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细菌细胞间通讯的复杂性:枯草芽孢杆菌磷酸化信号转导中的群体感应信号整合与亚群体信号传导

Complexity in bacterial cell-cell communication: quorum signal integration and subpopulation signaling in the Bacillus subtilis phosphorelay.

作者信息

Bischofs Ilka B, Hug Joshua A, Liu Aiwen W, Wolf Denise M, Arkin Adam P

机构信息

Department of Bioengineering, University of California, 311 Hildebrand Hall, MC 5230, Berkeley, CA 94704-3224, USA.

出版信息

Proc Natl Acad Sci U S A. 2009 Apr 21;106(16):6459-64. doi: 10.1073/pnas.0810878106. Epub 2009 Apr 20.

Abstract

A common form of quorum sensing in gram-positive bacteria is mediated by peptides that act as phosphatase regulators (Phr) of receptor aspartyl phosphatases (Raps). In Bacillus subtilis, several Phr signals are integrated in sporulation phosphorelay signal transduction. We theoretically demonstrate that the phosphorelay can act as a computational machine performing a sensitive division operation of kinase-encoded signals by quorum-modulated Rap signals, indicative of cells computing a "food per cell" estimate to decide whether to enter sporulation. We predict expression from the rapA-phrA operon to bifurcate as relative environmental signals change in a developing population. We experimentally observe that the rapA-phrA operon is heterogeneously induced in sporulating microcolonies. Uninduced cells sporulate rather synchronously early on, whereas the RapA/PhrA subpopulation sporulates less synchronously throughout later stationary phase. Moreover, we show that cells sustain PhrA expression during periods of active growth. Together with the model, these findings suggest that the phosphorelay may normalize environmental signals by the size of the (sub)population actively competing for nutrients (as signaled by PhrA). Generalizing this concept, the various Phrs could facilitate subpopulation communication in dense isogenic communities to control the physiological strategies followed by differentiated subpopulations by interpreting (environmental) signals based on the spatiotemporal community structure.

摘要

革兰氏阳性菌中群体感应的一种常见形式由充当受体天冬氨酰磷酸酶(Rap)的磷酸酶调节剂(Phr)的肽介导。在枯草芽孢杆菌中,几种Phr信号整合在芽孢形成磷酸化信号转导中。我们从理论上证明,磷酸化信号转导可作为一种计算机器,通过群体调节的Rap信号对激酶编码信号进行灵敏的除法运算,这表明细胞在计算“每个细胞的食物量”估计值,以决定是否进入芽孢形成阶段。我们预测,随着发育群体中相对环境信号的变化,rapA-phrA操纵子的表达会出现分歧。我们通过实验观察到,rapA-phrA操纵子在形成芽孢的微菌落中是异质性诱导的。未诱导的细胞在早期相当同步地形成芽孢,而RapA/PhrA亚群体在整个后期稳定期形成芽孢的同步性较差。此外,我们表明细胞在活跃生长期间维持PhrA的表达。结合该模型,这些发现表明磷酸化信号转导可能通过积极竞争营养物质的(亚)群体大小(如PhrA所指示)来使环境信号标准化。推广这一概念,各种Phr可以促进密集同基因群落中的亚群体通信,通过基于时空群落结构解释(环境)信号来控制分化亚群体所采取的生理策略。

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