Department of Otolaryngology-Head and Neck Surgery, The Second Hospital, Jilin University, Changchun, China.
Department of Otolaryngology-Head and Neck Surgery, The Second Hospital, Jilin University, Changchun, China.
Toxicol Appl Pharmacol. 2024 Jan;482:116790. doi: 10.1016/j.taap.2023.116790. Epub 2023 Dec 15.
The study aimed to explore the mechanisms of luteolin in acquired sensorineural hearing loss (SNHL) through network pharmacology, molecular docking, molecular dynamics simulation, and experimental verification.
First, the practices of network pharmacology were used to obtain the intersecting targets of luteolin and acquired SNHL, construct the PPI (Protein-Protein Interaction) network, conduct GO and KEGG enrichments, and establish luteolin-acquired SNHL-target-pathway network, aiming to gain the core targets and pathways. Then, the affinity between the core targets and luteolin was verified by molecular docking. Moreover, molecular dynamics (MD) simulation was applied to simulate the binding between targets and luteolin. Finally, with the HEI-OC1 cell line, some molecular biology techniques were adopted to verify the pharmacological actions of luteolin and the significance of the pathway from KEGG enrichment in luteolin-protecting auditory cell damage related to acquired SNHL.
14 intersecting targets were obtained, and the 10 core targets were further verified through molecular docking and MD simulation to get 5 core targets. The JAK/STAT was selected as the critical pathway through KEGG enrichment. Luteolin could dose-dependently alleviate auditory cell apoptosis by inhibiting the JAK/STAT pathway, confirmed by a series of experiments in vitro.
This study manifested that luteolin could reduce acquired SNHL-related auditory cell apoptosis through the JAK/STAT pathway, which provided a new idea for acquired SNHL pharmacological treatment.
本研究旨在通过网络药理学、分子对接、分子动力学模拟和实验验证,探讨木犀草素在获得性感音神经性听力损失(SNHL)中的作用机制。
首先,采用网络药理学方法获取木犀草素与获得性 SNHL 的交集靶点,构建 PPI(蛋白-蛋白相互作用)网络,进行 GO 和 KEGG 富集分析,并建立木犀草素-获得性 SNHL-靶标-通路网络,以获得核心靶标和通路。然后,通过分子对接验证核心靶标与木犀草素的亲和力。此外,还应用分子动力学(MD)模拟来模拟靶标与木犀草素的结合。最后,采用 HEI-OC1 细胞系,通过一些分子生物学技术,验证木犀草素的药理学作用以及 KEGG 富集通路在木犀草素保护与获得性 SNHL 相关的听觉细胞损伤中的意义。
获得了 14 个交集靶点,通过分子对接和 MD 模拟进一步验证了 10 个核心靶点,得到了 5 个核心靶点。通过 KEGG 富集,选择 JAK/STAT 作为关键通路。木犀草素可通过抑制 JAK/STAT 通路,剂量依赖性地减轻体外培养的听觉细胞凋亡,这一点通过一系列实验得到了证实。
本研究表明,木犀草素通过 JAK/STAT 通路减少获得性 SNHL 相关的听觉细胞凋亡,为获得性 SNHL 的药物治疗提供了新的思路。