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M, R.

Publications and source records attributed to M, R..

2 recordsLinked to original sources

CDK1 facilitates RAD51-mediated DNA repair to protect dictyate stage arrested oocytes from genotoxic stress

Oocytes arrested at the dictyate stage of meiosis I must maintain genomic integrity for prolonged periods to preserve female fertility. During this extended arrest, DNA lesions arising from endogenous and exogenous sources threaten oocyte survival, yet the molecular mechanisms coordinating DNA repair in dormant oocytes remain poorly understood. Here, we identify cyclin-dependent kinase 1 (CDK1) as a critical regulator of the oocyte DNA damage response and homologous recombination (HR) repair under genotoxic stress. Using cisplatin-induced DNA damage models in fetal goat ovaries and neonatal mouse ovaries, we investigated repair mechanisms operating within the ovarian reserve. Label-free proteomic profiling revealed significant enrichment of DNA damage response pathways following cisplatin exposure, with CDK1 emerging as one of the most prominently upregulated kinases. Pharmacological inhibition of CDK1 had little effect on follicle survival under physiological conditions but aggravated oocyte and follicle loss following DNA damage, indicating a stress-dependent role for CDK1 in preserving ovarian follicle pool integrity. Mechanistically, DNA damage activated a Chk2-dependent signaling pathway that promoted p63 phosphorylation and altered the WEE1-CDK1 regulatory axis, resulting in reduced inhibitory CDK1 phosphorylation (Thr14/Tyr15) and increased activating phosphorylation (Thr161). Activated CDK1 was associated with enhanced RAD51 phosphorylation and accumulation at DNA damage foci, supporting homologous recombination (HR)-mediated repair in dictyate-arrested oocytes. In contrast, CDK1 inhibition reduced phospho-RAD51 levels, impaired RAD51 localization, increased persistent {gamma}H2AX accumulation, and elevated oocyte apoptosis. Notably, suppression of CDK1 was accompanied by increased expression of the non-homologous end joining (NHEJ) marker Ku80 and the nucleotide excision repair (NER) factor XPA, suggesting increased engagement of alternative DNA repair pathways. Furthermore, inhibition of Chk2 abolished the DNA damage-associated CDK1 activation signature and restored WEE1 expression, supporting a model in which CDK1 functions downstream of Chk2 signaling during the oocyte DNA damage response. Collectively, our findings identify a previously unrecognized Chk2-CDK1-RAD51 signaling axis that coordinates homologous recombination repair in dormant oocytes and safeguards ovarian follicular pool integrity under genotoxic stress. These findings provide new mechanistic insight into how dictyate-arrested oocytes maintain genome stability during prolonged meiotic arrest.

Cell Biology↗

Lipid Droplet Remodeling Safeguards Redox Balance through the DGAT1-PANK2-NRF2 Axis in Mammalian Oocytes and Drives Age-Associated Decline

How lipid droplets (LDs) buffer metabolic stress and redox imbalance in aging oocytes remains poorly understood. Here, we identify de novo LD remodeling as a metabolic capacitor that couples lipid storage to mitochondrial fitness and oxidative resilience in mammalian oocytes. Live imaging revealed pronounced LD dynamics, with LD number peaking at metaphase I and declining by metaphase II, while LD area shifted inversely. Despite stable triacylglyceride and free fatty acid pools, {beta}-oxidation increased sharply, indicating elevated lipid turnover during meiotic progression. Spatial mapping and fatty-acid tracing demonstrated that newly synthesized lipids are actively incorporated into LDs, which arise primarily from the endoplasmic reticulum and engage with lysosomes and mitochondria. Acute inhibition of DGAT1, the rate-limiting enzyme of LD biogenesis, disrupted meiotic maturation and triggered oxidative stress, mitochondrial aggregation, and ultrastructural damage. Proteomic profiling revealed robust PANK2 upregulation and suppression of NRF2-linked antioxidant pathways. Mechanistic analyses showed that {beta}-oxidation blockade, PANK2 inhibition, antioxidant supplementation, or NRF2 activation each partially rescued DGAT1-dependent defects, and genetic validation in NRF2-null oocytes confirmed pathway dependence. Notably, aged oocytes exhibited reduced de novo LD biogenesis and impaired DGAT1-ER organization despite increased LD accumulation, resulting in smaller, metabolically inert droplets and a mismatch between lipid formation and utilization. Inhibiting PANK2 alleviated oxidative stress in aged oocytes, further implicating the DGAT1-PANK2-NRF2 axis in redox control and oocyte quality. Together, these findings establish LD biogenesis as a core metabolic capacitor safeguarding mitochondrial and organelle integrity during meiosis and reveal dysfunction of the DGAT1-PANK2-NRF2 axis as a mechanistic driver of reproductive aging.

cell biology↗