Potential anti-liver cancer targets and mechanisms of kaempferitrin based on network pharmacology, molecular docking and experimental verification

被引:3
|
作者
Zhou S. [1 ]
Zhang H. [1 ]
Li J. [1 ]
Li W. [1 ]
Su M. [1 ]
Ren Y. [1 ]
Ge F. [1 ]
Zhang H. [1 ]
Shang H. [1 ]
机构
[1] College of Life Science, Sichuan Normal University, Chengdu
关键词
Experimental verification in vivo and in vitro; Kaempferitrin; Liver cancer; Molecular docking; Network pharmacology;
D O I
10.1016/j.compbiomed.2024.108693
中图分类号
学科分类号
摘要
Aim: Kaempferitrin is an active component in Chenopodium ambrosioides, showing medicinal functions against liver cancer. This study aimed to identify the potential targets and pathways of kaempferitrin against liver cancer using network pharmacology and molecular docking, and verify the essential hub targets and pathway in mice model of SMMC-7721 cells xenografted tumors and SMMC-7721 cells. Methods: Kaempferitrin therapeutical targets were obtained by searching SwissTargetPrediction, PharmMapper, STITCH, DrugBank, and TTD databases. Liver cancer specific genes were obtained by searching GeneCards, DrugBank, TTD, OMIM, and DisGeNET databases. PPI network of “kaempferitrin-targets-liver cancer” was constructed to screen the hub targets. GO, KEGG pathway and MCODE clustering analyses were performed to identify possible enrichment of genes with specific biological subjects. Molecular docking and molecular dynamics simulation were employed to determine the docking pose, potential and stability of kaempferitrin with hub targets. The potential anti-liver cancer mechanisms of kaempferitrin, as predicted by network pharmacology analyses, were verified by in vitro and in vivo experiments. Results: 228 kaempferitrin targets and 2186 liver cancer specific targets were identified, of which 50 targets were overlapped. 8 hub targets were identified through network topology analysis, and only SIRT1 and TP53 had a potent binding activity with kaempferitrin as indicated by molecular docking and molecular dynamics simulation. MCODE clustering analysis revealed the most significant functional module of PPI network including SIRT1 and TP53 was mainly related to cell apoptosis. GO and KEGG enrichment analyses suggested that kaempferitrin exerted therapeutic effects on liver cancer possibly by promoting apoptosis via p21/Bcl-2/Caspase 3 signaling pathway, which were confirmed by in vivo and in vitro experiments, such as HE staining of tumor tissues, CCK-8, qRT-PCR and Western blot. Conclusion: This study provided not only insight into how kaempferitrin could act against liver cancer by identifying hub targets and their associated signaling pathways, but also experimental evidence for the clinical use of kaempferitrin in liver cancer treatment. © 2024 Elsevier Ltd
引用
收藏
相关论文
共 50 条
  • [41] ASSESSMENT OF THE ANTI-ARTHRITIC AND IMMUNOSUPPRESSIVE POTENTIAL OF ENALAPRIL BY USING NETWORK PHARMACOLOGY, MOLECULAR DOCKING AND EXPERIMENTAL PHARMACOLOGY APPROACHES
    Qasim, Sumera
    Khan, Yusra Habib
    Uttra, Ambreen Malik
    Alotaibi, Nasser Hadal
    Alanazi, Abdullah Salah
    Alzarea, Abdulaziz I.
    Alatawi, Ahmed D.
    Tanveer, Nida
    Alruwaili, Ghada S.
    Mallhi, Tauqeer Hussain
    FARMACIA, 2023, 71 (05) : 1013 - 1023
  • [42] Molecular targets and mechanisms of Guanxinning tablet in treating atherosclerosis: Network pharmacology and molecular docking analysis
    Niu, Chaofeng
    Zhang, Peiyu
    Zhang, Lijing
    Lin, Dingfeng
    Lai, Haixia
    Xiao, Di
    Liu, Yong
    Zhuang, Rui
    Li, Meng
    Ma, Liyong
    Ye, Jiaqi
    Pan, Yi
    MEDICINE, 2023, 102 (39) : E35106
  • [43] Network Pharmacology and Molecular Docking Analysis on Molecular Targets and Mechanisms of Fei Jin Sheng Formula in the Treatment of Lung Cancer
    Zhang, Yun-Chao
    Gao, Wen-Cang
    Chen, Wei-Jian
    Pang, De-Xiang
    Mo, Da-Yu
    Yang, Min
    CURRENT PHARMACEUTICAL DESIGN, 2023, 29 (14) : 1121 - 1134
  • [44] Integrated Network Pharmacology, Molecular Docking, and Experimental Validation to Explore Potential Mechanisms of Sinomenine in the Treatment of Osteoarthritis
    Wang, Shaojun
    Lai, Fanglin
    Xiang, Ting
    Xu, Yan
    NATURAL PRODUCT COMMUNICATIONS, 2024, 19 (07)
  • [45] Mechanism and Experimental Verification of the Use of Rhodiola crenulata to Cytokine Storm Based on Network Pharmacology and Molecular Docking
    Zhao, Wanhua
    Song, Dan
    Wang, Pingyi
    Tian, Yu
    Chang, Senhao
    Li, Wenhua
    NATURAL PRODUCT COMMUNICATIONS, 2022, 17 (12)
  • [46] Potential Mechanisms of Triptolide against Diabetic Cardiomyopathy Based on Network Pharmacology Analysis and Molecular Docking
    Zhu, Ning
    Huang, Bingwu
    Zhu, Liuyan
    Wang, Yi
    JOURNAL OF DIABETES RESEARCH, 2021, 2021
  • [47] Exploration of the mechanism of luteolin against ischemic stroke based on network pharmacology, molecular docking and experimental verification
    Dong, Rui
    Huang, Renxuan
    Shi, Xiaohua
    Xu, Zhongxin
    Mang, Jing
    BIOENGINEERED, 2021, 12 (02) : 12274 - 12293
  • [48] Exploring the Mechanism of Chuanxiong Rhizoma against Thrombosis Based on Network Pharmacology, Molecular Docking and Experimental Verification
    He, Shasha
    He, Xuhua
    Pan, Shujuan
    Jiang, Wenwen
    MOLECULES, 2023, 28 (18):
  • [49] Study on the Mechanism of Baimai Ointment in the Treatment of Osteoarthritis Based on Network Pharmacology and Molecular Docking with Experimental Verification
    Zhu, Yingyin
    Zhong, Wanling
    Peng, Jing
    Wu, Huichao
    Du, Shouying
    FRONTIERS IN GENETICS, 2021, 12
  • [50] RETRACTED: Network Pharmacology, Molecular Docking, and Experimental Validation to Unveil the Molecular Targets and Mechanisms of Compound Fuling Granule to Treat Ovarian Cancer (Retracted Article)
    Li, Zhaoyi
    Liu, Qingling
    Zhu, Ying
    Wu, Lichao
    Liu, Wenhong
    Li, Junfeng
    Zhang, Zhiqian
    Tao, Fangfang
    OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2022, 2022