Reproductive Endocrinology · Ovarian Hormones

Gestational progesterone restores menstrual cycle in PCOS patients via enhancing ovary estrogen production

Yang Q, Kong N, Wu J, Yang Y, Zhang X, Lin Y, Hu Z, Yan G, Sun H, Li C

Published April 29, 2026 Life Metabolism
DOI 10.1093/lifemeta/loag004 PMC PMC13128262

RRM Academy Synopsis

Irregular cycles improved after ART delivery in 80 of 132 PCOS women

A record review at one Chinese hospital followed women with PCOS after an ART delivery. About 6 out of 10 with irregular cycles improved afterward. Mouse and cell tests pointed to high progesterone in pregnancy. PCOS is now also called polyendocrine metabolic ovarian syndrome (PMOS).

Key Findings

  • The record review enrolled 317 women with PCOS who delivered after ART at one hospital. The analysis covered 186 women, and 132 of them had irregular cycles.
  • Of the 132 women with irregular cycles, 80 (60.60%) had improved cycles after delivery: 67 fully recovered to normal patterns and 13 improved partly.
  • Women whose cycles improved and women whose cycles did not showed no significant differences in age, years of infertility, BMI, baseline sex hormones, or ART procedure details.
  • In letrozole-treated PCOS mice, 3 weeks of progesterone restored the estrus and post-estrus phases and reduced secondary and antral follicles.
  • In granulosa cell experiments, progesterone lowered FSHR expression, and the authors indicate a GATA2-dependent mechanism. After progesterone pretreatment, FSH stimulation raised Cyp19a1 and other estrogen-building genes.

Interpretation

The human data come from hospital records, with cycle outcomes gathered by telephone follow-up. The human data have no comparison group of non-pregnant women. The women came from one hospital in Nanjing, and all delivered after fresh IVF or ICSI transfer. The progesterone mechanism comes from a letrozole mouse model and cell lines. The authors list untested pregnancy hormones such as prolactin. They state that dose, timing and safety of progesterone in non-pregnant women with PCOS need investigation.

RRM Context

Restorative reproductive medicine sees an irregular cycle in PCOS as a sign of an ovulation problem with a cause to find. In a normal cycle, progesterone rises after ovulation. The Nanjing group gave mice progesterone at pregnancy levels.

Abstract

Polycystic ovary syndrome (PCOS) is the most common endocrine disorder among women of reproductive age, typically characterized by irregular menstrual cycles. Our study found that postpartum menstrual cycles were largely restored in PCOS patients following assisted reproductive technology (ART) therapy. However, this recovery in menstrual cycles was not -associated with any specific ART procedures. Using a PCOS mouse model, we demonstrated that elevated progesterone levels during pregnancy were responsible for normalizing estrous cyclicity. Elevated levels of progesterone induced granulosa cell apoptosis and depleted large follicles, which potentially contributed to ovarian function suppression during pregnancy. Mechanistic studies indicated that progesterone decreased follicle-stimulating hormone receptor (FSHR) expression in a GATA binding protein 2 (GATA2)-dependent manner. Interestingly, the capacity of granulosa cells to convert androgens to estrogens significantly increased after progesterone withdrawal, as evidenced by elevated expression of cytochrome P450 family 19 subfamily A member 1 (Cyp19a1) in granulosa cells when stimulated with follicle-stimulating hormone. In addition, we found that progesterone administration reduced the thickness of the uterine endometrium in PCOS mice. Our findings suggest that sustained high levels of progesterone during pregnancy can enhance ovarian reproductive endocrine capacity and improve endometrial function, thereby facilitating the recovery of postpartum menstrual cycles.

Topics

By this author

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Reproductive Endocrinology › Ovarian Hormones › Progesterone · Menstrual Cycle › Cycle Disorders › Ovulatory Disturbances · Postpartum › Return of Fertility › Postpartum Charting
Qiwen Yang, Na Kong, Jing Wu, Yan Yang, Xinge Zhang, Yuan Lin, Zhibin Hu, Guijun Yan, Haixiang Sun, Chaojun Li
Q Yang, N Kong, J Wu, Y Yang, X Zhang, Y Lin, Z Hu, G Yan, H Sun, C Li
DOI 10.1093/lifemeta/loag004 10.1093/lifemeta/loag004 Yang et al. 2026, Yang 2026