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Special Feature: Complex Systems: From Chemistry to Systems Biology Special Feature: Complexity in bacterial cell–cell communication: Quorum signal integration and subpopulation signaling in the Bacillus subtilis phosphorelay

机译:特殊功能:复杂的系统:从化学到系统生物学特殊功能:细菌细胞间通信的复杂性:枯草芽孢杆菌磷泥中的群体信号整合和亚群信号传递

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摘要

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.
机译:革兰氏阳性细菌中群体感应的一种常见形式是由充当受体天冬氨酰磷酸酶(Rap)的磷酸酶调节剂(Phr)的肽介导的。在枯草芽孢杆菌中,几个Phr信号被整合在孢子形成信号中。从理论上讲,我们证明了磷的沉积物可以充当计算机,通过定额调制的Rap信号执行激酶编码信号的灵敏除法运算,指示细胞计算“每个细胞的食物”估算值来决定是否进入孢子形成。我们预测从rapA-phrA操纵子分叉的表达随着相对环境信号在发展中国家人口中的变化而分叉。我们实验观察到rapA-phrA操纵子在孢子形成的微殖民地中被异质诱导。未诱导的细胞在早期形成孢子,而在随后的静止期,RapA / PhrA亚群的形成孢子则较少同步。此外,我们显示细胞在活跃的生长期间维持PhrA表达。与该模型一起,这些发现表明,磷泥可以通过积极竞争营养的(亚)种群的大小来规范环境信号(如PhrA信号所示)。概括此概念,各种Phrs可以通过解释基于时空群落结构的(环境)信号来促进密集的等基因群落中的亚种群交流,从而控制其后的分化亚群的生理策略。

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