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Biology subjects

Hochhard, N.

Publications and source records attributed to Hochhard, N..

2 recordsLinked to original sources

Loss of killifish cGAS/STING function attenuates cellular senescence and age-related signatures but does not extend organismal life span

The cGAS/STING pathway is a central innate immune signaling pathway whose chronic activation has been implicated in numerous age-related pathologies, yet its impact on life span itself is unknown. Here we engineered knockouts of this pathway in the killifish Nothobranchius furzeri, and assessed physiology and aging. In vitro, loss of killifish cGAS or STING mitigated DNA damage-induced senescence in cultured fibroblasts. In vivo, cGAS knockout unexpectedly led to low-grade inflammation. It also attenuated changes in gene expression in response to DNA damage in young animals, and age-related changes in the old, suggesting dampening of senescence and aging. Necroscopy indicated that tissue pathology appeared milder overall in both mutants, though some tissues showed enhanced sterile macrophage infiltration. Despite an attenuated aging signature, however, longevity was not significantly different from wild type. Our findings reveal a potential tradeoff, where inhibiting the cGAS/STING pathway alleviates age-related signatures, but increases sterile inflammation, offsetting beneficial effects on lifespan.

developmental biology↗

Refeeding-associated AMPKγ1 complex activity is a hallmark of health and longevity.

Late-life-initiated dietary interventions negligibly extend longevity or reduce frailty, yet the reason remains unknown. We investigated the age-related changes associated with the fasting response in adipose tissue of the short-lived killifish N. furzeri. Transcriptomic analysis revealed the presence of a fasting-like transcriptional program (FLTP) in old animals that is irrespective of their nutritional status and characterized by widespread suppression of anabolic processes. FLTP is associated with reduced expression of the AMPK {gamma}1 regulatory subunit. Accordingly, refeeding positively regulates {gamma}1 expression in young but not in old animals. Fish having sustained AMPK{gamma}1 activation had no sign of FLTP in old age and exhibited metabolic health and longevity. In humans, we found that {gamma}1 expression declines with age and is associated with multimorbidity and multidimensional frailty risk. Our study highlights the importance of the refeeding arm in promoting health and longevity and identifies the AMPK{gamma}1 complex as a potential target to prevent age-related diseases in humans.

physiology↗