4.6 Article

Evidence That GH115 α-Glucuronidase Activity, Which Is Required to Degrade Plant Biomass, Is Dependent on Conformational Flexibility

期刊

JOURNAL OF BIOLOGICAL CHEMISTRY
卷 289, 期 1, 页码 53-64

出版社

AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.M113.525295

关键词

Bioenergy; Enzyme Structure; Glycoside Hydrolases; Plant Cell Wall; X-ray Crystallography

资金

  1. Biotechnology and Biological Sciences Research Council (BBSRC) [BB/G016240/1]
  2. BBSRC Sustainable Bioenergy Centre (BSBEC) Cell Wall Sugars Programme
  3. Wellcome Trust [WT097907MA]
  4. BBSRC [BB/G016240/1, BB/G016186/1] Funding Source: UKRI
  5. Biotechnology and Biological Sciences Research Council [BB/G016240/1, BB/G016186/1] Funding Source: researchfish

向作者/读者索取更多资源

The microbial degradation of the plant cell wall is an important biological process that is highly relevant to environmentally significant industries such as the bioenergy and biorefining sectors. A major component of the wall is glucuronoxylan, a 1,4-linked xylose polysaccharide that is decorated with -linked glucuronic and/or methylglucuronic acid (GlcA/MeGlcA). Recently three members of a glycoside hydrolase family, GH115, were shown to hydrolyze MeGlcA side chains from the internal regions of xylan, an activity that has not previously been described. Here we show that a dominant member of the human microbiota, Bacteroides ovatus, contains a GH115 enzyme, BoAgu115A, which displays glucuronoxylan -(4-O-methyl)-glucuronidase activity. The enzyme is significantly more active against substrates in which the xylose decorated with GlcA/MeGlcA is flanked by one or more xylose residues. The crystal structure of BoAgu115A revealed a four-domain protein in which the active site, comprising a pocket that abuts a cleft-like structure, is housed in the second domain that adopts a TIM barrel-fold. The third domain, a five-helical bundle, and the C-terminal -sandwich domain make inter-chain contacts leading to protein dimerization. Informed by the structure of the enzyme in complex with GlcA in its open ring form, in conjunction with mutagenesis studies, the potential substrate binding and catalytically significant amino acids were identified. Based on the catalytic importance of residues located on a highly flexible loop, the enzyme is required to undergo a substantial conformational change to form a productive Michaelis complex with glucuronoxylan.

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