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枯草芽孢杆菌组氨酸激酶激酶 Kinc 通过控制单细胞反应异质性激活生物膜形成。

Bacillus subtilis Histidine Kinase KinC Activates Biofilm Formation by Controlling Heterogeneity of Single-Cell Responses.

机构信息

Systems, Synthetic and Physical Biology Program, Rice Universitygrid.21940.3e, Houston, Texas, USA.

Department of Biology and Biochemistry, University of Houstongrid.266436.3, Houston, Texas, USA.

出版信息

mBio. 2022 Feb 22;13(1):e0169421. doi: 10.1128/mbio.01694-21. Epub 2022 Jan 11.

Abstract

In Bacillus subtilis, biofilm and sporulation pathways are both controlled by a master regulator, Spo0A, which is activated by phosphorylation via a phosphorelay-a cascade of phosphotransfer reactions commencing with autophosphorylation of histidine kinases KinA, KinB, KinC, KinD, and KinE. However, it is unclear how the kinases, despite acting via the same regulator, Spo0A, differentially regulate downstream pathways, i.e., how KinA mainly activates sporulation genes and KinC mainly activates biofilm genes. In this work, we found that KinC also downregulates sporulation genes, suggesting that KinC has a negative effect on Spo0A activity. To explain this effect, with a mathematical model of the phosphorelay, we revealed that unlike KinA, which always activates Spo0A, KinC has distinct effects on Spo0A at different growth stages: during fast growth, KinC acts as a phosphate source and activates Spo0A, whereas during slow growth, KinC becomes a phosphate sink and contributes to decreasing Spo0A activity. However, under these conditions, KinC can still increase the population-mean biofilm matrix production activity. In a population, individual cells grow at different rates, and KinC would increase the Spo0A activity in the fast-growing cells but reduce the Spo0A activity in the slow-growing cells. This mechanism reduces single-cell heterogeneity of Spo0A activity, thereby increasing the fraction of cells that activate biofilm matrix production. Thus, KinC activates biofilm formation by controlling the fraction of cells activating biofilm gene expression. In many bacterial and eukaryotic systems, multiple cell fate decisions are activated by a single master regulator. Typically, the activities of the regulators are controlled posttranslationally in response to different environmental stimuli. The mechanisms underlying the ability of these regulators to control multiple outcomes are not understood in many systems. By investigating the regulation of Bacillus subtilis master regulator Spo0A, we show that sensor kinases can use a novel mechanism to control cell fate decisions. By acting as a phosphate source or sink, kinases can interact with one another and provide accurate regulation of the phosphorylation level. Moreover, this mechanism affects the cell-to-cell heterogeneity of the transcription factor activity and eventually determines the fraction of different cell types in the population. These results demonstrate the importance of intercellular heterogeneity for understanding the effects of genetic perturbations on cell fate decisions. Such effects can be applicable to a wide range of cellular systems.

摘要

在枯草芽孢杆菌中,生物膜和孢子形成途径都受到一种主要调控因子 Spo0A 的控制,该因子通过磷酸化通过磷酸接力途径被激活,该途径起始于组氨酸激酶 KinA、KinB、KinC、KinD 和 KinE 的自身磷酸化。然而,目前尚不清楚激酶如何尽管通过相同的调节剂 Spo0A 起作用,但却可以差异化地调节下游途径,即 KinA 如何主要激活孢子形成基因,而 KinC 如何主要激活生物膜基因。在这项工作中,我们发现 KinC 也下调了孢子形成基因,这表明 KinC 对 Spo0A 活性有负向影响。为了解释这种影响,我们使用磷酸接力的数学模型揭示了与总是激活 Spo0A 的 KinA 不同,KinC 在不同的生长阶段对 Spo0A 具有不同的影响:在快速生长期间,KinC 作为磷酸源并激活 Spo0A,而在缓慢生长期间,KinC 成为磷酸汇并有助于降低 Spo0A 活性。然而,在这些条件下,KinC 仍可以增加种群平均生物膜基质产生活性。在种群中,个体细胞以不同的速度生长,并且 KinC 会增加快速生长细胞中的 Spo0A 活性,但会降低慢速生长细胞中的 Spo0A 活性。该机制降低了 Spo0A 活性的单细胞异质性,从而增加了激活生物膜基质产生的细胞比例。因此,KinC 通过控制激活生物膜基因表达的细胞比例来激活生物膜形成。在许多细菌和真核系统中,单个主调控因子可激活多个细胞命运决定。通常,调节剂的活性在翻译后受到不同环境刺激的控制。在许多系统中,尚不清楚这些调节剂控制多种结果的能力的基础机制。通过研究枯草芽孢杆菌主调控因子 Spo0A 的调控,我们表明传感器激酶可以使用新的机制来控制细胞命运决定。通过充当磷酸源或磷酸汇,激酶可以相互作用并提供磷酸化水平的精确调节。此外,该机制会影响转录因子活性的细胞间异质性,并最终决定群体中不同细胞类型的比例。这些结果表明细胞间异质性对于理解遗传扰动对细胞命运决定的影响的重要性。这种影响可能适用于广泛的细胞系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/acc2/8749435/1ff50cfe167f/mbio.01694-21-f001.jpg

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