Mitochondria of Porcine Oocytes Synthesize Melatonin, Which Improves Their In Vitro Maturation and Embryonic Development
-
Published:2024-07-07
Issue:7
Volume:13
Page:814
-
ISSN:2076-3921
-
Container-title:Antioxidants
-
language:en
-
Short-container-title:Antioxidants
Author:
Zhu Tianqi1, Yan Laiqing1, Deng Shoulong2ORCID, Ma Wenkui1, Xia Fan1, Wang Likai1, Ma Xiao1, Li Guangdong1, Shen Zixia1, Wang Yiwei1, Fu Yao1, Ji Pengyun1, Wang Bingyuan1, Zhang Lu1ORCID, Liu Guoshi1ORCID
Affiliation:
1. State Key Laboratory of Animal Biotech Breeding, Key Laboratory of Animal Genetics, Breeding and Reproduction of the Ministry of Agriculture, College of Animal Science and Technology, China Agricultural University, Beijing 100193, China 2. National Center of Technology Innovation for Animal Model, National Health Commission of China (NHC) Key Laboratory of Comparative Medicine, Institute of Laboratory Animal Sciences, Chinese Academy of Medical Sciences and Comparative Medicine Center, Peking Union Medical College, Beijing 100021, China
Abstract
The in vitro maturation efficiency of porcine oocytes is relatively low, and this limits the production of in vitro porcine embryos. Since melatonin is involved in mammalian reproductive physiology, in this study, we have explored whether endogenously produced melatonin can help in porcine oocyte in vitro maturation. We have found, for the first time in the literature, that mitochondria are the major sites for melatonin biosynthesis in porcine oocytes. This mitochondrially originated melatonin reduces ROS production and increases the activity of the mitochondrial respiratory electron transport chain, mitochondrial biogenesis, mitochondrial membrane potential, and ATP production. Therefore, melatonin improves the quality of oocytes and their in vitro maturation. In contrast, the reduced melatonin level caused by siRNA to knockdown AANAT (siAANAT) is associated with the abnormal distribution of mitochondria, decreasing the ATP level of porcine oocytes and inhibiting their in vitro maturation. These abnormalities can be rescued by melatonin supplementation. In addition, we found that siAANAT switches the mitochondrial oxidative phosphorylation to glycolysis, a Warburg effect. This metabolic alteration can also be corrected by melatonin supplementation. All these activities of melatonin appear to be mediated by its membrane receptors since the non-selective melatonin receptor antagonist Luzindole can blunt the effects of melatonin. Taken together, the mitochondria of porcine oocytes can synthesize melatonin and improve the quality of oocyte maturation. These results provide an insight from a novel aspect to study oocyte maturation under in vitro conditions.
Funder
National Natural Science Foundation of the People’s Republic of China
Reference54 articles.
1. Origin of cerebrospinal fluid melatonin and possible function in the integration of photoperiod;Tricoire;Reprod. Suppl.,2003 2. Generation of the melatonin endocrine message in mammals: A review of the complex regulation of melatonin synthesis by norepinephrine, peptides, and other pineal transmitters;Simonneaux;Pharmacol. Rev.,2003 3. Presence of melatonin in plasma and urine or pinealectomized rats;Ozaki;Endocrinology,1976 4. Tan, D.X., Reiter, R.J., Zimmerman, S., and Hardeland, R. (2023). Melatonin: Both a Messenger of Darkness and a Participant in the Cellular Actions of Non-Visible Solar Radiation of Near Infrared Light. Biology, 12. 5. Reiter, R.J., Tan, D.X., Rosales-Corral, S., Galano, A., Zhou, X.J., and Xu, B. (2018). Mitochondria: Central Organelles for Melatonin’s Antioxidant and Anti-Aging Actions. Molecules, 23.
|
|