Sinorhizobium meliloti FcrX coordinates cell cycle and division during free-living growth and symbiosis
Dendene, S.; Xue, S.; Nicoud, Q.; Valette, O.; Frascella, A.; Bonnardel, A.; Le Bars, R.; Bourge, M.; Mergaert, P.; Brilli, M.; Alunni, B.; Bondi, E. G.
Show abstract
Sinorhizobium meliloti is a soil bacterium that establishes a symbiosis within root nodules of legumes (Medicago sativa, for example) where it fixes atmospheric nitrogen into ammonia and obtains in return carbon sources and other nutrients. In this symbiosis, S. meliloti undergoes a drastic cellular change leading to a terminal differentiated form (called bacteroid) characterized by genome endoreduplication, increase of cell size and high membrane permeability. The bacterial cell cycle (mis)regulation is at the heart of this differentiation process. In free-living cells, the master regulator CtrA ensures the progression of cell cycle by activating cell division (controlled by the tubulin-like protein FtsZ) and simultaneously inhibiting supernumerary DNA replication, while on the other hand the downregulation of CtrA and FtsZ is essential for bacteroid differentiation during symbiosis, preventing endosymbiont division and permitting genome endoreduplication. Little is known in S. meliloti about regulators of CtrA and FtsZ, as well as the processes that control bacteroid development. Here, we combine cell biology, biochemistry and bacterial genetics approaches to understand the function(s) of FcrX, a new factor that controls both CtrA and FtsZ, in free-living growth and in symbiosis. Depletion of the essential gene fcrX led to abnormally high levels of FtsZ and CtrA and minicell formation. Using multiple complementary techniques, we showed that FcrX is able to interact physically with FtsZ and CtrA. Moreover, its transcription is controlled by CtrA itself and displays an oscillatory pattern in the cell cycle. We further showed that, despite a weak homology with FliJ-like proteins, only FcrX proteins from closely-related species are able to complement S. meliloti fcrX function. Finally, deregulation of FcrX showed abnormal symbiotic behaviors in plants suggesting a putative role of this factor during bacteroid differentiation. In conclusion, FcrX is the first known cell cycle regulator that acts directly on both, CtrA and FtsZ, thereby controlling cell cycle, division and symbiotic differentiation.
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Visualizing the dynamics of exported bacterial proteins with the chemogenetic fluorescent reporter FAST 96%
- Iron acquisition system of Sphingobium sp. strain SYK-6, a degrader of lignin-derived aromatic compounds 96%
- A systems approach discovers the role and characteristics of seven LysR type transcription factors in Escherichia coli 95%
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
- A conserved cell-pole determinant organizes proper polar flagellum formation 96%
- Periplasm homeostatic regulation maintains spatial constraints essential for cell envelope processes and cell viability 95%
- An analog to digital converter controls bistable transfer competence of a widespread integrative and conjugative element 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.