听力损失
TRPV1型
氨基糖苷
斑马鱼
耳毒性
毛细胞
药理学
耳蜗
卡那霉素
体内
作用机理
医学
听力学
细胞生物学
生物
内科学
体外
抗生素
瞬时受体电位通道
生物化学
解剖
受体
遗传学
化疗
顺铂
基因
作者
Marisa Zallocchi,Sarath Vijayakumar,Jonathan P. Fleegel,Lyudmila Batalkina,Katyarina E. Brunette,Dhaval Shukal,Zhiyong Chen,Olivier Devuyst,Huizhan Liu,David Z. Z. He,Ali Sajid Imami,Abdul‐rizaq Hamoud,Robert E. McCullumsmith,Martin Conda‐Sheridan,Luana Janaína de Campos,Jian Zuo
出处
期刊:Science Translational Medicine
[American Association for the Advancement of Science (AAAS)]
日期:2024-08-07
卷期号:16 (759)
被引量:1
标识
DOI:10.1126/scitranslmed.adn2140
摘要
Hearing loss is a major health concern in our society, affecting more than 400 million people worldwide. Among the causes, aminoglycoside therapy can result in permanent hearing loss in 40% to 60% of patients receiving treatment, and despite these high numbers, no drug for preventing or treating this type of hearing loss has yet been approved by the US Food and Drug Administration. We have previously conducted high-throughput screenings of bioactive compounds, using zebrafish as our discovery platform, and identified piplartine as a potential therapeutic molecule. In the present study, we expanded this work and characterized piplartine’s physicochemical and therapeutic properties. We showed that piplartine had a wide therapeutic window and neither induced nephrotoxicity in vivo in zebrafish nor interfered with aminoglycoside antibacterial activity. In addition, a fluorescence-based assay demonstrated that piplartine did not inhibit cytochrome C activity in microsomes. Coadministration of piplartine protected from kanamycin-induced hair cell loss in zebrafish and protected hearing function, outer hair cells, and presynaptic ribbons in a mouse model of kanamycin ototoxicity. Last, we investigated piplartine’s mechanism of action by phospho-omics, immunoblotting, immunohistochemistry, and molecular dynamics experiments. We found an up-regulation of AKT1 signaling in the cochleas of mice cotreated with piplartine. Piplartine treatment normalized kanamycin-induced up-regulation of TRPV1 expression and modulated the gating properties of this receptor. Because aminoglycoside entrance to the inner ear is, in part, mediated by TRPV1, these results suggested that by regulating TRPV1 expression, piplartine blocked aminoglycoside’s entrance, thereby preventing the long-term deleterious effects of aminoglycoside accumulation in the inner ear compartment.
科研通智能强力驱动
Strongly Powered by AbleSci AI