPS, INP, LISBP, 135 Avenue de Rangueil, F-31077 Toulouse, France; CNRS, UMR5504, F-31400 Toulouse, France; INRA, UMR792 Ingénierie des Systèmes Biologiques et des Procédés, F-31400 Toulouse, France.

Université de Toulouse; INSA, UPS, INP, LISBP, 135 Avenue de Rangueil, F-31077 Toulouse, France; CNRS, UMR5504, F-31400 Toulouse, France; INRA, UMR792 Ingénierie des Systèmes Biologiques et des Procédés, F-31400 Toulouse, France; Cinabio ADISSEO France SAS, Hall Gilbert Durand 3, 135 avenue de Rangueil, 31077 Toulouse, France.

出版信息

PLoS One. 2015 Sep 21;10(9):e0137481. doi: 10.1371/journal.pone.0137481. eCollection 2015.

Abstract

Oomycetes are microorganisms that are distantly related to true fungi and many members of this phylum are major plant pathogens. Oomycetes express proteins that are able to interact with plant cell wall polysaccharides, such as cellulose. This interaction is thought to be mediated by carbohydrate-binding modules that are classified into CBM family 1 in the CAZy database. In this study, the two CBMs (1-1 and 1-2) that form part of the cell wall glycoprotein, CBEL, from Phytophthora parasitica have been submitted to detailed characterization, first to better quantify their interaction with cellulose and second to determine whether these CBMs can be useful for biotechnological applications, such as biomass hydrolysis. A variety of biophysical techniques were used to study the interaction of the CBMs with various substrates and the data obtained indicate that CBEL's CBM1-1 exhibits much greater cellulose binding ability than CBM1-2. Engineering of the family 11 xylanase from Talaromyces versatilis (TvXynB), an enzyme that naturally bears a fungal family 1 CBM, has produced two variants. The first one lacks its native CBM, whereas the second contains the CBEL CBM1-1. The study of these enzymes has revealed that wild type TvXynB binds to cellulose, via its CBM1, and that the substitution of its CBM by oomycetal CBM1-1 does not affect its activity on wheat straw. However, intriguingly the addition of CBEL during the hydrolysis of wheat straw actually potentiates the action of TvXynB variant lacking a CBM1. This suggests that the potentiating effect of CBM1-1 might not require the formation of a covalent linkage to TvXynB.

摘要

卵菌纲微生物与真正的真菌亲缘关系较远,该门类的许多成员都是主要的植物病原体。卵菌纲表达的蛋白质能够与植物细胞壁多糖相互作用,例如纤维素。这种相互作用被认为是由碳水化合物结合模块介导的,这些模块在CAZy数据库中被归类为CBM家族1。在本研究中,对来自寄生疫霉的细胞壁糖蛋白CBEL的两个组成部分CBM(1-1和1-2)进行了详细表征,一是为了更好地量化它们与纤维素的相互作用,二是为了确定这些CBM是否可用于生物技术应用,如生物质水解。使用了多种生物物理技术来研究CBM与各种底物的相互作用,获得的数据表明CBEL的CBM1-1比CBM1-2表现出更强的纤维素结合能力。对来自多变青霉的11家族木聚糖酶(TvXynB)进行工程改造,该酶天然带有一个真菌家族1的CBM,产生了两个变体。第一个变体缺少其天然CBM,而第二个包含CBEL的CBM1-1。对这些酶的研究表明,野生型TvXynB通过其CBM1与纤维素结合,用卵菌纲的CBM1-1替代其CBM不会影响其对小麦秸秆的活性。然而,有趣的是,在小麦秸秆水解过程中添加CBEL实际上增强了缺乏CBM1的TvXynB变体的作用。这表明CBM1-1的增强作用可能不需要与TvXynB形成共价连接。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dbf7/4577117/0e224b041592/pone.0137481.g001.jpg

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