Aug 2026· Theriogenology· Vol 266, pp.
118154
· 0 citations· 37 references
Medicine
TL;DR
Investigation of the association between GDF9 polymorphisms and litter size and the post-transcriptional regulation of GDF9 by miR-6388 in ovine GCs found that the GDF9 3'UTR region carrying the G allele of g.42113962G’s more responsive to miR-6388-mediated repression than the region carrying the A allele.
Abstract
Litter size is an economically important trait in sheep and is closely associated with ovarian follicular development and granulosa cell (GC) function. This study investigated the association between GDF9 polymorphisms and litter size, and examined the post-transcriptional regulation of GDF9 by miR-6388 in ovine GCs. Variants were initially identified by Sanger sequencing in 20 ewes, and subsequently genotyped in 377 three-year-old ewes, including 231 Sonid (SN) sheep and 146 Ujimqin (UM) sheep for association analysis. Candidate miRNAs targeting litter size-associated variants in the GDF9 3'UTR were predicted, and the miR-6388-GDF9 interaction was evaluated using dual-luciferase reporter assays. RT-qPCR, Western blotting, EdU incorporation, and flow cytometry were used to assess endogenous GDF9 expression and GC function. Twelve single-nucleotide polymorphisms were identified, including the putatively novel variant g.42114076C > G. The linkage disequilibrium block comprising g.42116936C > T, g.42113821T > A, and g.42113962G > A polymorphisms of GDF9 was significantly associated with litter size in both SN and UM sheep, whereas the c.477G > A was associated with litter size only in UM sheep. Reporter assays showed that the GDF9 3'UTR region carrying the G allele of g.42113962G > A was more responsive to miR-6388-mediated repression than the region carrying the A allele. miR-6388 overexpression reduced GDF9 mRNA and GDF9 protein levels, inhibited GC proliferation, altered cell-cycle distribution, and promoted apoptosis, whereas miR-6388 knockdown increased GDF9 expression and GC proliferation and reduced apoptosis. These cellular changes were accompanied by altered expression of cell-cycle and apoptosis-related genes and TGF-β signaling-related components.
Results suggest that miR-6615-3p downregulates AR and is associated with reduced MDM2 expression, enhanced p53 activation, and decreased BCL2 expression, indicating that it may regulate cell fate and steroid hormone synthesis, at least in part, through the MDM2-p53-BCL2 signaling pathway.
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OBJECTIVE
Investigating the molecular mechanism of granulosa cell dysfunction is vital to understand the pathogenesis of polycystic ovary syndrome (PCOS).
DESIGN
Based on bioinformatics analysis, we analyzed the differentially expressed genes and their enrichment pathways between PCOS patients and normal samples. We...
Le Pang, Aileen Wang, Ming Ni· F&S Science· 0 citations
Combining standard endometriosis treatments with exosome-mediated miR-22-3p targeting of p53 could restore p53 function, induce apoptosis, and reduce disease recurrence, providing a promising therapeutic strategy for endometriosis management.
Cong-Xiang Yu, Yue-Fei Li, Ge-Le Qi et al.· Journal of Molecular Histolo...· 0 citations
Novel genes and miRs are revealed in NF-PitNETs suggesting their potential regulatory role in cell adhesion, migration, and apoptosis therefore potentially contributing to their pathogenesis.
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