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Rapamycin Exerts Its Geroprotective Effects in the Ageing Human Immune System by Enhancing Resilience Against DNA
Loren Kell1,2,3, Eleanor J Jones4,5, Nima Gharahdaghi4,6
1Department of Biochemistry, University of Oxford, Oxford, UK.
Abstract:
mTOR inhibitors such as rapamycin are among the most robust life-extending interventions known, yet the mechanisms underlying their geroprotective effects in humans remain incompletely understood. At non-immunosuppressive doses, these drugs are senomorphic, that is, they mitigate cellular senescence, but whether they protect genome stability itself has been unclear. Given that DNA damage is a major driver of immune ageing, and immune decline accelerates whole-organism ageing, we tested whether mTOR inhibition enhances genome stability. In human T cells exposed to acute genotoxic stress, we found that rapamycin and other mTOR inhibitors suppressed senescence not by slowing protein synthesis, halting cell division, or stimulating autophagy, but by directly reducing DNA lesional burden and improving cell survival. Ex vivo analysis of aged immune cells from healthy donors revealed a stark enrichment of markers for DNA damage, senescence, and mTORC hyperactivation, suggesting that human immune ageing may be amenable to intervention by low-dose mTOR inhibition. To test this in vivo, we conducted a placebo-controlled experimental medicine study in older adults administered with low-dose rapamycin. p21, a marker of DNA damage-induced senescence, was significantly reduced in immune cells from the rapamycin compared to placebo group. These findings reveal a previously unrecognised role for mTOR inhibition: direct genoprotection. This mechanism may help explain rapamycin's exceptional geroprotective profile and opens new avenues for its use in contexts where genome instability drives pathology, ranging from healthy ageing, clinical radiation exposure and even the hazards of cosmic radiation in space travel.
Insights
mTOR inhibition, including rapamycin, directly protects genome stability by reducing DNA damage and improving cell survival, offering new avenues for healthy aging and mitigating radiation exposure.
Area of Science:
- Gerontology
- Molecular Biology
- Immunology
Background:
- mTOR inhibitors like rapamycin show life-extending properties, but their impact on genome stability in humans is unclear.
- Cellular senescence, driven by DNA damage, contributes to immune aging and overall organismal aging.
- Understanding how mTOR inhibition affects genome stability is crucial for its application in aging and age-related diseases.
Purpose of the Study:
- To investigate whether mTOR inhibition enhances genome stability.
- To determine the mechanism by which mTOR inhibitors mitigate cellular senescence.
- To explore the potential of low-dose mTOR inhibition for intervening in human immune aging.
Main Methods:
- Ex vivo studies using human T cells exposed to genotoxic stress.
- Analysis of aged immune cells from healthy donors for DNA damage and senescence markers.
- A placebo-controlled experimental medicine study administering low-dose rapamycin to older adults.
Main Results:
- mTOR inhibitors reduced DNA damage and improved survival in stressed human T cells, independent of protein synthesis or autophagy.
- Aged immune cells showed increased markers of DNA damage, senescence, and mTORC hyperactivation.
- Low-dose rapamycin administration in older adults significantly reduced p21, a marker of DNA damage-induced senescence, in immune cells.
Conclusions:
- mTOR inhibition provides direct genoprotection, a novel mechanism contributing to its anti-aging effects.
- This genoprotective role of mTOR inhibition may explain its efficacy in promoting longevity.
- Low-dose mTOR inhibitors represent a potential intervention for genome instability-driven pathologies, including aging and radiation exposure concerns.
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