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分析活性位点结构和反应产物连接化学揭示了不同酵母甘露聚糖中内-α-甘露聚糖酶保守的裂解底物。

Analysis of Active Site Architecture and Reaction Product Linkage Chemistry Reveals a Conserved Cleavage Substrate for an Endo-alpha-mannanase within Diverse Yeast Mannans.

机构信息

Lethbridge Research and Development Centre, Agriculture and Agri-Food Canada, Lethbridge, Alberta, T1J 4B1, Canada; Department of Chemistry and Biochemistry, University of Lethbridge, Lethbridge, Alberta, T1K 3M4, Canada.

Lethbridge Research and Development Centre, Agriculture and Agri-Food Canada, Lethbridge, Alberta, T1J 4B1, Canada.

出版信息

J Mol Biol. 2020 Feb 14;432(4):1083-1097. doi: 10.1016/j.jmb.2019.12.048. Epub 2020 Jan 13.

Abstract

Yeast α-mannan (YM) is a densely branched N-linked glycan that decorates the surface of yeast cell walls. Owing to the high degree of branching, cleavage of the backbone of YM appears to rely on the coupled action of side-chain-cleaving enzymes. Upon examining the genome sequences of bovine-adapted Bacteroides thetaiotaomicron strains, isolated for their ability to degrade YM, we have identified a tandem pair of genes inserted into an orphan pathway predicted to be involved in YM metabolism. Here, we investigated the activity of one of these enzymes, a predicted endo-mannanase from glycoside hydrolase (GH) family 76 (BtGH76-MD40). Purified recombinant BtGH76-MD40 displayed activity on structurally distinct YMs from Saccharomyces cerevisiae and Schizosaccharomyces pombe. Linkage analysis of released oligosaccharide products from S. cerevisiae and S. pombe mannan determined BtGH76-MD40 targets a specific linkage that is conserved in structurally diverse YM substrates. In addition, using two differential derivatization methods, we have shown that there is an absolute requirement for undecorated d-mannopyranose in the -1 subsite. Determination of the BtGH76-MD40 X-ray crystal structure and structural superimposition and molecular docking of a branched alpha-mannopentatose substrate supported these findings. In contrast, BtGH76-MD40 can accommodate extended side chains in the +1 and -2 subsites, highlighting that a single alpha-1,6-mannosyl residue is a prerequisite for activity, and cleavage occurs at the reducing end of the undecorated monosaccharide. Collectively these results demonstrate how acquisition of new enzymes within extant pathways contributes to the functional abilities of saccharolytic bacteria persisting in complex digestive ecosystems.

摘要

酵母α-甘露聚糖(YM)是一种紧密分支的 N-连接聚糖,它修饰了酵母细胞壁的表面。由于高度分支,YM 主链的切割似乎依赖于侧链切割酶的偶联作用。在检查了能够降解 YM 的牛适应性拟杆菌菌株的基因组序列后,我们在一个预测参与 YM 代谢的孤儿途径中发现了一对串联基因。在这里,我们研究了其中一种酶的活性,即糖苷水解酶(GH)家族 76 中的一种预测内切甘露聚糖酶(BtGH76-MD40)。纯化的重组 BtGH76-MD40 在来自酿酒酵母和裂殖酵母的结构不同的 YM 上表现出活性。来自酿酒酵母和裂殖酵母甘露聚糖的释放寡糖产物的连接分析确定 BtGH76-MD40 的靶标是在结构多样的 YM 底物中保守的特定连接。此外,使用两种差分衍生化方法,我们已经表明在-1 亚位点中存在对未修饰的 d-甘露吡喃糖的绝对要求。BtGH76-MD40 的 X 射线晶体结构的测定以及分支α-甘露五糖底物的结构叠加和分子对接支持了这些发现。相比之下,BtGH76-MD40 可以在+1 和-2 亚位点容纳扩展的侧链,突出表明单个α-1,6-甘露糖基残基是活性的前提条件,并且切割发生在未修饰单糖的还原端。总之,这些结果表明,在现存途径中获得新酶如何有助于在复杂消化生态系统中持续存在的糖解细菌的功能能力。

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