Biomedical Research Institute, Seoul National University Hospital, Seoul 03080, Korea.
Department of Obstetrics and Gynecology, College of Medicine, Seoul National University, Seoul 03080, Korea.
Int J Mol Sci. 2019 Jun 3;20(11):2720. doi: 10.3390/ijms20112720.
Hormonal disturbances, such as hyperandrogenism, are considered important for developing polycystic ovary syndrome (PCOS) in humans. Accordingly, directly hormone-regulated animal models are widely used for studying PCOS, as they replicate several key PCOS features. However, the pathogenesis and treatment of PCOS are still unclear. In this review, we aimed to investigate animal PCOS models and PCOS-like phenotypes in animal experiments without direct hormonal interventions and determine the underlying mechanisms for a better understanding of PCOS. We summarized animal PCOS models that used indirect hormonal interventions and suggested or discussed pathogenesis of PCOS-like features in animals and PCOS-like phenotypes generated in other animals. We presented integrated physiological insights and shared cellular pathways underlying the pathogenesis of PCOS in reviewed animal models. Our review indicates that the hormonal and metabolic changes could be due to molecular dysregulations, such as upregulated PI3K-Akt and extracellular signal-regulated kinase (ERK) signalling, that potentially cause PCOS-like phenotypes in the animal models. This review will be helpful for considering alternative animal PCOS models to determine the cellular/molecular mechanisms underlying PCOS symptoms. The efforts to determine the specific cellular mechanisms of PCOS will contribute to novel treatments and control methods for this complex syndrome.
激素紊乱,如高雄激素血症,被认为是人类多囊卵巢综合征(PCOS)发病的重要因素。因此,直接受激素调控的动物模型被广泛用于研究 PCOS,因为它们可以复制 PCOS 的几个关键特征。然而,PCOS 的发病机制和治疗方法仍不清楚。在这篇综述中,我们旨在研究没有直接激素干预的动物实验中的动物 PCOS 模型和 PCOS 样表型,并确定其潜在机制,以更好地理解 PCOS。我们总结了使用间接激素干预的动物 PCOS 模型,并提出或讨论了动物中 PCOS 样特征和其他动物中产生的 PCOS 样表型的发病机制。我们提出了综述中动物模型发病机制的综合生理学见解和共同的细胞途径。我们的综述表明,激素和代谢变化可能是由于分子失调引起的,如上调的 PI3K-Akt 和细胞外信号调节激酶(ERK)信号通路,这可能导致动物模型中出现 PCOS 样表型。本综述将有助于考虑替代动物 PCOS 模型,以确定 PCOS 症状的细胞/分子机制。确定 PCOS 的具体细胞机制的努力将有助于为这种复杂的综合征提供新的治疗和控制方法。