Abstract / Summary
Functional ovarian plasticity depends on the granulosa cell (GC) fate determination, differentiation, oocyte support and steroid production. After birth, GC identity must be maintained in differentiating follicles, while from puberty, ovarian plasticity is cyclically challenged by gonadotropic hormones. TRIM28-FOXL2 interactions form a key chromatin component maintaining ovarian identity programs and repressing testis-specific genes. This TRIM28 role depends on its E3-SUMO-ligase activity, suggesting SUMOylation in GC can be regulated by transient hormonal cues, although hormonal involvement in modulating GC identity remains to be established. Here, we demonstrated the in vivo interplay between gonadotropic-PKA-signaling and hypo-SUMOylation waves underlying ovarian GC plasticity. In vitro TRIM28 mutagenesis and phospho-proteomics demonstrated direct PKA inhibitory control on TRIM28. This prompted us to highlight SUMOylation alterations in Carney Complex ovarian lesions resulting from chronic PKA activity from rare genetic mutations. Using mutant models, transcriptomics and TRIM28/FOXL2-ChIP-Seq analyses, we specified the in vivo PKA inhibitory mechanisms on TRIM28/FOXL2 chromatin binding and its consequences on adult ovarian somatic cell identity. Together, our data support an integrative model where gonadotrophin pulses create transient windows of PKA-mediated TRIM28 phosphorylation, hypo-SUMOylation, and FOXL2-TRIM28 destabilization. This positions SUMOylation dynamics as central integrator of hormonal signaling and epigenetic identity maintenance in the ovary.