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Biology subjects

Atlan, T.

Publications and source records attributed to Atlan, T..

2 recordsLinked to original sources

Exploring life-long tissue homeostasis through lineage tracing and cell transplantation

The antagonistic pleiotropy theory of aging predicts functional trade-offs between early-life and late-life fitness. However, empirical evidence for these trade-offs in vertebrates remains scarce, particularly in the context of ecologically relevant life histories. Here, we identify vestigial-like 3 (vgll3), a transcription cofactor previously linked with age at maturity in humans and Atlantic salmon through GWAS studies, as an antagonistically pleiotropic gene in turquoise killifish (Nothobranchius furzeri). By disrupting two conserved vgll3 isoforms, we show that reduction of vgll3, in an isoform- or dose-dependent manner, accelerated male growth and reproductive development. This indicates that vgll3 regulates sexual maturity. However, early-life benefits come at a late-life cost, as older mutant males with a disrupted long isoform develop melanoma-like tumors, validated via transplantation into immunodeficient rag2 models, and exhibit increased age-related mortality rate. These findings highlight vgll3 as a key regulator of vertebrate life-history trade-offs, balancing early-life fitness with late-life disease risks.

genetics↗

Sex-specific regulation of metabolic health and vertebrate lifespan by AMP biosynthesis

Energy homeostasis is disrupted with age, which then fuels multiple age-related pathologies. The AMP-activated protein kinase (AMPK) is the primary sensor of cellular energy in eukaryotes. However, the genetic regulation of vertebrate aging by AMPK remains poorly understood. Here, we manipulate energy levels in the turquoise killifish by mutating APRT, a key enzyme in AMP biosynthesis. These manipulations produced a male-specific lifespan extension and restored metabolic plasticity. Exploring the observed sex differences using an integrated omics approach implicated the mitochondria as an important player. Mechanistically, APRT regulated mitochondrial functions and AMPK activity, mimicking energy starvation in heterozygous cells. A fasting-like state was also detected, particularly in heterozygous males, which leads to resistance to high-fat diet. Finally, life-long intermittent fasting eliminated the male-specific longevity benefits mediated by the APRT mutation. These observations identify the AMP/AMPK axis as a sex-specific regulator of vertebrate longevity and metabolic health.

genetics↗