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Cumulus cells enhance oocyte genomic quality control by promoting DNA damage-induced meiotic arrest.

Cumulus cells are known to maintain oocyte arrest at prophase I through gap junction-mediated cAMP signalling, but their role after meiotic resumption remains unclear. Here, we show that cumulus cells enhance oocyte genomic quality control by sensitizing mouse oocytes to DNA damage-induced meiotic arrest. Time-lapse imaging of SiR-tubulin-labelled spindles revealed that oocytes from cumulus-oocyte complexes (COCs) matured faster than denuded oocytes (DOs). Upon mild DNA damage induced by low-dose etoposide, COC oocytes arrested at metaphase I, whereas DOs completed maturation despite similar levels of DNA lesions. This arrest required spindle assembly checkpoint (SAC) activity, as reversine rescued polar body extrusion and BubR1 and Mad2 were elevated in COCs but not DOs. Disruption of gap junctions or inhibition of mTOR signalling abolished the checkpoint response. Notably, cumulus cells did not enhance oocyte response to minor spindle perturbations. These findings reveal a previously unrecognized role of cumulus cells in mediating DNA damage-induced SAC activation, providing post-GVBD genomic surveillance beyond prophase I arrest.

Animals

FRET-FLIM for the Study of Protein-Protein Interactions Underpinning Mitosis Checkpoints.

Cell division is a key cellular process that ensures the continuation of life on Earth. In order to protect the genetic integrity of organisms, cell division must happen accurately, ensuring each daughter cell receives a complete copy of the original genome. The accuracy of this process is, in part, preserved by various cell cycle checkpoints. These checkpoints rely on the physical interactions of their components to ensure proper function. The spindle assembly checkpoint (SAC), for example, produces an inhibitory complex of BUBR1-BUB3 and MAD2 bound to CDC20. Many of these cell cycle checkpoint components have been identified in plants, but it has not yet been established whether plants have a mitotic checkpoint architecture that is similar to mammalian cells. To understand the function of plant cell cycle homologues, it is imperative to characterize their interactions in vivo. FRET-FLIM (Förster resonance energy transfer-fluorescence lifetime imaging microscopy), is a rapidly expanding technique that can be used to rapidly and simply characterize protein-protein interactions.

Fluorescence Resonance Energy Transfer

Generation of Cdc20 RNAi-Sensitive Cell Lines to Study Mitotic Exit.

Accurate mitotic progression ensures the fidelity of genome passage. Cdc20 is a key mitotic regulator. It promotes mitotic exit by activating the anaphase-promoting complex or cyclosome (APC/C) and monitors kinetochore-microtubule attachment through activating the spindle assembly checkpoint (SAC). Precise characterization of Cdc20 requires efficient depletion of endogenous Cdc20, which is extremely difficult to achieve by RNA interference (RNAi). This chapter describes the methodology to generate Cdc20 RNAi-sensitive cell lines with the help of CRISPR/Cas9 technology. These cell lines are highly sensitive to Cdc20 RNAi and provide a very useful tool for Cdc20 functionality investigation without the interference of endogenous Cdc20 protein. Similar strategy could be applied to other genes.

Cdc20 Proteins

The Use of APC/C Antagonists to Promote Mitotic Catastrophe in Cancer Cells.

The multiprotein subunit E3 ubiquitin ligase Anaphase-Promoting Complex/Cyclosome (APC/C) plays a key role in the control of mitosis progression. APC/C is the ultimate effector of the Spindle Assembly Checkpoint (SAC), the signaling system of higher organisms including the human that monitors the proper attachment of chromosomes to microtubules during cell division. Defects in this process result in genome instability, aneuploidy, premature aging, and cancer. APC/C roles in the SAC require its activation by the protein Cdc20. Interfering with APC/C activation by Cdc20 impairs APC/C substrate recognition, resulting in a delayed mitotic exit and eventually inducing cell death. This may be advantageous for the treatment of cancer and malignancies associated with SAC dysregulation. Here we describe a protocol to interfere with mitotic exit through the use of commercially available (Apcin, proTAME) as well as innovative small molecules we have developed that function as antagonists of APC/C activation by Cdc20. We show that the use of these molecules alone and in combination is effective to promote mitotic catastrophe and suppress cell expansion in 2D and 3D (spheroids) cancer cells of different tissue origin, including breast, cervical, and ovarian cancer.

Humans

Replication stress links Geminin depletion to centrosome amplification.

The timing of DNA replication and centrosome duplication is tightly regulated with cell cycle progression to ensure the faithful duplication of the genome during cell division. Both DNA and centrosomes are licensed for replication in late telophase/early G1, replicated in S phase and segregated during mitosis; yet how defects in DNA replication licensing are coupled to centrosome homeostasis remains poorly understood. Here, we show that depletion of the replication licensing inhibitor Geminin in proliferating mouse embryonic fibroblasts induces robust centrosome amplification together with impaired primary cilium assembly. Rather than promoting whole-genome reduplication, knockdown of Geminin triggers a replication stress response, characterized by DNA damage accumulation throughout the cycle, and activation of an ATR-dependent DNA damage response. Mechanistically, Geminin depletion-induced replication stress activates the ATR-Chk1-Wee1 checkpoint axis prolonging G2 and leading to premature centriole disengagement and centrosome amplification. These findings identify replication stress as the signaling module that couples defective DNA replication licensing to centrosome amplification.

DNA damage