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Reduced cytosolic protein synthesis suppresses mitochondrial degeneration
Xiaowen Wang1, Xiaoming Zuo, Blanka Kucejova
1Department of Biochemistry and Molecular Biology, SUNY Upstate Medical University, Syracuse, New York 13210, USA.
Abstract:
Mitochondrial function degenerates with ageing and in ageing-related neuromuscular degenerative diseases, causing physiological decline of the cell. Factors that can delay the degenerative process are actively sought after. Here, we show that reduced cytosolic protein synthesis is a robust cellular strategy that suppresses ageing-related mitochondrial degeneration. We modelled autosomal dominant progressive external ophthalmoplegia (adPEO), an adult- or later-onset degenerative disease, by introducing the A128P mutation into the adenine nucleotide translocase Aac2p of Saccharomyces cerevisiae. The aac2(A128P) allele dominantly induces ageing-dependent mitochondrial degeneration and phenotypically tractable degenerative cell death, independently of its ADP/ATP exchange activity. Mitochondrial degeneration was suppressed by lifespan-extending nutritional interventions and by eight longevity mutations, which are all known to reduce cytosolic protein synthesis. These longevity interventions also independently suppressed ageing-related mitochondrial degeneration in the pro-ageing prohibitin mutants. The aac2(A128P) mutant has reduced mitochondrial membrane potential (delta psi(m)) and is synthetically lethal to low delta psi(m) conditions, including the loss of prohibitin. Mitochondrial degeneration was accelerated by defects in protein turnover on the inner membrane and was suppressed by cycloheximide, a specific inhibitor of cytosolic ribosomes. Reduced cytosolic protein synthesis suppressed membrane depolarization and defects in mitochondrial gene expression in aac(A128P) cells. Our finding thus establishes a link between protein homeostasis (proteostasis), cellular bioenergetics and mitochondrial maintenance during ageing.
Insights
Reduced cytosolic protein synthesis protects against age-related mitochondrial decline. This cellular strategy, observed in yeast models of progressive external ophthalmoplegia, offers new avenues for combating aging and neurodegenerative diseases.
Area of Science:
- Cellular Biology
- Aging Research
- Mitochondrial Biology
Background:
- Mitochondrial function declines with age and in related diseases, impacting cellular health.
- Identifying interventions to delay mitochondrial degeneration is crucial for aging and disease research.
Purpose of the Study:
- To investigate the role of cytosolic protein synthesis in suppressing age-related mitochondrial degeneration.
- To model autosomal dominant progressive external ophthalmoplegia (adPEO) and analyze its underlying mechanisms.
Main Methods:
- Utilized Saccharomyces cerevisiae with an A128P mutation in adenine nucleotide translocase Aac2p to model adPEO.
- Assessed mitochondrial degeneration suppression via nutritional interventions and longevity mutations.
- Examined the impact of cytosolic protein synthesis inhibition (cycloheximide) on mitochondrial function.
Main Results:
- Reduced cytosolic protein synthesis robustly suppressed age-related mitochondrial degeneration in yeast models.
- Lifespan-extending interventions and longevity mutations, known to reduce protein synthesis, mitigated mitochondrial decline.
- Inhibition of cytosolic ribosomes suppressed mitochondrial depolarization and gene expression defects.
Conclusions:
- Reduced cytosolic protein synthesis is a key cellular strategy for maintaining mitochondrial health during aging.
- This study links protein homeostasis, bioenergetics, and mitochondrial maintenance in the context of aging.
- Findings suggest potential therapeutic targets for age-related mitochondrial dysfunction and neurodegenerative diseases.
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