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首页> 外文期刊>Cell Host & Microbe >A Family of Dual-Activity Glycosyltransferase-Phosphorylases Mediates Mannogen Turnover and Virulence in Leishmania Parasites
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A Family of Dual-Activity Glycosyltransferase-Phosphorylases Mediates Mannogen Turnover and Virulence in Leishmania Parasites

机译:一系列双活性糖基转移酶 - 磷酸化酶在Leishmania寄生虫中介导人性胞菌周转和毒力

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摘要

Parasitic protists belonging to the genus Leishmania synthesize the non-canonical carbohydrate reserve, mannogen, which is composed of beta-1,2-mannan oligosaccharides. Here, we identify a class of dual-activity mannosyltransferase/phosphorylases (MTPs) that catalyze both the sugar nucleotide-dependent biosynthesis and phosphorolytic turnover of mannogen. Structural and phylogenic analysis shows that while the MTPs are structurally related to bacterial mannan phosphorylases, they constitute a distinct family of glycosyltransferases (GT108) that have likely been acquired by horizontal gene transfer from gram-positive bacteria. The seven MTPs catalyze the constitutive synthesis and turnover of mannogen. This metabolic rheostat protects obligate intracellular parasite stages from nutrient excess, and is essential for thermotolerance and parasite infectivity in the mammalian host. Our results suggest that the acquisition and expansion of the MTP family in Leishmania increased the metabolic flexibility of these protists and contributed to their capacity to colonize new host niches.
机译:属于Leishmania属的寄生物质,合成非典型碳水化合物储备,甘露根属,由β-1,2-甘露糖醇组成。在此,我们鉴定一类双活性甘露那糖基转移酶/磷酸化酶(MTP),其催化甘油中含糖核苷酸依赖性生物合成和磷解热的周转。结构和系统和系统发生分析表明,虽然MTP与细菌甘露磷酸化合物的结构有关,但它们构成了可能是通过从革兰氏阳性细菌的水平基因转移获得的糖基转移酶(GT108)的明显家族。七个MTP催化组成型合成和营养成分。这种代谢性变性抑制性抑制营养素过量的细胞内寄生虫阶段,并且对于哺乳动物宿主中的热能和寄生虫感染性是必不可少的。我们的研究结果表明,利什曼尼亚的MTP家族的收购和扩展提高了这些保护者的代谢灵活性,并为其殖民殖民的能力。

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  • 来源
    《Cell Host & Microbe》 |2019年第3期|共24页
  • 作者单位

    Univ Melbourne Bio21 Mol Sci &

    Biotechnol Inst Dept Biochem &

    Mol Biol Parkville Vic 3010 Australia;

    Univ Melbourne Bio21 Mol Sci &

    Biotechnol Inst Dept Biochem &

    Mol Biol Parkville Vic 3010 Australia;

    Univ Melbourne Bio21 Mol Sci &

    Biotechnol Inst Dept Biochem &

    Mol Biol Parkville Vic 3010 Australia;

    Univ York Dept Chem York YO10 5DD N Yorkshire England;

    Univ Melbourne Bio21 Mol Sci &

    Biotechnol Inst Dept Biochem &

    Mol Biol Parkville Vic 3010 Australia;

    Univ Melbourne Bio21 Mol Sci &

    Biotechnol Inst Dept Biochem &

    Mol Biol Parkville Vic 3010 Australia;

    Univ Melbourne Bio21 Mol Sci &

    Biotechnol Inst Dept Biochem &

    Mol Biol Parkville Vic 3010 Australia;

    Univ Melbourne Bio21 Mol Sci &

    Biotechnol Inst Dept Biochem &

    Mol Biol Parkville Vic 3010 Australia;

    Univ Melbourne Bio21 Mol Sci &

    Biotechnol Inst Dept Biochem &

    Mol Biol Parkville Vic 3010 Australia;

    Univ Melbourne Bio21 Mol Sci &

    Biotechnol Inst Dept Biochem &

    Mol Biol Parkville Vic 3010 Australia;

    Univ York Dept Chem York YO10 5DD N Yorkshire England;

    Univ York Dept Chem York YO10 5DD N Yorkshire England;

    Univ York Dept Chem York YO10 5DD N Yorkshire England;

    Univ Melbourne Bio21 Mol Sci &

    Biotechnol Inst Sch Chem Parkville Vic 3010 Australia;

    Univ Melbourne Bio21 Mol Sci &

    Biotechnol Inst Dept Biochem &

    Mol Biol Parkville Vic 3010 Australia;

    Univ Melbourne Bio21 Mol Sci &

    Biotechnol Inst Dept Biochem &

    Mol Biol Parkville Vic 3010 Australia;

    Univ Melbourne Bio21 Mol Sci &

    Biotechnol Inst Sch Chem Parkville Vic 3010 Australia;

    Univ York Dept Chem York YO10 5DD N Yorkshire England;

    Univ Melbourne Bio21 Mol Sci &

    Biotechnol Inst Dept Biochem &

    Mol Biol Parkville Vic 3010 Australia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 普通生物学;
  • 关键词

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