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Role of glycosyltransferases modifying type B flagellin of emerging hypervirulent Clostridium difficile lineages and their impact on motility and biofilm formation

机译:糖基转移酶修饰新型超强力艰难梭菌谱系B型鞭毛蛋白的作用及其对运动和生物膜形成的影响

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摘要

Clostridium difficile is the principal cause of nosocomial infectious diarrhea worldwide. The pathogen modifies its flagellin with either a type A or type B O-linked glycosylation system, which has a contributory role in pathogenesis. We study the functional role of glycosyltransferases modifying type B flagellin in the 023 and 027 hypervirulent C. difficile lineages by mutagenesis of five putative glycosyltransferases and biosynthetic genes. We reveal their roles in the biosynthesis of the flagellin glycan chain and demonstrate that flagellar post-translational modification affects motility and adhesion-related bacterial properties of these strains. We show that the glycosyltransferases 1 and 2 (GT1 and GT2) are responsible for the sequential addition of a GlcNAc and two rhamnoses, respectively, and that GT3 is associated with the incorporation of a novel sulfonated peptidyl-amido sugar moiety whose structure is reported in our accompanying paper (Bouch??, L., Panico, M., Hitchen, P., Binet, D., Sastre, F., Faulds-Pain, A., Valiente, E., Vinogradov, E., Aubry, A., Fulton, K., Twine, S., Logan, S. M., Wren, B. W., Dell, A., and Morris, H. R. (2016) J. Biol. Chem. 291, 25439???25449). GT2 is also responsible for methylation of the rhamnoses. Whereas type B modification is not required for flagellar assembly, some mutations that result in truncation or abolition of the glycan reduce bacterial motility and promote autoaggregation and biofilm formation. The complete lack of flagellin modification also significantly reduces adhesion of C. difficile to Caco-2 intestinal epithelial cells but does not affect activation of human TLR5. Our study advances our understanding of the genes involved in flagellar glycosylation and their biological roles in emerging hypervirulent C. difficile strains.
机译:艰难梭菌是全世界医院内感染性腹泻的主要原因。病原体通过A型或B型O型糖基化系统修饰鞭毛蛋白,这在发病机理中起着重要作用。我们通过诱变的五个假定的糖基转移酶和生物合成基因,研究了糖基转移酶修饰B型鞭毛蛋白在023和027高毒性艰难梭菌谱系中的功能作用。我们揭示了它们在鞭毛蛋白聚糖链的生物合成中的作用,并证明鞭毛翻译后修饰影响这些菌株的运动性和粘附相关细菌特性。我们显示糖基转移酶1和2(GT1和GT2)分别负责GlcNAc和两个鼠李糖的顺序添加,并且GT3与新型磺化肽基-酰胺基糖部分的结合有关,该结构的报道见我们的随附论文(Bouch ??,L.,Panico,M.,Hitchen,P.,Binet,D.,Sastre,F.,Faulds-Pain,A.,Valiente,E.,Vinogradov,E.,Aubry, A.,Fulton,K.,Twine,S.,Logan,SM,Wren,BW,Dell,A。,和Morris,HR(2016)J.Biol.Chem.291,25439→25449)。 GT2还负责鼠李糖酶的甲基化。尽管鞭毛组装不需要B型修饰,但某些导致聚糖被截断或消除的突变会降低细菌运动性并促进自聚集和生物膜形成。完全缺乏鞭毛蛋白修饰还显着降低了艰难梭菌对Caco-2肠上皮细胞的粘附,但不影响人TLR5的活化。我们的研究提高了我们对与鞭毛糖基化有关的基因及其在新出现的高毒艰难梭菌菌株中的生物学作用的理解。

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