On methionine restriction, suppression of mitochondrial dysfunction and aging
1Centre for Translational Medicine and Therapeutics, William Harvey Research Institute, Bart's and the London Queen Mary's School of Medicine and Dentistry, London, UK. alanandjill@lineone.net
Abstract:
Rats and mice, when subjected to methionine restriction (MetR), may live longer with beneficial changes to their mitochondria. Most explanations of these observations have centered on MetR somehow suppressing the effects of oxygen free radicals. It is suggested here that MetR's effects on protein metabolism should also be considered when attempting to explain its apparent anti-aging actions. Methionine is the initiating amino acid in mRNA translation. It is proposed that MetR decreases the protein biosynthesis rate due to methionine limitation, which correspondingly decreases generation of ribosomal-mediated error proteins, which then lowers the total abnormal protein load that cellular proteases and chaperone proteins (mitochondrial and cytoplasmic) must deal with. This will increase protease availability for elimination of proteins damaged postsynthetically and help delay abnormal protein accumulation, the major molecular symptom of aging. The slowed rate of protein synthesis may also alter protein folding, which could also alter polypeptide susceptibility to oxidative attack. MetR will also increase lysosomal proteolysis, including autophagy of dysfunctional mitochondria, and promote mitogenesis. MetR may decrease synthesis of S-adenosyl-methionine (SAM), which could decrease spontaneous O(6)-methylguanine formation in DNA. However decreased SAM may compromise repair of protein isoaspartate residues by protein-isoaspartate methyltransferase (PIMT). Changes in SAM levels may also affect gene silencing. All the above may help explain, at least in part, the beneficial effects of MetR.
Insights
Methionine restriction (MetR) may extend lifespan by slowing protein synthesis. This reduces abnormal protein buildup, enhancing cellular repair and mitochondrial function, key to aging processes.
Area of Science:
- Gerontology
- Molecular Biology
- Biochemistry
Background:
- Methionine restriction (MetR) is linked to extended lifespan and improved mitochondrial function in rodents.
- Current theories primarily attribute MetR's benefits to reduced oxidative stress.
Purpose of the Study:
- To explore the role of protein metabolism alterations in the anti-aging effects of MetR.
- To propose a novel mechanism involving reduced protein biosynthesis and improved proteostasis.
Main Methods:
- The study proposes a theoretical framework based on existing knowledge of methionine's role in translation.
- It analyzes the potential impact of methionine limitation on protein synthesis rates, error protein generation, and proteostasis.
Main Results:
- MetR may decrease protein synthesis, reducing ribosomal errors and the load on proteases and chaperones.
- This reduction enhances the clearance of damaged proteins, delaying age-related accumulation of abnormal proteins.
- Altered protein folding and increased lysosomal proteolysis, including mitophagy, are also suggested consequences.
Conclusions:
- MetR's anti-aging effects may be significantly mediated by its impact on protein metabolism and proteostasis.
- Reduced protein synthesis and improved cellular quality control offer a complementary explanation to antioxidant theories.
- Further research is needed to validate these proposed mechanisms in vivo.
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