Related Experiment Video
Updated: Jul 29, 2025

Author Spotlight: Investigating the Mechanisms and Inducing Models of Polycystic Ovary Syndrome
Published on: July 5, 2024
Bisphenol A interferes with lncRNA Fhadlos2 and RUNX3 association in adolescent mouse ovary
Yilei Zhang1, Xin Xie1, Huimin Cheng1
1Anhui Province Key Laboratory of Environmental Hormone and Reproduction, Fuyang Normal University, Fuyang, China; Anhui Province Key Laboratory of Embryo Development and Reproductive Regulation, Fuyang Normal University, Fuyang, China.
Abstract:
Bisphenol A (BPA) has a number of adverse effects on the reproductive development of females. In particular, the mechanism of disruption of ovarian development in adolescent mice is still unclear. Based on transcriptome sequencing results, a differentially expressed lncRNA, Fhad1os2, was detected in the ovaries of BPA-exposed pubertal mice. In our study, the lncRNA Fhad1os2, localized in the ovarian granulosa cell cytoplasm, could regulate the proliferation of mouse ovarian granulosa cells. Mechanistically, the results of RNA pull-down experiments as well as mass spectrometry analysis showed that ERα, an interfering signaling molecule of BPA, could directly bind lncRNA Fhad1os2 and decrease the transcription of lncRNA Fhad1os2 in response to the estrogen-like effect of BPA. BPA exposure also caused abnormal lncRNA Fhad1os2 pulldown protein-related signaling pathways in the ovaries of adolescent mice. Furthermore, lncRNA Fhad1os2 interacted with RUNX3, a transcription factor related to follicle development and hormone synthesis. As a negative regulator, lncRNA Fhad1os2 transactivated the expression of Runx3, which in turn induced RUNX3 to positively regulate aromatase (Cyp19a1) expression in mouse ovarian granulosa cells and promote estrogen synthesis. In conclusion, our study indicates that BPA exposure interferes with ERα-regulated lncRNA Fhad1os2 interactions with RUNX3 in pubertal mice, affecting estrogen synthesis in mouse granulosa cells and contributing to premature ovarian maturation in pubertal mice.
Insights
Bisphenol A (BPA) disrupts female reproductive development by altering Fhad1os2, a crucial lncRNA. This interference affects estrogen synthesis and may lead to premature ovarian maturation in adolescent mice.
Area of Science:
- Reproductive Biology
- Endocrinology
- Molecular Biology
Background:
- Bisphenol A (BPA) is known to cause adverse effects on female reproductive development.
- The precise mechanisms by which BPA disrupts ovarian development in adolescent females remain largely unknown.
- Long non-coding RNA (lncRNA) Fhad1os2 was identified as differentially expressed in the ovaries of BPA-exposed pubertal mice.
Purpose of the Study:
- To elucidate the role of lncRNA Fhad1os2 in ovarian granulosa cell proliferation and function.
- To investigate the interaction between BPA, estrogen receptor alpha (ERα), and lncRNA Fhad1os2.
- To understand how BPA exposure impacts estrogen synthesis and ovarian maturation via Fhad1os2.
Main Methods:
- Transcriptome sequencing to identify differentially expressed lncRNAs.
- RNA pull-down assays and mass spectrometry to identify protein interactions.
- Analysis of signaling pathways and gene expression, including aromatase (Cyp19a1) and RUNX3.
Main Results:
- lncRNA Fhad1os2 regulates mouse ovarian granulosa cell proliferation.
- BPA exposure, via its estrogen-like effect, reduces Fhad1os2 transcription by interfering with ERα binding.
- Fhad1os2 interacts with RUNX3 to regulate aromatase expression and estrogen synthesis, with BPA disrupting this interaction.
Conclusions:
- BPA exposure disrupts the ERα-Fhad1os2-RUNX3 pathway in pubertal mice.
- This disruption impairs estrogen synthesis in ovarian granulosa cells.
- The findings suggest a mechanism for BPA-induced premature ovarian maturation in adolescent females.
More Related Videos
12:11Analysis of Chromosome Segregation, Histone Acetylation, and Spindle Morphology in Horse Oocytes
Published on: May 11, 2017
08:28Assessment of the Effects of Endocrine Disrupting Compounds on the Development of Vertebrate Neural Network Function Using Multi-electrode Arrays
Published on: April 26, 2018
Related Concept Videos
Nondisjunction
lncRNA - Long Non-coding RNAs
Oogenesis