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首页> 外文期刊>Glycobiology. >Characterization of a trifunctional glucosyltransferase essential for Moraxella catarrhalis lipooligosaccharide assembly
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Characterization of a trifunctional glucosyltransferase essential for Moraxella catarrhalis lipooligosaccharide assembly

机译:表征了卡他莫拉氏菌脂联低聚糖装配所必需的三功能葡糖基转移酶

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The human respiratory tract pathogen Moraxella catarrhalis expresses lipooligosaccharides (LOS), glycolipid surface moieties that are associated with enhanced colonization and virulence. Recent studies have delineated the major steps required for the biosynthesis and assembly of the M. catarrhalis LOS molecule. We previously demonstrated that the glucosyltransferase enzyme Lgt3 is responsible for the addition of at least one glucose (Glc) molecule, at the β-(1-4) position, to the inner core of the LOS molecule. Our data further suggested a potential multifunctional role for Lgt3 in LOS biosynthesis. The studies reported here demonstrate that the Lgt3 enzyme possesses two glycosyltransferase domains (A1 and A2) similar to that of other bifunctional glycosyltransferase enzymes involved in surface polysaccharide biosynthesis in Escherichia coli, Pasteurella multocida and Streptococcus pyogenes. Each Lgt3 domain contains a conserved DXD motif, shown to be involved in the catalytic activity of other glycosyltransferases. To determine the function of each domain, A1 (N-terminal), A2 (C-terminal) and double A1A2 site-directed DAD to AAA mutants were constructed and the resulting LOS phenotypes of these modified strains were analyzed. Our studies indicate that the Lgt3 N-terminal A1 catalytic domain is responsible for the addition of the first β-(1-3) Glc to the first Glc on the inner core. The C-terminal catalytic domain A2 then adds the β-(1-4) Glc and the β-(1-6) Glc, confirming the bifunctional nature of this domain. The results from these experiments demonstrate that Lgt3 is a novel, multifunctional transferase responsible for the addition of three Glcs with differing linkages onto the inner core of M. catarrhalis LOS.
机译:人类呼吸道病原体卡他莫拉菌表达脂联寡糖(LOS),糖脂表面部分,与增强的定殖和毒力相关。最近的研究描述了卡他氏菌LOS分子的生物合成和组装所需的主要步骤。我们先前证明了葡糖基转移酶Lgt3负责将至少一个葡萄糖(Glc)分子在β-(1-4)位置添加到LOS分子的内核。我们的数据进一步表明,Lgt3在LOS生物合成中具有潜在的多功能作用。此处报道的研究表明,Lgt3酶具有两个糖基转移酶结构域(A1和A2),与参与大肠杆菌,多杀巴斯德氏菌和化脓性链球菌表面多糖生物合成的其他双功能糖基转移酶相似。每个Lgt3结构域均包含一个保守的DXD基序,显示与其他糖基转移酶的催化活性有关。为了确定每个结构域的功能,构建了A1(N端),A2(C端)和双A1A2定点DAD到AAA突变体,并分析了这些修饰菌株的LOS表型。我们的研究表明,Lgt3 N末端A1催化域负责将第一个β-(1-3)Glc添加到内核上的第一个Glc。然后,C末端催化结构域A2添加β-(1-4)Glc和β-(1-6)Glc,从而确认了该结构域的双功能性质。这些实验的结果表明,Lgt3是一种新颖的多功能转移酶,负责将三个具有不同键的Glcs加至卡他莫拉氏菌LOS的内核。

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