Mechanism of salidroside regulating autophagy based on network pharmacology and molecular docking

红景天苷 自噬 机制(生物学) 小桶 药理学 PI3K/AKT/mTOR通路 基因 计算生物学 信号转导 细胞生物学 遗传学 生物 基因本体论 基因表达 细胞凋亡 哲学 认识论
作者
Yihong Chai,Feng Chen,Hongxing Li,Xiaohong Sun,Panpan Yang,Yaming Xi
出处
期刊:Anti-Cancer Drugs [Lippincott Williams & Wilkins]
被引量:2
标识
DOI:10.1097/cad.0000000000001601
摘要

Salidroside is a natural product of phenols with a wide range of pharmacological functions, but whether it plays a role in regulating autophagy is unclear. We systematically investigated the regulatory effect and molecular mechanism of salidroside on autophagy through network pharmacology, which provided a theoretical basis for subsequent experimental research. First, the target genes of salidroside were obtained using the Chinese Medicine System Pharmacology Database and Analysis Platform, and the target genes were converted into standardized gene names using the Uniprot website. At the same time, autophagy-related genes were collected from GeneCards, and preliminary handling of data to obtain intersecting genes. Then, the String website was used to construct a protein–protein interaction network, and to perform the Gene Ontology functional annotation and Kyoto Encyclopedia of Genes and Genomes pathway analysis. To observe the specific molecular mechanism by which salidroside regulates autophagy, we constructed a drug component-target genes-autophagy network. Finally, we performed molecular docking to verify the possible binding conformation between salidroside and the candidate target. By searching the database and analyzing the data, we found that 113 target genes in salidroside interact with autophagy. Salidroside regulate autophagy in relation to a number of important oncogenes and signaling pathways. Molecular docking confirmed that salidroside has high affinity with mTOR, SIRT1, and AKT1. Through network pharmacology combined with molecular docking-validated research methods, we revealed the underlying mechanism of salidroside regulation of autophagy. This study not only provides new systematic insights into the underlying mechanism of salidroside in autophagy, but also provides new ideas for network approaches for autophagy-related research.
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