Diethmaier Christine, Chawla Ravi, Canzoneri Alexandra, Kearns Daniel B, Lele Pushkar P, Dubnau David
Public Health Research Institute Center, New Jersey Medical School, Rutgers University, Newark, NJ, USA.
Artie McFerrin Department of Chemical Engineering, Texas A&M University, College Station Texas, TX, USA.
Mol Microbiol. 2017 Nov;106(3):367-380. doi: 10.1111/mmi.13770. Epub 2017 Aug 29.
Bacillus subtilis flagella are not only required for locomotion but also act as sensors that monitor environmental changes. Although how the signal transmission takes place is poorly understood, it has been shown that flagella play an important role in surface sensing by transmitting a mechanical signal to control the DegS-DegU two-component system. Here we report a role for flagella in the regulation of the K-state, which enables transformability and antibiotic tolerance (persistence). Mutations impairing flagellar synthesis are inferred to increase DegU-P, which inhibits the expression of ComK, the master regulator for the K-state, and reduces transformability. Tellingly, both deletion of the flagellin gene and straight filament (hag ) mutations increased DegU phosphorylation despite the fact that both mutants had wild type numbers of basal bodies and the flagellar motors were functional. We propose that higher viscous loads on flagellar motors result in lower DegU-P levels through an unknown signaling mechanism. This flagellar-load based mechanism ensures that cells in the motile subpopulation have a tenfold enhanced likelihood of entering the K-state and taking up DNA from the environment. Further, our results suggest that the developmental states of motility and competence are related and most commonly occur in the same epigenetic cell type.
枯草芽孢杆菌的鞭毛不仅对运动至关重要,还作为监测环境变化的传感器。尽管信号传递的具体方式尚不清楚,但已有研究表明,鞭毛通过传递机械信号来控制DegS-DegU双组分系统,从而在表面感知中发挥重要作用。在此,我们报告了鞭毛在K状态调节中的作用,K状态可实现转化能力和抗生素耐受性(持久性)。据推测,损害鞭毛合成的突变会增加DegU-P,从而抑制K状态的主要调节因子ComK的表达,并降低转化能力。值得注意的是,尽管这两种突变体的基体数量均为野生型且鞭毛马达功能正常,但鞭毛蛋白基因的缺失和直丝(hag)突变均增加了DegU的磷酸化。我们提出,鞭毛马达上较高的粘性负载通过未知的信号传导机制导致DegU-P水平降低。这种基于鞭毛负载的机制确保了运动亚群中的细胞进入K状态并从环境中摄取DNA的可能性提高了十倍。此外,我们的结果表明,运动能力和感受态的发育状态相关,且最常出现在相同的表观遗传细胞类型中。