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Revoil, P.

Publications and source records attributed to Revoil, P..

2 recordsLinked to original sources

Fast assembly and in vivo coalescence of ParB biocondensates involved in bacterial DNA partition

Faithful DNA segregation in bacteria relies on ParABS systems, in which ParB assembles into condensates at centromere-like parS sites, while the ATPase ParA spatially organizes these complexes. How these ParB condensates maintain dynamic behavior without collapsing into a single structure has remained unclear. Here, we combine chromosome degradation with quantitative imaging to dissect the kinetics and physical principles governing ParB condensate dynamics in vivo. In the absence of the nucleoid, ParB condensates from the plasmid F diffuse freely and coalesce within seconds upon encounter. Strikingly, quantitative analyses indicate that condensates may operate near the fusion-separation boundary, such that minimal energy is sufficient to split them after replication, preventing irreversible coalescence. Using mutants, we demonstrate that condensate assembly is required for coalescence and uncover a dual role for ParAF: nucleoid tethering restricts condensate mobility and limits fusion, while ParAF also promotes a ParBF state competent for assembly and coalescence, likely by enhancing ParB-ParB interactions. Finally, condensates rapidly disassemble and reassemble upon 1,6-hexanediol treatment, underscoring their reversibility and the stabilizing contribution of ParB-DNA interactions. Together, our results establish ParBF complexes as bona-fide biocondensates tuned by ParAF to ensure robust DNA segregation. More broadly, these findings highlight regulated phase separation as a key organizing principle of bacterial replicons.

microbiology↗

The ParB-CTP Cycle Activates Phase Separation in Bacterial DNA Segregation

Cell function relies on liquid-like membraneless organelles formed through phase transitions, yet the mechanisms ensuring their specificity and rapid assembly remain poorly understood. In bacterial chromosome segregation via the ParABS system, hundreds of ParB proteins are recruited around the centromere-like parS sequence forming the partition complex. Recent studies have shown that ParB binds CTP and undergoes cycles of loading and unloading near parS, however, this accounts for the recruitment of only a small fraction of ParB molecules, leaving its role unclear. Separately, a lattice gas model with fixed interaction energy has been proposed to describe ParB phase separation, but it fails to explain key experimental observations, including the absence of droplets in ParB variants. We reconcile these two perspectives by proposing that the ParB-CTP cycle acts as a molecular switch that enhances ParB-ParB interactions, triggering phase transition from vapor to liquid-like condensates. Our hypothesis is supported by numerical simulations of droplet formation and experiments showing that ParB variants disrupting the CTP cycle fail to undergo phase separation. These findings establish a mechanistic framework for ParB-CTP-mediated phase transitions and may have broader implications for understanding the spatial control of intracellular condensate formation.

cell biology↗