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首页> 外文期刊>Frontiers in Microbiology >Second Messenger Signaling in Bacillus subtilis: Accumulation of Cyclic di-AMP Inhibits Biofilm Formation
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Second Messenger Signaling in Bacillus subtilis: Accumulation of Cyclic di-AMP Inhibits Biofilm Formation

机译:枯草芽孢杆菌中的第二信使信号:循环di-AMP的积累抑制生物膜形成。

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The Gram-positive model organism Bacillus subtilis produces the essential second messenger signaling nucleotide cyclic di-AMP. In B. subtilis and other bacteria, c-di-AMP has been implicated in diverse functions such as control of metabolism, cell division and cell wall synthesis, and potassium transport. To enhance our understanding of the multiple functions of this second messenger, we have studied the consequences of c-di-AMP accumulation at a global level by a transcriptome analysis. C-di-AMP accumulation affected the expression of about 700 genes, among them the two major operons required for biofilm formation. The expression of both operons was severely reduced both in the laboratory and a non-domesticated strain upon accumulation of c-di-AMP. In excellent agreement, the corresponding strain was unable to form complex colonies. In B. subtilis , the transcription factor SinR controls the expression of biofilm genes by binding to their promoter regions resulting in transcription repression. Inactivation of the sinR gene restored biofilm formation even at high intracellular c-di-AMP concentrations suggesting that the second messenger acts upstream of SinR in the signal transduction pathway. As c-di-AMP accumulation did not affect the intracellular levels of SinR, we conclude that the nucleotide affects the activity of SinR.
机译:革兰氏阳性模型生物枯草芽孢杆菌可产生基本的第二信使信号核苷酸环状双AMP。在枯草芽孢杆菌和其他细菌中,c-di-AMP与多种功能有关,例如代谢控制,细胞分裂和细胞壁合成以及钾转运。为了增进对第二个信使的多功能的理解,我们通过转录组分析研究了c-di-AMP在全球范围内积累的后果。 C-di-AMP积累影响了约700个基因的表达,其中包括形成生物膜所需的两个主要操纵子。在实验室和未驯化的菌株中,两个操纵子的表达均因c-di-AMP的积累而严重降低。完全一致,相应的菌株无法形成复杂的菌落。在枯草芽孢杆菌中,转录因子SinR通过与生物膜基因的启动子区域结合来控制生物膜基因的表达,从而导致转录抑制。 sinR基因的失活甚至在高细胞内c-di-AMP浓度下也能恢复生物膜的形成,这表明第二信使在信号转导途径中作用于SinR的上游。由于c-di-AMP的积累不影响细胞内SinR的水平,因此我们得出结论,核苷酸会影响SinR的活性。

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