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胞嘧啶阻遏物参与成团泛菌中吲哚的调控途径。

The cytidine repressor participates in the regulatory pathway of indole in Pantoea agglomerans.

作者信息

Jia Mengqi, Yu Xuemei, Jiang Jing, Li Zihua, Feng Yongjun

机构信息

School of Life Science, Beijing Institute of Technology, Beijing, China.

出版信息

Res Microbiol. 2017 Sep;168(7):636-643. doi: 10.1016/j.resmic.2017.04.006. Epub 2017 May 5.

Abstract

Indole, an important signal molecule in both intraspecies and interspecies, regulates a variety of bacterial behaviors, but its regulatory mechanism is still unknown. Pantoea agglomerans YS19, a preponderant endophytic bacterium isolated from rice, does not produce indole, yet it senses exogenous indole. In this study, a mutant of YS19-Rp whose target gene expression was downregulated by indole was selected through mTn5 transposon mutagenesis. Using the TAIL-PCR technique, the mutation gene was identified as a cytR homologue, which encodes a cytidine repressor (CytR) protein, a bacterial transcription factor involved in a complex regulation scheme. The negative regulation of indole in cytR, which is equivalent to the mutation in cytR, promotes the expression of a downstream gene deoC, which encodes the key enzyme deoxyribose-phosphate aldolase in participating in pentose metabolism. We found that DeoC is one of the regulatory proteins of P. agglomerans that is involved in counteracting starvation. Furthermore, the expression of deoC was induced by starvation conditions, accompanied by a decrease in cytR expression. This finding suggests that the indole signal and the mutation of cytR relieve inhibition of CytR in the transcription of deoC, facilitating better adaptation of the bacterium to the adverse conditions of the environment.

摘要

吲哚作为种内和种间重要的信号分子,可调控多种细菌行为,但其调控机制尚不清楚。成团泛菌YS19是从水稻中分离出的优势内生细菌,自身不产生吲哚,但能感知外源吲哚。在本研究中,通过mTn5转座子诱变筛选出YS19-Rp突变体,其靶基因表达受吲哚下调。利用热不对称交错PCR(TAIL-PCR)技术,将突变基因鉴定为cytR同源物,该基因编码胞苷阻遏蛋白(CytR),是一种参与复杂调控机制的细菌转录因子。吲哚对cytR的负调控等同于cytR突变,可促进下游基因deoC的表达,deoC编码参与戊糖代谢的关键酶磷酸脱氧核糖醛缩酶。我们发现DeoC是成团泛菌中参与抵抗饥饿的调控蛋白之一。此外,deoC的表达受饥饿条件诱导,同时cytR表达下降。这一发现表明,吲哚信号和cytR突变可解除CytR对deoC转录的抑制,有助于细菌更好地适应环境不利条件。

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