Tingting Tan, Rujin Liang, Jinxiu Lyu, Jinyu Zhou, Yuwei Hu, Jiatong Yao, Qingliu Li, Qiujie Li, Chu Li, Dongxu Jia, Zhen Tian, Hua Zhu, Pengzhou Hang, Jing Zhao
Abnormal cardiac lipid metabolism is a major contributor to cardiovascular disease (CVD). The nuclear receptor Rev-erb-α is recognized as a regulator of lipid metabolism; however, its role in cardiomyocyte lipotoxicity remains undefined. This study aims to investigate the functional role of Rev-erb-α in palmitic acid (PA)-induced lipid accumulation and peroxidation in cardiomyocytes. H9c2 cardiomyocytes are treated with the canonical Rev-erb agonists SR9009 and GSK4112 in combination with PA. Intracellular lipid droplet accumulation is quantified using Oil Red O, Nile red, and BODIPY 493/503 staining. Cytoplasmic and mitochondrial reactive oxygen species (ROS) levels are measured using 2',7'-DCFDA, dihydroethidium, and Mito-SOX probes, respectively, while DNA damage is assessed by quantifying the markers 53BP1 and γ-H2AX. Additionally, siRNA-mediated knockdown and adenovirus-mediated overexpression of Rev-erb-α are employed to validate its role in H9c2 and/or neonatal rat ventricular cardiomyocytes. PA treatment downregulates Rev-erb-α protein expression. Surprisingly, both SR9009 and GSK4112 exacerbate lipid droplet production and ROS production while activating the nuclear factor erythroid 2-related factor 2 (Nrf2)/heme oxygenase-1 (HO-1) antioxidant pathway, independent of Rev-erb-α. However, direct adenovirus-mediated overexpression of Rev-erb-α significantly attenuates lipid droplet formation and mitochondrial ROS, which is reversed by the Nrf2 inhibitor brusatol. Mechanistically, Rev-erb-α functions as a transcriptional activator of Nrf2. Our results demonstrate a direct protective role for Rev-erb-α against lipotoxic stress and crucially reveal that its commonly used agonists have confounding, off-target pro-oxidant effects. These findings have critical implications for developing Rev-erb-α-targeted therapies for CVDs.