4.5 Review

The Role of Mitochondrial Dynamic Dysfunction in Age-Associated Type 2 Diabetes

期刊

WORLD JOURNAL OF MENS HEALTH
卷 40, 期 3, 页码 399-411

出版社

KOREAN SOC SEXUAL MEDICINE & ANDROLOGY
DOI: 10.5534/wjmh.210146

关键词

Aging; Men; Mitochondria; Type 2 diabetes

资金

  1. Menarini S.A
  2. European Regional Development Fund (ERDF)
  3. FISABIO [UGP15-220]
  4. Ministry of Education of the Valencian Regional Government
  5. Carlos III Health Institute [CIBERehd CB06/04/0071, PI19/0437, FI17/00126, FI17/00144, CP19/00077, CD19/00180, PI19/00838, CPII16/00037]
  6. Ministry of Innovation, University, Science and Digital Society of the Valencian Regional Government [ACIF/2020/370, GRISOLIAP/2019/091, APOSTD/2020/145]
  7. Ministry of Health of the Valencian Regional Government

向作者/读者索取更多资源

This review explores the molecular mechanisms of mitochondrial fusion and fission processes, their role in type 2 diabetes, and the therapeutic potential of targeting mitochondrial dynamics in this complex metabolic disorder.
Mitochondrial dynamics, such as fusion and fission, play a critical role in maintaining cellular metabolic homeostasis. The molecular mechanisms underlying these processes include fusion proteins (Mitofusin 1 [MFN1], Mitofusin 2 [MFN2], and optic atrophy 1 [OPA1]) and fission mediators (mitochondrial fission 1 [FIS1] and dynamin-related protein 1 [DRP1]), which interact with each other to ensure mitochondrial quality control. Interestingly, defects in these proteins can lead to the loss of mitochondrial DNA (mtDNA) integrity, impairment of mitochondrial function, a severe alteration of mitochondrial morphology, and eventually cell death. Emerging evidence has revealed a causal relationship between dysregulation of mitochondria dynamics and age-associated type 2 diabetes, a metabolic disease whose rates have reached an alarming epidemic-like level with the majority of cases (59%) recorded in men aged 65 and over. In this sense, fragmentation of mitochondrial networks is often associated with defects in cellular energy production and increased apoptosis, leading, in turn, to excessive reactive oxygen species release, mitochondrial dysfunction, and metabolic alterations, which can ultimately contribute to beta-cell dysfunction and insulin resistance. The present review discusses the processes of mitochondrial fusion and fission and their dysfunction in type 2 diabetes, with special attention given to the therapeutic potential of targeting mitochondrial dynamics in this complex metabolic disorder.

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