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Biology subjects

Huguet, F.

Publications and source records attributed to Huguet, F..

2 recordsLinked to original sources

Multi-omic analyses reveal a differential contribution of chromatin-associated PP1 holoenzymes to mitotic exit and G1 re-establishment.

Mitotic exit is an important part of the cell cycle that requires coordination of many chromatin and cytoskeleton remodelling events to successfully complete cell division and maintain cell identity. Protein de-phosphorylation is a key step in directing mitotic exit and Protein phosphatase (PP1) is essential to this process, however the specific contribution of its numerous targeting subunits is still unknown. Here we have investigated the function of three chromatin-associated PP1 targeting subunits in exiting mitosis Repo-Man, Ki-67 and PNUTS. We have generated endogenously tagged, auxin-degradable alleles for each subunit and used a multi-omic approach to address their specific contribution towards transcription resumption, chromatin accessibility and protein phosphorylation at the transition from mitosis to G1. This approach has identified their distinct role in mitotic exit, provided unique datasets for the cell cycle community, and highlighted novel functions for Ki-67 and Repo-Man in genome stability and organisation.

cell biology↗

Ki-67 is necessary during DNA replication for forks protection and genome stability

BackgroundThe proliferation antigen Ki-67 has been widely used in clinical settings for cancer staging for many years but investigations on its biological functions have lagged. Recently, Ki-67 was shown to regulate both the composition of the chromosome periphery and chromosome behaviour in mitosis as well as to play a role in heterochromatin organisation and gene transcription. However, a role for Ki-67 in regulating cell cycle progression has never been reported. The progress towards understanding Ki-67 function have been limited by the tools available to deplete the protein coupled to its abundance and fluctuation during the cell cycle. ResultsHere we have used an auxin-inducible degron tag (AID) to achieve a rapid and homogeneous degradation of Ki-67 in HCT116 cells. This system, coupled with APEX2 proteomics and phospho-proteomics approaches, allowed us to show for the first time that Ki-67 plays a role during DNA replication. In its absence, DNA replication is severely delayed, the replication machinery is unloaded, causing DNA damage that is not sensed by the canonical pathways and dependant on HUWE1 ligase. This leads to replication and sister chromatids cohesion defects, but it also triggers an interferon response mediated by the cGAS/STING pathway in all the cell lines tested. ConclusionsWe have unveiled a new function of Ki-67 in DNA replication and genome maintenance that is independent of its previously known role in mitosis and gene regulation.

cell biology↗