氧化应激
化学
肾
药理学
体内
抗氧化剂
粒体自噬
草酸钙
肾结石病
肾结石
硒
线粒体
体外
细胞凋亡
草酸盐
肾毒性
活性氧
生物化学
氧化损伤
钙
氧化磷酸化
线粒体内膜
细胞生物学
肾脏疾病
纳米颗粒
离体
作者
Jie Yang,Guoruiyu Lyu,Wenlong Wan,Dongfeng Yuan,Jiabo Li,Yongqi Wang,Baokang Wang,Zhilong Ma,Yuanyuan Yang,Yang Xun,Xiao Yu
摘要
Pharmacological treatments for kidney stones remain limited, with oxidative stress and injury to renal tubular epithelial cells (RTECs) as key pathological drivers. We prepared a novel Herba Lysimachiae polysaccharide-modified selenium nanoparticle (HLP-SeNPs) formulation that enhances the stability and antioxidant activity of selenium nanoparticles (SeNPs) to alleviate oxalate-induced renal injury. In vivo and in vitro studies showed that HLP-SeNPs possess pronounced anti-oxidative stress capacity, restore mitochondrial membrane potential, alleviate mitochondrial damage, reduce RTEC death, and inhibit renal calcium oxalate (CaOx) crystal deposition. Mechanistically, HLP-SeNPs downregulate TOMM22 (translocase of the outer mitochondrial membrane 22, a core TOM complex subunit) to activate PINK1-Parkin-mediated mitophagy, thereby effectively limiting oxidative stress-induced injury at its source. These findings indicate that HLP-SeNPs exert substantial renoprotective effects and prevent CaOx stone formation, providing an experimental foundation for mitochondria-targeted nanotherapeutics in kidney stone disease and highlighting the potential of integrating traditional Chinese medicine with nanomaterials.
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