Yao Zhu, Xinru Liu, Yi Jiao, Yamin Qiu, Chang Liu
Although light broadly affects animal physiology, it remains unclear whether specific wavelengths directly reshape basal glucose and lipid metabolism in developing non-visual photoreceptive animals, and what specific molecular pathways mediate these effects. Here, using Caenorhabditis elegans (C. elegans), a model lacking visual organs but retaining conserved metabolic pathways, we systematically evaluated metabolic phenotypes following early-life (L1 to young adult) exposure to red, green, blue, and white light spectra. We identified that blue light (450-460 nm) most strongly drove triglyceride accumulation and free glucose elevation, with the L4-to-young adult transition being the most susceptible developmental window. Mechanistically, blue light induced oxidative stress and mitochondrial dysfunction; antioxidants limited glucose and lipid abnormalities and reshaped physiology, establishing a functional role for ROS. Integrated multi-omics revealed that elevated ROS upregulated the DEG/ENaC family channel acd-1 and promoted the accumulation of an oxidized lipid metabolite feature putatively annotated as 12(13)Ep-9-KODE (EKODE), which was functionally evaluated as a candidate downstream oxidized lipid mediator associated with ACD-1-dependent metabolic remodeling. Moreover, chemically induced oxidative stress similarly upregulated both acd-1 mRNA expression and the abundance of this EKODE-annotated oxidized-lipid feature. Notably, in mammalian cells, overexpression of the human homolog ASIC4 or exogenous EKODE supplementation recapitulated key metabolic features, including lipid-droplet accumulation, triglyceride elevation, and coordinated bioenergetic remodeling. Together, our findings support a ROS-dependent ACD-1-associated oxidized lipid regulatory module in C. elegans and reveal how early-life blue light and oxidative challenges influence metabolic homeostasis.