Yucheng Luo, Yuchen Zhang, Yuang Song, Xiangtian Li, Jiancong Liang, Haonan Xing, Yujin Lai, Yinuo Chen, Minxi Zeng, Cheng Zhou, Huishan Chen, Wenqi Wang, Ye Li, Bin Li, Feng Lu, Ziqing Dong
Aging disrupts the coupling between redox homeostasis and energy metabolism in brown adipose tissue (BAT), but the molecular nodes linking BAT redox-metabolic deterioration to systemic metabolic dysfunction remain unclear. Using aging mouse BAT time-course transcriptomics, we prioritized Acss1, encoding mitochondrial acetyl-CoA synthetase 1 (ACSS1), as a progressively age-decreased mitochondrial metabolic candidate. Acss1 expression correlated positively with BAT metabolic programs and negatively with oxidative stress and senescence-associated programs. Age-series single-nucleus transcriptomics further localized Acss1 mainly to adipocytes and classified BAT adipocyte nuclei into Acss1-high and Acss1-low transcriptional states. Acss1-high adipocytes retained thermogenic, oxidative phosphorylation and fatty acid oxidation programs, whereas Acss1-low adipocytes were enriched for stress- and senescence-related programs, with this divergence increasing with age. To test Acss1 function, we locally injected 18-month-old mouse BAT with an adeno-associated virus expressing Acss1 under the adipocyte-specific adiponectin (Adipoq) promoter. BAT-local Acss1 restoration attenuated redox imbalance, restored thermogenic programs and reduced senescence-associated injury. This local intervention also improved glucose and lipid metabolism, energy substrate utilization, motor performance and plasma antioxidant capacity, and was associated with improved histological and stress-related features in distal metabolic tissues. Matched BAT transcriptomic and plasma metabolomic profiling showed that Acss1 restoration shifted BAT redox-metabolic programs and was associated with spermidine-related circulating metabolic remodeling. In human BAT, ACSS1 expression correlated positively with oxidative phosphorylation and negatively with reactive oxygen species metabolic processes. These findings support brown adipocyte Acss1 as a regulator of redox-metabolic homeostasis in aged BAT, whose restoration is associated with improved local BAT state, improved systemic metabolic phenotypes and spermidine-related circulating metabolic remodeling.