首页> 外文期刊>Applied Microbiology >Functional Analysis of Family GH36 α-Galactosidases from Ruminococcus gnavus E1: Insights into the Metabolism of a Plant Oligosaccharide by a Human Gut Symbiont
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Functional Analysis of Family GH36 α-Galactosidases from Ruminococcus gnavus E1: Insights into the Metabolism of a Plant Oligosaccharide by a Human Gut Symbiont

机译:猕猴E1家族GH36α-半乳糖苷酶的功能分析:人类肠道共生体对植物寡糖代谢的见解。

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Ruminococcus gnavus belongs to the 57 most common species present in 90% of individuals. Previously, we identified an α-galactosidase (Aga1) belonging to glycoside hydrolase (GH) family 36 from R. gnavus E1 (M. Aguilera, H. Rakotoarivonina, A. Brutus, T. Giardina, G. Simon, and M. Fons, Res. Microbiol. 163:14–21, 2012). Here, we identified a novel GH36-encoding gene from the same strain and termed it aga2 . Although aga1 showed a very simple genetic organization, aga2 is part of an operon of unique structure, including genes putatively encoding a regulator, a GH13, two phosphotransferase system (PTS) sequences, and a GH32, probably involved in extracellular and intracellular sucrose assimilation. The 727-amino-acid (aa) deduced Aga2 protein shares approximately 45% identity with Aga1. Both Aga1 and Aga2 expressed in Escherichia coli showed strict specificity for α-linked galactose. Both enzymes were active on natural substrates such as melibiose, raffinose, and stachyose. Aga1 and Aga2 occurred as homotetramers in solution, as shown by analytical ultracentrifugation. Modeling of Aga1 and Aga2 identified key amino acids which may be involved in substrate specificity and stabilization of the α-linked galactoside substrates within the active site. Furthermore, Aga1 and Aga2 were both able to perform transglycosylation reactions with α-(1,6) regioselectivity, leading to the formation of product structures up to [Hex]_(12) and [Hex]_(8), respectively. We suggest that Aga1 and Aga2 play essential roles in the metabolism of dietary oligosaccharides and could be used for the design of galacto-oligosaccharide (GOS) prebiotics, known to selectively modulate the beneficial gut microbiota.
机译:鲁米球菌属于90%的个体中存在的57种最常见物种。以前,我们从R. gnavus E1(M. Aguilera,H。Rakotoarivonina,A。Brutus,T。Giardina,G。Simon和M. Fons)鉴定了一个属于糖苷水解酶(GH)家族36的α-半乳糖苷酶(Aga1) ,Res。Microbiol。163:14-21,2012)。在这里,我们从同一菌株中鉴定了一个新的GH36编码基因,并将其命名为aga2。尽管aga1显示出非常简单的遗传组织,但aga2是独特结构操纵子的一部分,包括可能编码调控因子,GH13,两个磷酸转移酶系统(PTS)序列和GH32的基因,可能参与细胞外和细胞内蔗糖同化。 727个氨基酸(aa)推导的Aga2蛋白与Aga1共有大约45%的同一性。在大肠杆菌中表达的Aga1和Aga2都显示出对α连接的半乳​​糖的严格特异性。两种酶均对天然底物如蜜三糖,棉子糖和水苏糖具有活性。分析超速离心显示,Aga1和Aga2在溶液中为同四聚体。 Aga1和Aga2的模型确定了关键氨基酸,这些氨基酸可能与底物特异性和活性位点内α-连接的半乳​​糖苷底物的稳定性有关。此外,Aga1和Aga2都能够以α-(1,6)区域选择性进行转糖基化反应,导致分别形成高达[Hex] _(12)和[Hex] _(8)的产物结构。我们建议Aga1和Aga2在膳食低聚糖的代谢中起重要作用,并可以用于设计低聚半乳糖(GOS)益生元,已知其选择性地调节有益的肠道菌群。

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