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Biology subjects

Ballhysa, E.

Publications and source records attributed to Ballhysa, E..

2 recordsLinked to original sources

Hexokinase regulates Mondo-mediated longevity via the PPP and organellar dynamics

The transcriptional complex Mondo/Max-like, MML-1/MXL-2, acts as a convergent transcriptional regulatory output of multiple longevity pathways in Caenorhabditis elegans. These transcription factors coordinate nutrient sensing with carbohydrate and lipid metabolism across the evolutionary spectrum. While most studies have focused on the downstream outputs, little is known about the upstream inputs that regulate these transcription factors in a live organism. Here, we found that knockdown of various glucose metabolic enzymes decreases MML-1 localization in the nucleus and identified two hexokinase isozymes, hxk-1 and hxk-2, as the most vigorous regulators of MML-1 function. Upon hexokinase knockdown, MML-1 redistributes to mitochondria and lipid droplets (LD), and concomitantly, transcriptional targets are downregulated and germline longevity is abolished. Further, we found that hxk-1 regulates MML-1 through mitochondrial {beta}-oxidation, while hxk-2 regulates MML-1 by modulating the pentose phosphate pathway (PPP) and its coordinated association with lipid droplets. Similarly, inhibition of the PPP rescues mammalian MondoA nuclear translocation and transcriptional function upon starvation. These studies reveal how metabolic signals and organellar communication regulate a key convergent metabolic transcription factor to promote longevity.

cell 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↗