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Killing with proficiency: Integrated post-translational regulation of an offensive Type VI secretion system

机译:熟练杀人:进攻型VI分泌系统的整合翻译后调控

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摘要

The Type VI secretion system (T6SS) is widely used by bacterial pathogens as an effective weapon against bacterial competitors and is also deployed against host eukaryotic cells in some cases. It is a contractile nanomachine which delivers toxic effector proteins directly into target cells by dynamic cycles of assembly and firing. Bacterial cells adopt distinct post-translational regulatory strategies for deployment of the T6SS. ‘Defensive’ T6SSs assemble and fire in response to incoming attacks from aggressive neighbouring cells, and can utilise the Threonine Protein Phosphorylation (TPP) regulatory pathway to achieve this control. However, many T6SSs are ‘offensive’, firing at all-comers without the need for incoming attack or other cell contact-dependent signal. Post-translational control of the offensive mode has been less well defined but can utilise components of the same TPP pathway. Here, we used the anti-bacterial T6SS of Serratia marcescens to elucidate post-translational regulation of offensive T6SS deployment, using single-cell microscopy and genetic analyses. We show that the integration of the TPP pathway with the negative regulator TagF to control core T6SS machine assembly is conserved between offensive and defensive T6SSs. Signal-dependent PpkA-mediated phosphorylation of Fha is required to overcome inhibition of membrane complex assembly by TagF, whilst PppA-mediated dephosphorylation promotes spatial reorientation and efficient killing. In contrast, the upstream input of the TPP pathway defines regulatory strategy, with a new periplasmic regulator, RtkS, shown to interact with the PpkA kinase in S. marcescens. We propose a model whereby the opposing actions of the TPP pathway and TagF impose a delay on T6SS re-assembly after firing, providing an opportunity for spatial re-orientation of the T6SS in order to maximise the efficiency of competitor cell targeting. Our findings provide a better understanding of how bacterial cells deploy competitive weapons effectively, with implications for the structure and dynamics of varied polymicrobial communities.
机译:VI型分泌系统(T6SS)被细菌病原体广泛用作对抗细菌竞争者的有效武器,并且在某些情况下还可以针对宿主真核细胞进行部署。它是一种可收缩的纳米机器,通过动态组装和发射循环将毒性效应蛋白直接传递到靶细胞中。细菌细胞采用不同的翻译后调控策略来部署T6SS。 “防御性” T6SS会根据攻击性邻近细胞的来袭进行组装和发射,并可以利用苏氨酸蛋白磷酸化(TPP)调节途径来实现这种控制。但是,许多T6SS都是“进攻性”的,向来袭者开火,不需要传入攻击或其他与细胞接触有关的信号。攻击模式的翻译后控制尚未明确定义,但可以利用同一TPP途径的组成部分。在这里,我们使用粘质沙雷氏菌(Serratia marcescens)的抗菌T6SS,通过单细胞显微镜和遗传分析,阐明了进攻性T6SS部署的翻译后调控。我们表明,在进攻性和防守性T6SS之间保留了TPP途径与负调节剂TagF的集成以控制核心T6SS机器装配。需要信号依赖的PpkA介导的Fha磷酸化,以克服TagF对膜复合物装配的抑制作用,而PppA介导的去磷酸化则促进空间重新定向和有效杀伤。相比之下,TPP途径的上游输入定义了调控策略,新的周质调控因子RtkS被证明与粘菌链霉菌中的PpkA激酶相互作用。我们提出了一个模型,在该模型中,TPP途径和TagF的相反作用会在发射后对T6SS的重组施加延迟,从而为T6SS的空间重新定向提供了机会,从而最大程度地提高了竞争者细胞靶向的效率。我们的发现为细菌细胞如何有效地部署竞争性武器提供了更好的理解,并对各种微生物群落的结构和动力学产生了影响。

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