Network pharmacology and molecular docking identify mechanisms of medicinal plant-derived 1,2,3,4,6-penta-O-galloyl-beta-D-glucose treating gastric cancer

被引:2
|
作者
Ren, Man [1 ,3 ]
Yang, Yuan [1 ,4 ]
Li, Dan [5 ]
Zhao, Nannan
Wang, Yuping [2 ,6 ]
Zhou, Yongning [2 ,6 ]
机构
[1] Lanzhou Univ, Clin Med Coll 1, Lanzhou 730000, Peoples R China
[2] Lanzhou Univ, Gansu Key Lab Gastroenterol, Lanzhou 730000, Peoples R China
[3] Lanzhou Univ, Dept Geriatr Gerontol, Hosp 1, Lanzhou 730000, Peoples R China
[4] Lanzhou Univ, Off Natl Drug Clin Trial Inst, Hosp 1, Lanzhou 730000, Peoples R China
[5] Lanzhou Univ, Sch Pharm, Lanzhou 730000, Peoples R China
[6] Lanzhou Univ, Hosp 1, Dept Gastroenterol, Lanzhou 730000, Peoples R China
关键词
1; 2; 3; 6-penta-O-galloyl-beta-D-glucose; Gastric cancer; Network pharmacology; Molecular docking; MAPK14; VEGFA; TRADITIONAL CHINESE MEDICINE; BETA-D-GLUCOSE; METASTASIS; EXPRESSION; PATHWAY; CELLS; GROWTH; GENE;
D O I
10.32604/biocell.2023.028402
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: 1,2,3,4,6-penta-O-galloyl-beta-D-glucose (PGG) is a natural polyphenolic compound derived from multiple medicinal plants with favorable anticancer activity. Methods: In this study, the mechanisms of PGG against gastric cancer were explored through network pharmacology and molecular docking. First, the targets of PGG were searched in the Herbal Ingredients' Targets (HIT), Similarity Ensemble Approach (SEA), and Super-PRED databases. The potential targets related to gastric cancer were predicted from the Human Gene Database (GeneCards) and DisGeNET databases. The intersecting targets of PGG and gastric cancer were obtained by Venn diagram and then subjected to protein-protein interaction analysis to screen hub targets. Functional and pathway enrichment of hub targets were analyzed through Gene Ontology and Kyoto Encyclopedia of Genes and Genomes pathway databases. The differential expression and survival analysis of hub targets in gastric cancer were performed based on The Cancer Genome Atlas database. Finally, the affinity of PGG with hub targets was visualized by molecular docking. Results: Three hub targets were screened, including mitogen-activated protein kinase 14 (MAPK14), BCL2 like 1 (BCL2L1), and vascular endothelial growth factor A (VEGFA). MAPK14 had a higher expression, while BCL2L1 and VEGFA had lower expression in gastric cancer than in normal conditions. Enrichment analysis indicated enrichment of these hub targets in MAPK, neurotrophin, programmed death-ligand 1 (PD-L1) checkpoint, phosphatidylinositol 3-kinases/protein kinase B (PI3K-Akt), Ras, and hypoxia-inducible factor-1 (HIF-1) signaling pathways. Conclusion: Therefore, network pharmacology and molecular docking analyses revealed that PGG exerts a therapeutic efficacy on gastric cancer by multiple targets (MAPK14, BCL2L1, and VEGFA) and pathways (MAPK, PD-L1 checkpoint, PI3K-Akt, Ras, and HIF-1 pathways).
引用
收藏
页码:977 / 989
页数:13
相关论文
共 50 条
  • [21] Antioxidant properties of 1,2,3,4,6-penta-O-galloyl-β-D-glucose from Elaeocarpus sylvestris var. ellipticus
    Piao, Mei Jing
    Kang, Kyoung Ah
    Zhang, Rui
    Ko, Dong Ok
    Wang, Zhi Hong
    Lee, Keun Hwa
    Chang, Weon Young
    Chae, Sungwook
    Jee, Youngheun
    Shin, Taekyun
    Park, Jae Woo
    Lee, Nam Ho
    Hyun, Jin Won
    FOOD CHEMISTRY, 2009, 115 (02) : 412 - 418
  • [22] Apoptotic and DNA Damage Effect of 1,2,3,4,6-Penta-O-galloyl-beta-D-glucose in Cisplatin-Resistant Non-Small Lung Cancer Cells via Phosphorylation of H2AX, CHK2 and p53
    Kim, Ji-Hyun
    Im, Eunji
    Lee, Jihyun
    Lee, Hyo-Jung
    Sim, Deok Yong
    Park, Ji Eon
    Ahn, Chi-Hoon
    Kwon, Hyeon Hee
    Shim, Bum Sang
    Kim, Bonglee
    Kim, Sung-Hoon
    CELLS, 2022, 11 (08)
  • [23] Antioxidant 1,2,3,4,6-Penta-O-galloyl-β-D-glucose Alleviating Apoptosis and Promoting Bone Formation Is Associated with Estrogen Receptors
    Hua, Yongqing
    Wang, Haili
    Chen, Tingting
    Zhou, Yeru
    Chen, Zhiyuan
    Zhao, Xinyue
    Mo, Shaoqin
    Mao, Hongyun
    Li, Miao
    Wang, Linxia
    Hong, Min
    MOLECULES, 2024, 29 (21):
  • [24] 1,2,3,4,6-Penta-O-galloyl-β-D-glucose Protects Splenocytes against Radiation-Induced Apoptosis in Murine Splenocytes
    Bing, So Jin
    Kim, Min Ju
    Park, Eunjin
    Ahn, Ginnae
    Kim, Dae Seung
    Ko, Ryeo Kyeong
    Lee, Nam Ho
    Shin, Taekyun
    Park, Jae Woo
    Jee, Youngheun
    BIOLOGICAL & PHARMACEUTICAL BULLETIN, 2010, 33 (07) : 1122 - 1127
  • [25] Antioxidative activity of geranium (Pelargonium inquinans Ait) and its active component, 1,2,3,4,6-penta-o-galloyl-β-d-glucose
    Piao, Xiangshu
    Piao, Xiang-Lan
    Kim, Hyun Young
    Cho, Eun Ju
    PHYTOTHERAPY RESEARCH, 2008, 22 (04) : 534 - 538
  • [26] EFFECT OF 1,2,3,4,6-PENTA-O-GALLOYL-β-D-GLUCOSE ON ELASTASE AND HYALURONIDASE ACTIVITIES AND ITS TYPE II COLLAGEN EXPRESSION
    Kim, Song-Ja
    Sancheti, Sandesh A.
    Sancheti, Shruti S.
    Um, Byung-Hun
    Yu, Seon-Mi
    Seo, Sung-Yum
    ACTA POLONIAE PHARMACEUTICA, 2010, 67 (02): : 145 - 150
  • [27] 1,2,3,4,6-Penta-O-Galloyl-Beta-D-Glucopyranoside Inhibits Proliferation of Multiple Myeloma Cells Accompanied with Suppression of MYC Expression
    Tseeleesuren, Duurenjargal
    Kant, Rajni
    Yen, Chia-Hung
    Hsiao, Hui-Hua
    Chen, Yi-Ming A.
    FRONTIERS IN PHARMACOLOGY, 2018, 9
  • [28] Investigating the therapeutic potential of 1,2,3,4,6 penta-O-galloyl-β-D-glucose in Alzheimer's disease: a scoping review
    Kahil, Ezaldean
    Jackson, Anisha
    D'Souza, Bernadette
    Gorman, Gregory
    Jumbo-Lucioni, Patricia
    NATURAL PRODUCT RESEARCH, 2025,
  • [29] 1,2,3,4,6-Penta-O-galloyl-β-D-glucose from Galla Rhois Protects Primary Rat Hepatocytes from Necrosis and Apoptosis
    Park, Eun-Jeon
    Zhao, Yu-Zhe
    An, Ren-Bo
    Kim, Youn-Chul
    Sohn, Dong Hwan
    PLANTA MEDICA, 2008, 74 (11) : 1380 - 1383
  • [30] Penta-1,2,3,4,6-O-Galloyl-Beta-D-Glucose Induces Senescence-Like Terminal S-Phase Arrest in Human Hepatoma and Breast Cancer Cells
    Yin, Shutao
    Dong, Yinhui
    Li, Jinhua
    Lue, Junxuan
    Hu, Hongbo
    MOLECULAR CARCINOGENESIS, 2011, 50 (08) : 592 - 600