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Branched-chain amino acid catabolism is a conserved regulator of physiological ageing.

Nature communications2015Mansfeld J, Urban N, Priebe S, et al.
Study designOther primary literature
SubjectAnimal

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Study design
Other primary literature
Subject
Animal
Publication year
2015
Source
doi.org
Abstract display
Shown here
Publication status
Active
Status checked
17 Aug 2026
Collected
3 Aug 2026
Freshness
Current
Review stage
Automated
Record status
Published

Abstract

Ageing has been defined as a global decline in physiological function depending on both environmental and genetic factors. Here we identify gene transcripts that are similarly regulated during physiological ageing in nematodes, zebrafish and mice. We observe the strongest extension of lifespan when impairing expression of the branched-chain amino acid transferase-1 (bcat-1) gene in C. elegans, which leads to excessive levels of branched-chain amino acids (BCAAs). We further show that BCAAs reduce a LET-363/mTOR-dependent neuro-endocrine signal, which we identify as DAF-7/TGFβ, and that impacts lifespan depending on its related receptors, DAF-1 and DAF-4, as well as ultimately on DAF-16/FoxO and HSF-1 in a cell-non-autonomous manner. The transcription factor HLH-15 controls and epistatically synergizes with BCAT-1 to modulate physiological ageing. Lastly and consistent with previous findings in rodents, nutritional supplementation of BCAAs extends nematodal lifespan. Taken together, BCAAs act as periphery-derived metabokines that induce a central neuro-endocrine response, culminating in extended healthspan.

MeSH

AgingAmino Acids, Branched-ChainAnimalsCaenorhabditis elegansCaenorhabditis elegans ProteinsFemaleLongevityMaleMiceMice, Inbred C57BLTransaminasesZebrafish

DOI 10.1038/ncomms10043

PMID 26620638

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