American ginseng -derived extracellular-like nanoparticles (AGELNs) mitigate doxorubicin-induced cardiotoxicity by inhibiting GPX4-mediated ferroptosis
Teng Liu, Huan Wang, Ruifen Wang, Yumeng Jin, Yihan Wang, Shijie Wang, Xinrui Li, Yaru Wang, Zeyang Zhang, Ping Su, Songsong Wang, Huangge Zhang, Liwen Han
Journal:PHYTOMEDICINE
IF:11.3
DOI:10.1016/j.phymed.2026.157861
PMID:
Published:2026-01-19
research field:分子生物学细胞生物学衰老研究心血管疾病代谢性疾病
Abstract
Background Panacis Quinquefolii Radix (American ginseng, AG) has a well-documented history of use in cardiac protection. Nevertheless, the therapeutically active components responsible for its cardioprotective properties have not been fully elucidated. Extracellular -like nanoparticles (ELNs) have recently emerged as a promising class of natural nanocarriers with diverse applications in medicine and biology. However, it remains uncertain whether American Ginseng-derived extracellular-like nanoparticles (AGELNs) exhibit cardioprotective effects. Purpose This investigation aims to analyze the effects of AGELNs on Doxorubicin-induced cardiotoxicity (DIC) and the mechanisms at play. Methods Gradient ultracentrifugation was employed to isolate and purify AGELNs, while HPLC was employed for both qualitative and quantitative analysis of saponin molecules in AGELNs. Fluorescently labeled AGELNs were used to assess their uptake in cardiac tissue and cardiomyocytes. DIC models in mice and zebrafish were employed to evaluate the effect of AGELNs against DIC. Transcriptomics, RT-PCR, immunofluorescence, Western blotting, and pharmacological agonist and antagonist treatments were used to elucidate the molecular mechanisms of AGELNs in vivo and in vitro . Results AGELNs significantly enhanced cardiac function in mice and zebrafish models, evidenced by increased fractional shortening (FS), stroke volume, heart rate, and pericardial sac areas. Concomitantly, AGELNs demonstrated pronounced cardiac accumulation in Dox-treated mice, zebrafish, and cardiomyocytes. Transcriptomic and cellular analyses demonstrated AGELNs attenuate DIC by suppressing lipid peroxidation and ferroptosis. Mechanistically, AGELNs predominantly inhibit cardiomyocyte ferroptosis by targeting GPX4 and activating the NRF2/HO-1/GPX4 pathway. Furthermore, the cardioprotective effect of AGELNs against DIC has been found to be closely linked to its specific combination of bioactive saponins, including Rb1, Rg1,
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