Pre-ovulatory intercellular regulation of miR-125a-3p within mouse ovarian follicles
Hadas Grossman1, Efrat Har-Paz1, Natalie Gindi1
1Department of Cell and Developmental Biology, Sackler Faculty of Medicine, Tel-Aviv University, Ramat-Aviv, Tel-Aviv, Israel.
Abstract:
miR-125a-3p, a post-transcription regulator of Fyn kinase, is expressed in mouse pre-ovulatory follicles; its expression within the follicle decreases toward ovulation. Our aim was to follow the synthesis of miR-125a-3p and regulation of its expression in all follicular compartments, focusing on intercellular communication. Mural granulosa cells (GCs) or cumulus cells (CCs) were transfected with either scrambled-miR (negative control) or miR-125a-3p mimic. Freshly isolated GCs or CCs were incubated overnight in culture media conditioned by transfected cells. To examine a possible role of gap junctions in the regulation of miR-125a-3p, we incubated large antral follicles in the presence of carbenoxolone, a gap-junction inhibitor, and triggered them to mature with hGC. Levels of miR-125a family members in GCs, CCs, oocytes, and culture media were measured by qPCR. We showed that miR-125a-3p is synthesized by all follicular components, but is regulated within the follicle as a whole. It is secreted by mural-GCs and taken up by CCs, where it remains functional, and vice versa, mural-GCs can take up miR-125a-3p secreted by CCs. miR-125a-3p is transcribed and accumulated in oocytes throughout oogenesis. Transcriptionally quiescent GV oocytes utilize their accompanying follicular cells to monitor the level of miR-125a-3p within them, as indicated in an ex vivo follicle culture. Our study reveals that miR-125a-3p expression is modulated by a network of intercellular communications within pre-ovulatory follicles, thus enabling a coordinated decrease of miR-125a-3p toward ovulation.
Insights
MicroRNA-125a-3p (miR-125a-3p) is synthesized by all parts of mouse pre-ovulatory follicles and moves between cells. Its levels are coordinated by intercellular communication, decreasing towards ovulation.
Area of Science:
- Reproductive Biology
- Molecular Endocrinology
- Cellular Communication
Background:
- MicroRNA-125a-3p (miR-125a-3p) is a regulator of Fyn kinase, found in mouse pre-ovulatory follicles.
- Follicular miR-125a-3p expression declines as ovulation approaches.
Purpose of the Study:
- To investigate the synthesis and intercellular regulation of miR-125a-3p within all follicular compartments.
- To understand the role of cell-to-cell communication in modulating miR-125a-3p levels during follicle maturation.
Main Methods:
- Transfection of mural granulosa cells (GCs) and cumulus cells (CCs) with miR-125a-3p mimics.
- Incubation of GCs and CCs in conditioned media from transfected cells.
- Follicle culture with gap junction inhibitors (carbenoxolone) and hCG.
- Quantitative PCR (qPCR) to measure miR-125a family member levels in GCs, CCs, oocytes, and media.
Main Results:
- miR-125a-3p is synthesized by GCs, CCs, and oocytes, and secreted/taken up between these compartments.
- GCs and CCs actively exchange functional miR-125a-3p.
- Oocytes accumulate miR-125a-3p throughout oogenesis and quiescent oocytes monitor levels via follicular cells.
- Gap junction inhibition did not significantly alter miR-125a-3p levels.
Conclusions:
- miR-125a-3p expression in pre-ovulatory follicles is regulated by a complex network of intercellular communication.
- This communication network ensures a coordinated decrease in miR-125a-3p levels, essential for the ovulation process.
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