Haoguo Wang, Yiying Wang, Siyuan Huang, Jiahui Wang, Erxi Xu, Yufei Pang, Jiqing Shen, Changtai Luo, Jiyong Tan
This study investigates how environmental arsenic exposure induces cardiotoxicity via myocardial senescence by in vivo/in vitro models and evaluates the protective effects of quercetin. In vivo, 3-week-old male C57BL/6 mice were exposed to sodium arsenite (NaAsO2) in drinking water at 10 or 20 mg/L for 6 weeks, with 22-month-old mice serving as a natural aging reference. In vitro, H9C2 rat cardiomyoblasts were treated with 6 μM NaAsO2 for 24 h to establish a sub-lethal senescence model, followed by PBS or 60 μM quercetin for a further 24 h. Arsenic-exposed mice exhibited dose-dependent aging-like behavioral impairment, left ventricular systolic and diastolic dysfunction, and myocardial fibrosis, driven by P53/P21 upregulation. Network toxicology and in vitro assays revealed that arsenic directly binds a p53 cysteine residue, initiating senescence through the p53/p21 axis and altering pathways including PI3K-Akt and HIF-1. At 6 μM, NaAsO2 increased the proportion of SA-β-gal-positive H9C2 cells and upregulated P53, P21, and IL-6 at both mRNA and protein levels. Network pharmacology identified TP53, AKT1, and EGFR as quercetin's core targets, with molecular docking and 100 ns dynamics simulations confirming stable, spontaneous binding. Co-treatment with 60 μM quercetin for 24 h reversed arsenic-induced senescence and downregulated these overactivated targets. Ultimately, this study provides evidence that arsenic drives myocardial senescence and associated with upregulation of the p53/p21 axis, highlighting quercetin as a promising multi-target botanical countermeasure for cardiovascular protection in arsenic-exposed populations.