Affiliation:
1. Department of Gynecology and Reproductive Medicine Ms.Clinic MayOne Kashihara Japan
2. Department of Obstetrics and Gynecology Nara Medical University Kashihara Japan
3. Department of Gynecology and Reproductive Medicine Aska Ladies Clinic Nara Japan
4. Department of Medicine Kei Oushin Clinic Nishinomiya Japan
5. Department of Obstetrics and Gynecology Nara Prefecture General Medical Center Nara Japan
Abstract
AbstractAimPolycystic ovary syndrome (PCOS) is a common endocrine disorder characterized by menstrual irregularities, androgen excess, and polycystic ovarian morphology, but its pathogenesis remains largely unknown. This review focuses on how androgen excess influences the molecular basis of energy metabolism, mitochondrial function, and mitophagy in granulosa cells and oocytes, summarizes our current understanding of the pathogenesis of PCOS, and discuss perspectives on future research directions.MethodsA search of PubMed and Google Scholar databases were used to identify relevant studies for this narrative literature review.ResultsFemale offspring born of pregnant animals exposed to androgens recapitulates the PCOS phenotype. Abnormal mitochondrial morphology, altered expression of genes related to glycolysis, mitochondrial biogenesis, fission/fusion dynamics, and mitophagy have been identified in PCOS patients and androgenic animal models. Androgen excess causes uncoupling of the electron transport chain and depletion of the cellular adenosine 5′‐triphosphate pool, indicating further impairment of mitochondrial function. A shift toward mitochondrial fission restores mitochondrial quality control mechanisms. However, prolonged mitochondrial fission disrupts autophagy/mitophagy induction due to loss of compensatory reserve for mitochondrial biogenesis. Disruption of compensatory mechanisms that mediate the quality control switch from mitophagy to apoptosis may cause a disease phenotype. Furthermore, genetic predisposition, altered expression of genes related to glycolysis and oxidative phosphorylation, or a combination of these factors may also contribute to the development of PCOS.ConclusionIn conclusion, fetuses exposed to a hyperandrogenemic intrauterine environment may cause the PCOS phenotype possibly through disruption of the compensatory regulation of the mitophagy‐apoptosis axis.