Extending healthy life span--from yeast to humans
- PMID: 20395504
- PMCID: PMC3607354
- DOI: 10.1126/science.1172539
Extending healthy life span--from yeast to humans
Abstract
When the food intake of organisms such as yeast and rodents is reduced (dietary restriction), they live longer than organisms fed a normal diet. A similar effect is seen when the activity of nutrient-sensing pathways is reduced by mutations or chemical inhibitors. In rodents, both dietary restriction and decreased nutrient-sensing pathway activity can lower the incidence of age-related loss of function and disease, including tumors and neurodegeneration. Dietary restriction also increases life span and protects against diabetes, cancer, and cardiovascular disease in rhesus monkeys, and in humans it causes changes that protect against these age-related pathologies. Tumors and diabetes are also uncommon in humans with mutations in the growth hormone receptor, and natural genetic variants in nutrient-sensing pathways are associated with increased human life span. Dietary restriction and reduced activity of nutrient-sensing pathways may thus slow aging by similar mechanisms, which have been conserved during evolution. We discuss these findings and their potential application to prevention of age-related disease and promotion of healthy aging in humans, and the challenge of possible negative side effects.
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Comment in
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Dietary restriction: standing up for sirtuins.Science. 2010 Aug 27;329(5995):1012-3; author reply 1013-4. doi: 10.1126/science.329.5995.1012. Science. 2010. PMID: 20798296 Free PMC article. No abstract available.
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Dietary restriction: theory fails to satiate.Science. 2010 Aug 27;329(5995):1014-5; author reply 1015. doi: 10.1126/science.329.5995.1014. Science. 2010. PMID: 20798300 No abstract available.
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