4.7 Article

Melatonin Regulates Lipid Metabolism in Porcine Cumulus-Oocyte Complexes via the Melatonin Receptor 2

期刊

ANTIOXIDANTS
卷 11, 期 4, 页码 -

出版社

MDPI
DOI: 10.3390/antiox11040687

关键词

melatonin receptor; lipid metabolism; reactive oxygen species; cytoplasmic maturation; cumulus-oocyte complexes

资金

  1. National Natural Science Foundation of China [32002179, 31872360]
  2. National Key R&D Program of China [2021YFA0805902]
  3. Excellent Youth Project of Heilongjiang Province Natural Science Foundation of China [YQ2020C007]

向作者/读者索取更多资源

This study reveals the role of melatonin receptors in lipid metabolism and redox signaling during in vitro cumulus-oocyte complex (COC) development, highlighting their potential to improve female reproductive health. Understanding the dynamics of interactions between lipid homeostasis and redox signaling driven by melatonin receptors is crucial for predicting drug targets and therapeutic effects.
Previous studies suggest that the inclusion of melatonin (MTn) in in vitro maturation protocols improves the developmental competence of oocytes by scavenging reactive oxygen species (ROS). However, the molecular mechanisms integrating melatonin receptor (MT)-mediated lipid metabolism and redox signaling during in vitro cumulus-oocyte complex (COC) development still remain unclear. Here, we aimed to elucidate the potential role of MTn receptors in lipid metabolic adjustments during in vitro porcine COC development. We observed that MTn-mediated G(s)alpha-cAMP/PKA signaling facilitated lipolysis primarily through the MT2 receptor and subsequently increased fatty acid (FA) release by hydrolyzing intracellular triglycerides (TGs) in cumulus cells. Furthermore, CD36 was a critical FA transporter that transported available FAs from cumulus cells to oocytes and promoted de novo TG synthesis in the latter. In addition, MTn regulated lipogenesis and intracellular lipolysis to maintain lipid homeostasis and limit ROS production, thereby supporting oocyte cytoplasmic maturation and the subsequent embryo development. Taken together, these findings provide insight into the possible mechanism integrating MT2-mediated lipid homeostasis and redox signaling, which limits ROS production during in vitro COC development. Therefore, understanding the dynamics of the interactions between lipid homeostasis and redox signaling driven by MT2 is necessary in order to predict drug targets and the effects of therapeutics used to improve female reproductive health.

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