Fengping Zhang, Li Feng, Ting Xiang, Jinxi Li, Qimei Wu, Fan Guo, Lingzhi Li, Zhouke Tan, Ping Zhou, Lin Lin, Liang Ma, Ping Fu
Kidney tubular epithelial cells exceptionally exhibit high energy demands and preferentially metabolize long-chain fatty acids via fatty acid oxidation (FAO), where the impairment of FAO represents a hallmark of acute kidney injury (AKI). However, the role of medium-chain fatty acid metabolism in kidney injury remains unexplored. Here, we identify that tubular acyl-CoA synthetase medium-chain family member 3 (ACSM3), the key enzyme responsible for medium-chain fatty acid activation, is significantly down-regulated in damaged kidneys of distinct AKI male mouse models and acute tubular necrosis patients. Unexpectedly, tubule-specific ACSM3 deletion improves renal dysfunction, pathological damage, and metabolic disturbances in AKI male mice. Mechanistically, tubular ACSM3 deficiency preserves free fatty acid pool and reduces medium-chain fatty acids utilization, where these unused medium-chain fatty acids as ligands can activate peroxisome proliferator-activated receptor alpha (PPARα) and further upregulate PPARα-associated fatty acid metabolic genes to repair injured kidneys. Notably, dietary supplementation of medium-chain fatty acids confers protective effects against AKI in male mice. Our findings highlight tubular ACSM3 as a potential therapeutic target to control renal fatty acid metabolism and provide preclinical evidence that medium-chain fatty acid supplementation safeguards against AKI.