DMT1维持铁稳态调节猪卵母细胞线粒体功能。

IF 4.5 2区 生物学 Q2 CELL BIOLOGY Journal of Cellular Physiology Pub Date : 2024-12-05 DOI:10.1002/jcp.31494
Jin-Xin Zhang, Meng-Fan Lan, Jian-Zhou Shang, Xin-Le Lai, Li-Shu Li, Tong-Tong Duan, Ru-Hai Xu, Kun-Lin Chen, Xing Duan
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引用次数: 0

摘要

铁在许多细胞功能中起着至关重要的作用,包括能量产生、代谢和细胞增殖。然而,铁在维持卵母细胞质量中的作用尚不清楚。在本研究中,DMT1被确定为猪卵母细胞成熟过程中的关键铁转运蛋白。结果表明,猪卵母细胞缺铁导致减数分裂过程异常,并伴有DMT1基因表达升高。抑制DMT1导致卵丘细胞扩增和卵母细胞成熟失败,以及肌动蛋白和微管组装异常。此外,DMT1功能的丧失导致线粒体功能和动力学的破坏,导致氧化应激和Ca2+失衡。此外,DMT1功能的缺失激活了猪卵母细胞中PINK1/帕金森依赖性的有丝分裂。这些发现表明,DMT1通过保护铁缺乏诱导的线粒体功能障碍和自噬,在保护卵母细胞质量方面发挥了至关重要的作用。该研究提供了令人信服的证据,证明DMT1和铁稳态对维持猪卵母细胞成熟能力至关重要。此外,这些结果暗示了DMT1作为治疗铁缺乏相关女性生殖疾病的新治疗靶点的潜力。
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DMT1 Maintains Iron Homeostasis to Regulate Mitochondrial Function in Porcine Oocytes

Iron plays critical roles in many cellular functions, including energy production, metabolism, and cell proliferation. However, the role of iron in maintaining oocyte quality remains unclear. In this study, DMT1 was identified as a key iron transporter during porcine oocyte maturation. The results demonstrated that iron deficiency in porcine oocyte led to aberrant meiotic progression, accompanied by increased gene expression of DMT1. Inhibition of DMT1 resulted in the failure of cumulus cell expansion and oocyte maturation, along by the abnormal actin and microtubule assembly. Furthermore, loss of DMT1 function caused disruption in mitochondrial function and dynamics, resulting in oxidative stress and Ca2+ dyshomeostasis. Additionally, the absence of DMT1 function activated PINK1/Parkin-dependent mitophagy in porcine oocyte. These findings suggested that DMT1 played a crucial role in safeguarding oocyte quality by protecting against iron-deficiency-induced mitochondrial dysfunction and autophagy. This study provided compelling evidence that DMT1 and iron homeostasis were crucial for maintaining the capacity of porcine oocyte maturation. Moreover, the results hinted at the potential of DMT1 as a novel therapeutic target for treating iron deficiency-related female reproductive disorders.

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来源期刊
CiteScore
14.70
自引率
0.00%
发文量
256
审稿时长
1 months
期刊介绍: The Journal of Cellular Physiology publishes reports of high biological significance in areas of eukaryotic cell biology and physiology, focusing on those articles that adopt a molecular mechanistic approach to investigate cell structure and function. There is appreciation for the application of cellular, biochemical, molecular and in vivo genetic approaches, as well as the power of genomics, proteomics, bioinformatics and systems biology. In particular, the Journal encourages submission of high-interest papers investigating the genetic and epigenetic regulation of proliferation and phenotype as well as cell fate and lineage commitment by growth factors, cytokines and their cognate receptors and signal transduction pathways that influence the expression, integration and activities of these physiological mediators. Similarly, the Journal encourages submission of manuscripts exploring the regulation of growth and differentiation by cell adhesion molecules in addition to the interplay between these processes and those induced by growth factors and cytokines. Studies on the genes and processes that regulate cell cycle progression and phase transition in eukaryotic cells, and the mechanisms that determine whether cells enter quiescence, proliferate or undergo apoptosis are also welcomed. Submission of papers that address contributions of the extracellular matrix to cellular phenotypes and physiological control as well as regulatory mechanisms governing fertilization, embryogenesis, gametogenesis, cell fate, lineage commitment, differentiation, development and dynamic parameters of cell motility are encouraged. Finally, the investigation of stem cells and changes that differentiate cancer cells from normal cells including studies on the properties and functions of oncogenes and tumor suppressor genes will remain as one of the major interests of the Journal.
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