Cuproptosis causes meiotic metaphase I arrest by disrupting mitochondrial functions in oocytes
- Cell Death Discov. 2026 May 23. doi: 10.1038/s41420-026-03168-x.
- 1. Department of Obstetrics and Gynecology, Reproductive Medical Center, First Affiliated Hospital of Sun Yat-sen University, Guangzhou, China.
- 2. Guangzhou Key Laboratory of Metabolic Diseases and Reproductive Health, Guangdong-Hong Kong Metabolism & Reproduction Joint Laboratory, Reproductive Medicine Center, the Affiliated Guangdong Second Provincial General Hospital of Jinan University, Guangzhou, China.
- 3. State Key Laboratory of Female Fertility Promotion, Center for Reproductive Medicine, Department of Obstetrics and Gynecology, Peking University Third Hospital, Beijing, China.
- 4. Zhujiang Hospital, Southern Medical University, Guangzhou, China.
- 5. School of Basic Medical Sciences, Southern Medical University, Guangzhou, China.
- 6. Key Laboratory of Regenerative Medicine of Ministry of Education, College of Life Science and Technology, Jinan University, Guangzhou, China.
- 7. Guangzhou Key Laboratory of Metabolic Diseases and Reproductive Health, Guangdong-Hong Kong Metabolism & Reproduction Joint Laboratory, Reproductive Medicine Center, the Affiliated Guangdong Second Provincial General Hospital of Jinan University, Guangzhou, China. [email protected].
- 8. School of Basic Medical Sciences, Southern Medical University, Guangzhou, China. [email protected].
- 9. Key Laboratory of Regenerative Medicine of Ministry of Education, College of Life Science and Technology, Jinan University, Guangzhou, China. [email protected].
- 10. Department of Obstetrics and Gynecology, Reproductive Medical Center, First Affiliated Hospital of Sun Yat-sen University, Guangzhou, China. [email protected].
- 11. Guangdong Provincial Key Laboratory of Reproductive Medicine, First Affiliated Hospital of Sun Yat-sen University, Guangzhou, China. [email protected].
- 12. Guangzhou Key Laboratory of Metabolic Diseases and Reproductive Health, Guangdong-Hong Kong Metabolism & Reproduction Joint Laboratory, Reproductive Medicine Center, the Affiliated Guangdong Second Provincial General Hospital of Jinan University, Guangzhou, China. [email protected].
- # Contributed equally.
Proper oocyte maturation is critical for female fertility, yet whether Cuproptosis, a recently identified copper-dependent cell death pathway, affects meiotic maturation remains unknown. Here, we show that Cu(II)-elesclomol (ELC-Cu(II)) treatment induces dose-dependent metaphase I arrest of mouse oocytes. This arrest results from spindle assembly checkpoint activation caused by defective spindle organization and impaired kinetochore-microtubule attachments. We demonstrate that ELC-Cu(II) triggers changes in canonical Cuproptosis markers, including intracellular copper accumulation, FDX1 downregulation, and protein aggregation. Meanwhile, treated oocytes exhibit mitochondrial dysfunction characterized by reduced membrane potential and decreased ATP levels. Integrated transcriptomic and proteomic profiling reveals a predominantly post-transcriptional response, with 223 differentially expressed proteins, while transcriptomic profiles show minimal changes. Pathway analysis identifies dysregulation of lipoic acid metabolism and iron-sulfur cluster biosynthesis as key features. Targeted knockdown of the key lipoyltransferase LIPT1 fails to rescue the meiotic defect, whereas supplementation with the NAD+ precursor nicotinamide mononucleotide (NMN) improves mitochondrial function and partially restores polar body extrusion. These findings establish Cuproptosis as a mechanism linking copper toxicity to mitochondrial impairment and meiotic failure in oocytes, and suggest NAD+ metabolism as a potential therapeutic target for protecting oocyte quality.Cuproptosis, via copper accumulation and FDX1 loss, disrupts critical metabolic pathways (such as lipoic acid metabolism and iron-sulfur cluster biosynthesis), causing mitochondrial dysfunction and oocyte meiotic arrest. NMN supplementation effectively mitigates this arrest by restoring cellular energy metabolism and rescuing maturation.
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