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来自反式编码传感结构域的警报素与细胞周期信号的汇聚。

Convergence of alarmone and cell cycle signaling from trans-encoded sensory domains.

作者信息

Sanselicio Stefano, Viollier Patrick H

机构信息

Department of Microbiology and Molecular Medicine, Institute of Genetics and Genomics in Geneva (iGE3), Faculty of Medicine, University of Geneva, Geneva, Switzerland.

Department of Microbiology and Molecular Medicine, Institute of Genetics and Genomics in Geneva (iGE3), Faculty of Medicine, University of Geneva, Geneva, Switzerland

出版信息

mBio. 2015 Oct 20;6(5):e01415-15. doi: 10.1128/mBio.01415-15.

Abstract

UNLABELLED

Despite the myriad of different sensory domains encoded in bacterial genomes, only a few are known to control the cell cycle. Here, suppressor genetics was used to unveil the regulatory interplay between the PAS (Per-Arnt-Sim) domain protein MopJ and the uncharacterized GAF (cyclic GMP-phosphodiesterase-adenylyl cyclase-FhlA) domain protein PtsP, which resembles an alternative component of the phosphoenolpyruvate (PEP) transferase system. Both of these systems indirectly target the Caulobacter crescentus cell cycle master regulator CtrA, but in different ways. While MopJ acts on CtrA via the cell cycle kinases DivJ and DivL, which control the removal of CtrA at the G1-S transition, our data show that PtsP signals through the conserved alarmone (p)ppGpp, which prevents CtrA cycling under nutritional stress and in stationary phase. We found that PtsP interacts genetically and physically with the (p)ppGpp synthase/hydrolase SpoT and that it modulates several promoters that are directly activated by the cell cycle transcriptional regulator GcrA. Thus, parallel systems integrate nutritional and systemic signals within the cell cycle transcriptional network, converging on the essential alphaproteobacterial regulator CtrA while also affecting global cell cycle transcription in other ways.

IMPORTANCE

Many alphaproteobacteria divide asymmetrically, and their cell cycle progression is carefully regulated. How these bacteria control the cell cycle in response to nutrient limitation is not well understood. Here, we identify a multicomponent signaling pathway that acts on the cell cycle when nutrients become scarce in stationary phase. We show that efficient accumulation of the master cell cycle regulator CtrA in stationary-phase Caulobacter crescentus cells requires the previously identified stationary-phase/cell cycle regulator MopJ as well as the phosphoenolpyruvate protein phosphotransferase PtsP, which acts via the conserved (p)ppGpp synthase SpoT. We identify cell cycle-regulated promoters that are affected by this pathway, providing an explanation of how (p)ppGpp-signaling might couple starvation to control cell cycle progression in Caulobacter spp. and likely other Alphaproteobacteria. This pathway has the potential to integrate carbon fluctuation into cell cycle control, since in phosphotransferase systems it is the glycolytic product phosphenolpyruvate (PEP) rather than ATP that is used as the phosphor donor for phosphorylation.

摘要

未标记

尽管细菌基因组中编码了无数不同的感觉域,但已知只有少数几个能控制细胞周期。在这里,利用抑制子遗传学揭示了PAS(Per-Arnt-Sim)结构域蛋白MopJ与未表征的GAF(环鸟苷酸磷酸二酯酶-腺苷酸环化酶-FhlA)结构域蛋白PtsP之间的调节相互作用,PtsP类似于磷酸烯醇丙酮酸(PEP)转移酶系统的一个替代组分。这两个系统都间接靶向新月柄杆菌细胞周期主调节因子CtrA,但方式不同。虽然MopJ通过细胞周期激酶DivJ和DivL作用于CtrA,DivJ和DivL在G1-S转换时控制CtrA的去除,但我们的数据表明,PtsP通过保守的警报素(p)ppGpp发出信号,这在营养应激和稳定期阻止CtrA循环。我们发现PtsP在遗传和物理上与(p)ppGpp合酶/水解酶SpoT相互作用,并且它调节几个由细胞周期转录调节因子GcrA直接激活的启动子。因此,平行系统在细胞周期转录网络中整合营养和系统信号,汇聚到必需的α-变形菌调节因子CtrA,同时也以其他方式影响全局细胞周期转录。

重要性

许多α-变形菌进行不对称分裂,其细胞周期进程受到严格调控。这些细菌如何响应营养限制来控制细胞周期尚不清楚。在这里,我们确定了一条多组分信号通路,当稳定期营养物质稀缺时,该通路作用于细胞周期。我们表明,在稳定期新月柄杆菌细胞中,主细胞周期调节因子CtrA的有效积累需要先前确定的稳定期/细胞周期调节因子MopJ以及通过保守的(p)ppGpp合酶SpoT起作用的磷酸烯醇丙酮酸蛋白磷酸转移酶PtsP。我们确定了受该通路影响的细胞周期调节启动子,解释了(p)ppGpp信号如何将饥饿与新月柄杆菌属及可能其他α-变形菌的细胞周期进程控制联系起来。由于在磷酸转移酶系统中,用作磷酸化磷供体的是糖酵解产物磷酸烯醇丙酮酸(PEP)而非ATP,所以该通路有可能将碳波动整合到细胞周期控制中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4473/4620464/de95ca272560/mbo0051525070001.jpg

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