Neuronal mTORC1 inhibition promotes longevity without suppressing anabolic growth and reproduction in C. elegans
Smith, H. J.; Lanjuin, A.; Sharma, A.; Prabhakar, A.; Tabakovic, E.; Sehgal, R.; Mair, W. B.
Show abstract
One of the most robust and reproducible methods to prolong lifespan in a variety of organisms is inhibition of the mTORC1 (mechanistic target of rapamycin complex 1) pathway. mTORC1 is a metabolic sensor that promotes anabolic growth when nutrients are abundant. Inhibition of mTORC1 extends lifespan, but also frequently has other effects such as stunted growth, slowed development, reduced fertility, and disrupted metabolism. It has long been assumed that suppression of anabolism and resulting phenotypes such as impaired growth and reproduction may be causal to mTORC1 longevity, but this hypothesis has not been directly tested. RAGA-1 is an upstream activator of TORC1. Previous work from our lab using a C. elegans model of mTORC1 longevity, the long-lived raga-1 null mutant, found that the presence of raga-1 only in the neurons suppresses longevity of the null mutant. Here, we use the auxin-inducible degradation (AID) system to test whether neuronal mTORC1 inhibition is sufficient for longevity, and whether any changes in lifespan are also linked to stunted growth or fertility. We find that life-long AID of RAGA-1 either in all somatic tissue or only in the neurons of C. elegans is sufficient to extend lifespan. We also find that AID of RAGA-1 or LET-363/mTOR beginning at day 1 of adulthood extends lifespan to a similar extent. Unlike somatic degradation of RAGA-1, neuronal degradation of RAGA-1 doesnt impair growth, slow development, or decrease the reproductive capacity of the worms. Lastly, while AID of LET-363/mTOR in all somatic cells shortens lifespan, neuronal AID of LET-363/mTOR slows aging. This work demonstrates that targeting mTORC1 specifically in the neurons uncouples longevity from growth and reproductive impairments, challenging previously held ideas about the mechanisms of mTORC1 longevity and elucidating the promise of tissue-specific aging therapeutics.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
- Antioxidants green tea extract and nordihydroguaiaretic acid confer species and strain specific lifespan and health effects in Caenorhabditis nematodes 95%
- Short-term fasting of a single amino acid extends lifespan. 95%
- Preservation of Mitochondrial Membrane Potential is Necessary for Lifespan Extension from Dietary Restriction 95%
Similar papers in this journal
- Combining Stem Cell Rejuvenation and Senescence Targeting to Synergistically Extend Lifespan 96%
- The coupling between healthspan and lifespan in Caenorhabditis depends on complex interactions between compound intervention and genetic background 95%
- Development of a novel transcriptomic measure of aging: Transcriptomic Mortality-risk Age (TraMA) 93%
Similar papers in this journal
- Neuronal IL-17 controls C. elegans developmental diapause through CEP-1/p53 94%
- A dicer-related helicase opposes the age-related pathology from SKN-1 activation in ASI neurons 94%
- Swim exercise in C. elegans extends neuromuscular and intestinal healthspan, enhances learning ability, and protects against neurodegeneration 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.