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Updated: Jun 21, 2026

Extraction, Labeling, and Purification of Lineage-Specific Cells from Human Antral Follicles
Published on: November 30, 2022
Methoxychlor inhibits growth of antral follicles by altering cell cycle regulators
Rupesh K Gupta1, Sharon Meachum, Isabel Hernández-Ochoa
1Division of Toxicology, Department of Veterinary Biosciences, University of Illinois, 2001 South Lincoln Avenue, 3223 VMBSB, Urbana-Champaign, IL 61802, USA. drrupesh@illinois.edu
Abstract:
Methoxychlor (MXC) reduces fertility in female rodents, decreases antral follicle numbers, and increases atresia through oxidative stress pathways. MXC also inhibits antral follicle growth in vitro. The mechanism by which MXC inhibits growth of follicles is unknown. The growth of follicles is controlled, in part, by cell cycle regulators. Thus, we tested the hypothesis that MXC inhibits follicle growth by reducing the levels of selected cell cycle regulators. Further, we tested whether co-treatment with an antioxidant, N-acetyl cysteine (NAC), prevents the MXC-induced reduction in cell cycle regulators. For in vivo studies, adult cycling CD-1 mice were dosed with MXC or vehicle for 20 days. Treated ovaries were subjected to immunohistochemistry for proliferating cell nuclear antigen (PCNA) staining. For in vitro studies, antral follicles isolated from adult cycling CD-1 mouse ovaries were cultured with vehicle, MXC, and/or NAC for 48, 72 and 96 h. Levels of cyclin D2 (Ccnd2) and cyclin dependent kinase 4 (Cdk4) were measured using in vivo and in vitro samples. The results indicate that MXC decreased PCNA staining, and Ccnd2 and Cdk4 levels compared to controls. NAC co-treatment restored follicle growth and expression of Ccnd2 and Cdk4. Collectively, these data indicate that MXC exposure reduces the levels of Ccnd2 and Cdk4 in follicles, and that protection from oxidative stress restores Ccnd2 and Cdk4 levels. Therefore, MXC-induced oxidative stress may decrease the levels of cell cycle regulators, which in turn, results in inhibition of the growth of antral follicles.
Insights
Methoxychlor (MXC) impairs female fertility by reducing cell cycle regulators, inhibiting antral follicle growth. Antioxidant N-acetyl cysteine (NAC) protected against these effects, restoring regulator levels and follicle growth.
Area of Science:
- Reproductive Toxicology
- Cell Biology
- Endocrinology
Background:
- Methoxychlor (MXC) exposure is linked to reduced female fertility and ovarian follicle damage.
- Oxidative stress is implicated in MXC's adverse effects on ovarian follicles.
- The precise mechanism by which MXC inhibits follicle growth remains unclear.
Purpose of the Study:
- To investigate if MXC inhibits antral follicle growth by altering cell cycle regulators.
- To determine if N-acetyl cysteine (NAC) can prevent MXC-induced changes in cell cycle regulators.
Main Methods:
- In vivo studies involved dosing CD-1 mice with MXC and assessing ovarian tissue for proliferating cell nuclear antigen (PCNA) via immunohistochemistry.
- In vitro studies cultured isolated mouse antral follicles with MXC and/or NAC.
- Levels of cyclin D2 (Ccnd2) and cyclin dependent kinase 4 (Cdk4) were quantified in both in vivo and in vitro samples.
Main Results:
- MXC exposure significantly decreased PCNA staining, indicating reduced cell proliferation.
- MXC treatment led to lower levels of Ccnd2 and Cdk4 in ovarian follicles.
- Co-treatment with NAC successfully restored normal follicle growth and normalized Ccnd2 and Cdk4 expression.
Conclusions:
- MXC exposure reduces the expression of key cell cycle regulators, Ccnd2 and Cdk4, in ovarian follicles.
- Oxidative stress induced by MXC appears to be responsible for the downregulation of these critical growth regulators.
- Antioxidant intervention with NAC can mitigate MXC's detrimental effects on follicle growth by preserving cell cycle regulator levels.
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