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Updated: Jan 25, 2026

Correlating Gene-specific DNA Methylation Changes with Expression and Transcriptional Activity of Astrocytic KCNJ10 Kir4.1
Published on: September 26, 2015
Methylation reader MBD2-mediated GPX4 transcriptional repression drives ovarian granulosa cell ferroptosis in PCOS
Zhengquan Zhu1, Yihan Wang2, Xinye Yu2
1Department of Pain Management, Nanjing Drum Tower Hospital, Affiliated Hospital of Medical School, Nanjing University, Nanjing, 210008, China; Department of State Key Laboratory of Analytical Chemistry for Life Science and Jiangsu Key Laboratory of Molecular Medicine, Medical School of Nanjing University, Nanjing, 210009, China.
Abstract:
Arrested follicular development and anovulation are hallmarks of polycystic ovary syndrome (PCOS), in which granulosa cell (GC) ferroptosis is emerging as a potential contributor. However, its precise role and regulation remain largely unknown. Here, we identify a methyl-CpG-binding domain protein 2 (MBD2)-driven ferroptotic program as a central pathogenic mechanism in PCOS. In a dehydroepiandrosterone (DHEA)-induced PCOS mouse model, GCs exhibited marked ferroptotic alterations and transcriptional suppression of glutathione peroxidase 4 (GPX4), a key anti-ferroptotic enzyme. GC-specific Gpx4 knockout exacerbated ferroptosis, impaired follicular maturation, reduced corpora lutea formation, and aggravated PCOS pathology. GPX4 repression was associated with increased DNA methyltransferases (DNMTs), elevated DNA Methyl-reading protein MBD2 and hypermethylation of the Gpx4 promoter. Pharmacological inhibition of MBD2 with KCC-07, or DNMT blockade with 5-Azacytidine, restored GPX4 expression, reduced lipid peroxidation and GC ferroptosis, and alleviated ovarian dysfunction. Integrative ATAC-seq and RNA-seq analyses revealed enhanced Gpx4 promoter accessibility in PCOS ovaries, where MBD2, MAZ, HDAC3 and NCoR assembled into a repressive complex that was interrupted by KCC-07 treatment. Importantly, pharmacologic GPX4 inhibition with RSL3 or GC-specific Gpx4 deletion abrogated the protective effects of MBD2 inhibition, establishing GPX4 repression as the critical downstream effector. Collectively, these findings uncover an MBD2-driven epigenetic program that silences GPX4, triggers GC ferroptosis, and promotes PCOS pathogenesis. Targeting MBD2 to restore epigenetic control of ferroptosis offers a promising therapeutic strategy for PCOS.
Insights
Polycystic ovary syndrome (PCOS) involves granulosa cell ferroptosis regulated by methyl-CpG-binding domain protein 2 (MBD2). MBD2 silences glutathione peroxidase 4 (GPX4), promoting PCOS. Targeting MBD2 offers a potential therapy.
Area of Science:
- Reproductive Biology
- Cellular Biology
- Epigenetics
Background:
- Polycystic ovary syndrome (PCOS) is characterized by ovulatory dysfunction and arrested follicular development.
- Granulosa cell (GC) ferroptosis is implicated in PCOS pathogenesis, but its regulatory mechanisms are unclear.
Purpose of the Study:
- To investigate the role of methyl-CpG-binding domain protein 2 (MBD2) in regulating GC ferroptosis and PCOS development.
- To identify the epigenetic mechanisms underlying GC ferroptosis in PCOS.
Main Methods:
- Utilized a dehydroepiandrosterone (DHEA)-induced PCOS mouse model.
- Performed GC-specific Gpx4 knockout and pharmacological inhibition of MBD2 (KCC-07) and DNMTs (5-Azacytidine).
- Conducted integrative ATAC-seq and RNA-seq analyses to examine epigenetic modifications and gene expression.
Main Results:
- PCOS GCs showed ferroptosis and suppressed glutathione peroxidase 4 (GPX4) expression, linked to MBD2 and Gpx4 promoter hypermethylation.
- MBD2 inhibition or DNMT blockade restored GPX4, reduced ferroptosis, and alleviated PCOS pathology.
- MBD2, MAZ, HDAC3, and NCoR formed a repressive complex at the Gpx4 promoter, disrupted by MBD2 inhibition.
Conclusions:
- An MBD2-driven epigenetic program silences GPX4, inducing GC ferroptosis and promoting PCOS.
- Targeting MBD2 to restore epigenetic control of ferroptosis presents a promising therapeutic strategy for PCOS.
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