Salvianolic Acid A Inhibits Ferroptosis in Endothelial Cells and the Progression of Atherosclerosis by Augmenting the Mitochondrial Homeostasis Pathway Associated With Adiponectin Receptor 1.
Endothelial cell ferroptosis drives atherosclerosis. Salvianolic acid A (SAA), a polyphenol from Salvia species, was tested for its ability to inhibit ferroptosis and attenuate atherosclerosis, and its molecular mechanism was investigated. Screening of 124 natural compounds identified SAA as the most potent inhibitor of RSL3-induced ferroptosis in human umbilical vein endothelial cells (HUVECs). Cellular/mitochondrial lipid peroxidation, Fe2+ content, ROS, and mitochondrial function were assessed with or without SAA. AMPK signaling was probed using pharmacological inhibitors. The AdipoR1 axis was examined via siRNA knockdown. In vivo, ApoE-/- mice on a Western diet were treated with SAA to evaluate atherosclerosis and ferroptotic damage. SAA was identified as the most potent inhibitor of (1S,3R)-RSL3-induced ferroptosis in HUVECs among the screened natural compounds. SAA inhibited the ferroptotic response by restoring GPX4-dependent antioxidant capacity and preventing lipid peroxidation at both the cellular and mitochondrial levels. It improved mitochondrial function by restoring homeostasis of the mitochondrial quality control system, inhibiting mitochondrial reactive oxygen species generation, reducing ferrous iron accumulation, limiting mitochondrial lipid peroxidation, and preserving mitochondrial ultrastructure. The protective effects of SAA against ferroptosis were abolished by AMPK inhibitors, which disrupted cellular lipid metabolism and mitochondrial function regulation. The deleterious effects of AMPK inhibition were reversed by co-treatment with the mitochondrial reactive oxygen species inhibitor MitoTempol. Knockdown of AdipoR1 and experiments with the AMPK agonist AICAR confirmed that salvianolic acid A restores mitochondrial homeostasis and inhibits ferroptosis specifically through activation of the AdipoR1-AMPK signaling pathway. In vivo, treatment with SAA significantly ameliorated Western diet-induced atherosclerosis and ferroptosis-like cell damage in ApoE-/- mice. SAA has strong therapeutic potential against endothelial ferroptosis and atherosclerosis by restoring mitochondrial homeostasis through AdipoR1-AMPK pathway activation. These findings support further clinical investigation of SAA for treating atherosclerosis and other endothelium-related cardiovascular diseases.