Kukoamine A from the root bark of Lycium chinense Miller enhances mobility in an aged Caenorhabditis elegans model by regulating mitochondrial function through HSF-1-mediated upregulation of heat shock proteins

秀丽隐杆线虫 下调和上调 枸杞 功能(生物学) 热休克蛋白 生物 树皮(声音) 细胞生物学 传统医学 医学 生态学 生物化学 基因 替代医学 病理
作者
SoHyun Lee,Esther Youn,Son Hung Tran,Won‐Young Bae,Uyen Tran Tu Nguyen,P. Ho,Ji Hoon Kim,Keunwan Park,Chul Young Kim,Kyungsu Kang
出处
期刊:Journal of Ethnopharmacology [Elsevier BV]
卷期号:354: 120469-120469 被引量:1
标识
DOI:10.1016/j.jep.2025.120469
摘要

ETHNOPHARMACOLOGICAL RELEVANCE: Lycium chinense Miller has long been used in East Asian medicine for muscle and bone support. Kukoamine A (KA), a bioactive compound from its root bark, has not been previously studied for its potential to counteract age- and heat-induced locomotor decline. AIM OF THE STUDY: This study aims to investigate whether KA improves mobility in aged animal models and to elucidate its underlying mechanism. MATERIALS AND METHODS: Caenorhabditis elegans were treated with KA, and their growth rate, locomotor performance under aging and heat-stressed conditions were evaluated. ROS levels, muscle mitochondrial morphology, and mitochondrial membrane potential were measured via fluorescence microscopy. The nuclear localization of SKN-1 and the expression levels of HSF-1 and its downstream HSPs were measured in the transgenic GFP-tagged strains. The necessity of HSF-1 and HSPs was tested using corresponding mutant worms. RESULTS: KA treatment ameliorated the age-related decrease in swimming activity and preserved muscle mitochondrial morphology in aged worms. Furthermore, it attenuated the age-associated increase in ROS levels. The treatment significantly increased the expression of HSF-1, as well as its downstream targets, HSP-6, HSP-4, and HSP-16.2, whereas SKN-1 nuclear translocation was not observed with the 24 h of L4-stage regimen. The locomotor benefits of KA supplementation were abolished in HSF-1 and HSP-deficient mutants, with speed preserved only in the HSP-16.2 mutant. Furthermore, it prevented heat stress-induced mobility impairment. CONCLUSION: KA treatment mitigated age-related locomotor decline by enhancing mitochondrial health and inducing HSF-1-mediated HSP activation across multiple cellular compartments.
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