Peroxisomes orchestrate metabolic flexibility and longevity via an interorganelle cascade

过氧化物酶体 生物 细胞生物学 细胞器 线粒体 秀丽隐杆线虫 功能(生物学) 灵活性(工程) 脂滴 自噬 脂质代谢 调节器 粒体自噬 蛋白质稳态 生物能学 分解代谢 代谢途径 模式生物 代谢控制分析 焊剂(冶金) 代谢网络 有机体 生物发生
作者
Arpit Sharma,Aditi Prabhakar,Miriam Valera‐Alberni,Jamie D. Kraft,Abigail E. Ellis,Ryan D. Sheldon,Meeta Mistry,Pallas Yao,Yanshan Liang,Sheng Hui,William B. Mair
出处
期刊:Nature Aging [Nature Portfolio]
卷期号:6 (5): 987-1006
标识
DOI:10.1038/s43587-026-01122-1
摘要

Aging impairs coordinated organelle dynamics essential for lipid metabolism, causing a decline in intracellular metabolic flexibility. However, the drivers of organelle collapse and their temporal order remain unclear. Here we identify peroxisomal function as a critical regulator of metabolic flexibility during youth and low-energy states. Using Caenorhabditis elegans, we show that fasting robustly induces peroxisomal function in youth, whereas this response is blunted during aging. Loss of peroxisomal import via PRX-5 declines over age, causing pathological lipid droplet expansion, dysfunctional mitochondrial bioenergetics and metabolic inflexibility. Although targeted PRX-5 degradation recapitulates metabolic aging, its overexpression preserves lipid dynamics and mitochondrial integrity. Notably, dietary restriction maintains peroxisomal pathways and organelle coordination into late life and peroxisomal function causally underpins dietary restriction-mediated longevity. Our findings highlight peroxisomes as central upstream regulators of a dynamic interorganelle cascade driving metabolic plasticity and highlight peroxisomal maintenance as a key determinant of metabolic flexibility during aging. Sharma and colleagues show that, in Caenorhabditis elegans, age-associated decline in peroxisomal function causally impairs lipid mobilization, resulting in lipid droplet accumulation, metabolic inflexibility and secondary mitochondrial dysfunction. Restoring peroxisomal activity reinstates metabolic resilience during aging.
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