Jianqing Zhao, Chuan Liang, Pingping Chen, Meixin Sun, Zhen F Fu, Ling Zhao, Ming Zhou
Rabies virus (RABV) and other lyssaviruses exploit lipid droplet (LD) formation to evade host defenses, but the underlying mechanisms remain unclear. Here, we demonstrate that lyssavirus N proteins induce LD biogenesis by upregulating glycerol-3-phosphate acyltransferase 4 (GPAT4) expression and promoting its translocation to the LD surface, a conserved mechanism across the lyssavirus genus. Mechanistically, GPAT4-mediated LD formation sequesters free fatty acids, leading to acyl-protein thioesterase 1 (APT1)-dependent depalmitoylation of NADH-cytochrome B5 reductase 1 (CYB5R1) at Cys208 and Cys278. This post-translational modification triggers autophagic degradation of CYB5R1, thereby impairing its ability to induce ferroptosis via two complementary pathways: nuclear receptor co-activator 4 (NCOA4)-mediated ferritinophagy and H2O2 production. Conversely, diacylglycerol O-acyltransferase (DGAT) inhibitors or GPAT4 knockdown restores CYB5R1 palmitoylation and stability, reinstates ferroptosis, and suppresses RABV infection. Our findings reveal a novel "lyssavirus N-GPAT4-LD-CYB5R1 palmitoylation" axis that modulates ferroptosis susceptibility, highlighting protein palmitoylation as a critical regulatory node in virus-host interactions and identifying GPAT4 as a potential antiviral target.