Molecular mechanisms for age-associated mitochondrial deficiency in skeletal muscle
Akira Wagatsuma1, Kunihiro Sakuma
1Graduate School of Information Science and Technology, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.
Abstract:
The abundance, morphology, and functional properties of mitochondria decay in skeletal muscle during the process of ageing. Although the precise mechanisms remain to be elucidated, these mechanisms include decreased mitochondrial DNA (mtDNA) repair and mitochondrial biogenesis. Mitochondria possess their own protection system to repair mtDNA damage, which leads to defects of mtDNA-encoded gene expression and respiratory chain complex enzymes. However, mtDNA mutations have shown to be accumulated with age in skeletal muscle. When damaged mitochondria are eliminated by autophagy, mitochondrial biogenesis plays an important role in sustaining energy production and physiological homeostasis. The capacity for mitochondrial biogenesis has shown to decrease with age in skeletal muscle, contributing to progressive mitochondrial deficiency. Understanding how these endogenous systems adapt to altered physiological conditions during the process of ageing will provide a valuable insight into the underlying mechanisms that regulate cellular homeostasis. Here we will summarize the current knowledge about the molecular mechanisms responsible for age-associated mitochondrial deficiency in skeletal muscle. In particular, recent findings on the role of mtDNA repair and mitochondrial biogenesis in maintaining mitochondrial functionality in aged skeletal muscle will be highlighted.
Insights
Mitochondrial DNA repair and biogenesis decline with age in skeletal muscle, leading to reduced function. This age-associated mitochondrial deficiency impacts cellular homeostasis and energy production.
Area of Science:
- Cellular Biology
- Aging Research
- Mitochondrial Biology
Background:
- Mitochondria and their DNA (mtDNA) undergo significant decline in skeletal muscle with aging.
- This decay involves impaired mtDNA repair and reduced mitochondrial biogenesis, affecting cellular energy production and homeostasis.
Purpose of the Study:
- To summarize current knowledge on molecular mechanisms of age-associated mitochondrial deficiency in skeletal muscle.
- To highlight the roles of mtDNA repair and mitochondrial biogenesis in maintaining mitochondrial function in aged muscle.
Main Methods:
- Review of existing literature on mitochondrial aging in skeletal muscle.
- Focus on molecular mechanisms, including mtDNA repair and biogenesis pathways.
Main Results:
- Ageing impairs skeletal muscle mitochondrial DNA (mtDNA) repair and biogenesis.
- Accumulated mtDNA mutations and reduced mitochondrial efficiency contribute to deficiency.
- Decreased capacity for mitochondrial biogenesis exacerbates mitochondrial loss with age.
Conclusions:
- Understanding age-related changes in mtDNA repair and biogenesis is crucial for cellular homeostasis.
- These processes are key targets for interventions to combat mitochondrial dysfunction in aging skeletal muscle.
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