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首页> 外文期刊>Nucleic acids research >sRNA-dependent control of curli biosynthesis in Escherichia coli: McaS directs endonucleolytic cleavage of csgD mRNA
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sRNA-dependent control of curli biosynthesis in Escherichia coli: McaS directs endonucleolytic cleavage of csgD mRNA

机译:大肠杆菌中卷曲蛋白生物合成的sRNA依赖性控制:McaS指导csgD mRNA的内切核酸切割。

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摘要

Production of curli, extracellular protein structures important for Escherichia coli biofilm formation, is governed by a highly complex regulatory mechanism that integrates multiple environmental signals through the involvement of numerous proteins and small non-coding RNAs (sRNAs). No less than seven sRNAs (McaS, RprA, GcvB, RydC, RybB, OmrA and OmrB) are known to repress the expression of the curli activator CsgD. Many of the sRNAs repress CsgD production by binding to the csgD mRNA at sites far upstream of the ribosomal binding site. The precise mechanism behind sRNA-mediated regulation of CsgD synthesis is largely unknown. In this study, we identify a conserved A/U-rich region in the csgD mRNA 5′ untranslated region, which is cleaved upon binding of the small RNAs, McaS, RprA or GcvB, to sites located more than 30 nucleotides downstream. Mutational analysis shows that the A/U-rich region as well as an adjacent stem–loop structure are required for McaS-stimulated degradation, also serving as a binding platform for the RNA chaperone Hfq. Prevention of McaS-activated cleavage completely relieves repression, suggesting that endoribonucleolytic cleavage of csgD mRNA is the primary regulatory effect exerted by McaS. Moreover, we find that McaS-mediated degradation of the csgD 5′ untranslated region requires RNase E.
机译:对大肠杆菌生物膜形成重要的卷曲蛋白,细胞外蛋白质结构的产生,受高度复杂的调节机制控制,该机制通过大量蛋白质和小的非编码RNA(sRNA)的参与整合了多种环境信号。已知有不少于七个的sRNA(McaS,RprA,GcvB,RydC,RybB,OmrA和OmrB)抑制curli激活因子CsgD的表达。许多sRNA通过在核糖体结合位点远上游的位点与csgD mRNA结合来抑制CsgD的产生。 sRNA介导的CsgD合成调控的确切机制在很大程度上尚不清楚。在这项研究中,我们在csgD mRNA 5'非翻译区中确定了一个保守的A / U富集区域,该区域在将小RNA,McaS,RprA或GcvB结合到位于下游30多个核苷酸的位点时被切割。突变分析表明,McaS刺激的降解需要富含A / U的区域以及相邻的茎-环结构,还可以作为RNA伴侣Hfq的结合平台。预防McaS激活的裂解可完全缓解抑制作用,表明csgD mRNA的核糖核酸内切裂解是McaS发挥的主要调控作用。此外,我们发现McaS介导的csgD 5'非翻译区降解需要RNaseE。

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