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双歧杆菌中谷氨酰胺-6-磷酸果糖酰胺转移酶(EC 2.6.1.16)的特性及N-乙酰葡糖胺代谢

Characterisation of glutamine fructose-6-phosphate amidotransferase (EC 2.6.1.16) and N-acetylglucosamine metabolism in Bifidobacterium.

作者信息

Foley Sophie, Stolarczyk Emilie, Mouni Fadoua, Brassart Colette, Vidal Olivier, Aïssi Eliane, Bouquelet Stéphane, Krzewinski Frédéric

机构信息

School of Life Sciences, Napier University, Edinburgh, EH10 5DT, UK.

出版信息

Arch Microbiol. 2008 Feb;189(2):157-67. doi: 10.1007/s00203-007-0307-9. Epub 2007 Oct 18.

Abstract

Bifidobacterium bifidum, in contrast to other bifidobacterial species, is auxotrophic for N-acetylglucosamine. Growth experiments revealed assimilation of radiolabelled N-acetylglucosamine in bacterial cell walls and in acetate, an end-product of central metabolism via the bifidobacterial D: -fructose-6-phosphate shunt. While supplementation with fructose led to reduced N-acetylglucosamine assimilation via the D: -fructose-6-phosphate shunt, no significant difference was observed in levels of radiolabelled N-acetylglucosamine incorporated into cell walls. Considering the central role played by glutamine fructose-6-phosphate transaminase (GlmS) in linking the biosynthetic pathway for N-acetylglucosamine to hexose metabolism, the GlmS of Bifidobacterium was characterized. The genes encoding the putative GlmS of B. longum DSM20219 and B. bifidum DSM20082 were cloned and sequenced. Bioinformatic analyses of the predicted proteins revealed 43% amino acid identity with the Escherichia coli GlmS, with conservation of key amino acids in the catalytic domain. The B. longum GlmS was over-produced as a histidine-tagged fusion protein. The purified C-terminal His-tagged GlmS possessed glutamine fructose-6-phosphate amidotransferase activity as demonstrated by synthesis of glucosamine-6-phosphate from fructose-6-phosphate and glutamine. It also possesses an independent glutaminase activity, converting glutamine to glutamate in the absence of fructose-6-phosphate. This is of interest considering the apparently reduced coding potential in bifidobacteria for enzymes associated with glutamine metabolism.

摘要

与其他双歧杆菌属物种不同,两歧双歧杆菌对N - 乙酰葡糖胺营养缺陷。生长实验表明,放射性标记的N - 乙酰葡糖胺被同化进入细菌细胞壁以及乙酸盐中,乙酸盐是通过双歧杆菌D - 果糖 - 6 - 磷酸分流途径进行的中心代谢的终产物。虽然补充果糖会导致通过D - 果糖 - 6 - 磷酸分流途径的N - 乙酰葡糖胺同化减少,但在掺入细胞壁的放射性标记N - 乙酰葡糖胺水平上未观察到显著差异。考虑到谷氨酰胺果糖 - 6 - 磷酸转氨酶(GlmS)在将N - 乙酰葡糖胺生物合成途径与己糖代谢联系起来方面所起的核心作用,对双歧杆菌的GlmS进行了表征。克隆并测序了编码长双歧杆菌DSM20219和两歧双歧杆菌DSM20082假定GlmS的基因。对预测蛋白质的生物信息学分析显示,与大肠杆菌GlmS有43%的氨基酸同一性,催化结构域中的关键氨基酸保守。长双歧杆菌GlmS作为带组氨酸标签的融合蛋白过量表达。纯化的C端带组氨酸标签的GlmS具有谷氨酰胺果糖 - 6 - 磷酸酰胺转移酶活性,这通过从果糖 - 6 - 磷酸和谷氨酰胺合成6 - 磷酸葡糖胺得以证明。它还具有独立的谷氨酰胺酶活性,在没有果糖 - 6 - 磷酸的情况下将谷氨酰胺转化为谷氨酸。鉴于双歧杆菌中与谷氨酰胺代谢相关酶的编码潜力明显降低,这一点很有意思。

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