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Updated: Jun 24, 2025

Visualizing DNA Damage Repair Proteins in Patient-Derived Ovarian Cancer Organoids via Immunofluorescence Assays
Published on: February 24, 2023
AMH protects the ovary from doxorubicin by regulating cell fate and the response to DNA damage
Abstract:
Anti-Müllerian hormone (AMH) protects the ovarian reserve from chemotherapy, and this effect is most pronounced with Doxorubicin (DOX). However, the mechanisms of DOX toxicity and AMH rescue in the ovary remain unclear. Herein, we characterize these mechanisms in various ovarian cell types using scRNAseq. In the mesenchyme, DOX activates the intrinsic apoptotic signaling pathway through p53 class mediators, particularly affecting theca progenitors, while co-treament with AMH halts theca differentiation and reduces apoptotic gene expression. In preantral granulosa cells, DOX upregulates the cell cycle inhibitor Cdkn1a and dysregulates Wnt signaling, which are ameliorated by AMH co-treatment. Finally, in follicles, AMH induces Id3 , a protein involved in DNA repair, which is necessary to prevent the accumulation of DNA lesions marked by γ-H2AX in granulosa cells. Altogether this study characterizes cell, and follicle stage-specific mechanisms of AMH protection of the ovary, offering promising new avenues for fertility preservation in cancer patients undergoing chemotherapy.
Highlights:
Doxorubicin treatment induces DNA damage that activates the p53 pathway in stromal and follicular cells of the ovary.AMH inhibits the proliferation and differentiation of theca and granulosa cells and promotes follicle survival following Doxorubicin insult.AMH treatment mitigates Doxorubicin-induced DNA damage in the ovary by preventing the accumulation of γ-H2AX-positive unresolved foci, through increased expression of ID3, a protein involved in DNA repair.
Insights
Anti-Müllerian hormone (AMH) protects ovarian reserve from chemotherapy by halting theca cell differentiation and preventing DNA damage. AMH enhances DNA repair in granulosa cells, preserving fertility during Doxorubicin treatment.
Area of Science:
- Reproductive biology
- Oncology
- Molecular genetics
Background:
- Chemotherapy, particularly Doxorubicin (DOX), poses a significant risk to ovarian reserve.
- The protective mechanisms of Anti-Müllerian hormone (AMH) against DOX-induced ovarian toxicity are not fully understood.
- Understanding these mechanisms is crucial for developing fertility preservation strategies.
Approach:
- Utilized single-cell RNA sequencing (scRNAseq) to investigate cellular responses to DOX and AMH in ovarian cells.
- Characterized the effects of DOX and AMH on theca progenitors, preantral granulosa cells, and ovarian follicles.
- Analyzed gene expression patterns related to apoptosis, cell cycle regulation, Wnt signaling, and DNA repair.
Key Points:
- DOX activates p53-mediated apoptosis in theca progenitors; AMH co-treatment inhibits theca differentiation and reduces apoptosis.
- DOX upregulates cell cycle inhibitor Cdkn1a and disrupts Wnt signaling in granulosa cells; AMH ameliorates these effects.
- AMH induces Id3 expression in granulosa cells, facilitating DNA repair and preventing DNA lesions (γ-H2AX accumulation).
Conclusions:
- AMH provides ovarian protection against DOX through cell- and follicle-stage-specific mechanisms.
- AMH mitigates DOX toxicity by modulating apoptosis, cell cycle, and DNA repair pathways.
- These findings offer potential new avenues for fertility preservation in cancer patients receiving chemotherapy.
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