Cargando…
Mechanism of Bazhen decoction in the treatment of colorectal cancer based on network pharmacology, molecular docking, and experimental validation
OBJECTIVE: Bazhen Decoction (BZD) is a common adjuvant therapy drug for colorectal cancer (CRC), although its anti-tumor mechanism is unknown. This study aims to explore the core components, key targets, and potential mechanisms of BZD treatment for CRC. METHODS: The Traditional Chinese Medicine Sys...
Autores principales: | , , , , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Frontiers Media S.A.
2023
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10548240/ https://www.ncbi.nlm.nih.gov/pubmed/37799727 http://dx.doi.org/10.3389/fimmu.2023.1235575 |
_version_ | 1785115235891281920 |
---|---|
author | Lu, Shuai Sun, Xibo Zhou, Zhongbao Tang, Huazhen Xiao, Ruixue Lv, Qingchen Wang, Bing Qu, Jinxiu Yu, Jinxuan Sun, Fang Deng, Zhuoya Tian, Yuying Li, Cong Yang, Zhenpeng Yang, Penghui Rao, Benqiang |
author_facet | Lu, Shuai Sun, Xibo Zhou, Zhongbao Tang, Huazhen Xiao, Ruixue Lv, Qingchen Wang, Bing Qu, Jinxiu Yu, Jinxuan Sun, Fang Deng, Zhuoya Tian, Yuying Li, Cong Yang, Zhenpeng Yang, Penghui Rao, Benqiang |
author_sort | Lu, Shuai |
collection | PubMed |
description | OBJECTIVE: Bazhen Decoction (BZD) is a common adjuvant therapy drug for colorectal cancer (CRC), although its anti-tumor mechanism is unknown. This study aims to explore the core components, key targets, and potential mechanisms of BZD treatment for CRC. METHODS: The Traditional Chinese Medicine Systems Pharmacology (TCMSP) was employed to acquire the BZD’s active ingredient and targets. Meanwhile, the Drugbank, Therapeutic Target Database (TTD), DisGeNET, and GeneCards databases were used to retrieve pertinent targets for CRC. The Venn plot was used to obtain intersection targets. Cytoscape software was used to construct an “herb-ingredient-target” network and identify core targets. GO and KEGG pathway enrichment analyses were conducted using R language software. Molecular docking of key ingredients and core targets of drugs was accomplished using PyMol and Autodock Vina software. Cell and animal research confirmed Bazhen Decoction efficacy and mechanism in treating colorectal cancer. RESULTS: BZD comprises 173 effective active ingredients. Using four databases, 761 targets related to CRC were identified. The intersection of BZD and CRC yielded 98 targets, which were utilized to construct the “herb-ingredient-target” network. The four key effector components with the most targets were quercetin, kaempferol, licochalcone A, and naringenin. Protein-protein interaction (PPI) analysis revealed that the core targets of BZD in treating CRC were AKT1, MYC, CASP3, ESR1, EGFR, HIF-1A, VEGFR, JUN, INS, and STAT3. The findings from molecular docking suggest that the core ingredient exhibits favorable binding potential with the core target. Furthermore, the GO and KEGG enrichment analysis demonstrates that BZD can modulate multiple signaling pathways related to CRC, like the T cell receptor, PI3K-Akt, apoptosis, P53, and VEGF signaling pathway. In vitro, studies have shown that BZD dose-dependently inhibits colon cancer cell growth and invasion and promotes apoptosis. Animal experiments have shown that BZD treatment can reverse abnormal expression of PI3K, AKT, MYC, EGFR, HIF-1A, VEGFR, JUN, STAT3, CASP3, and TP53 genes. BZD also increases the ratio of CD4(+) T cells to CD8(+) T cells in the spleen and tumor tissues, boosting IFN-γ expression, essential for anti-tumor immunity. Furthermore, BZD has the potential to downregulate the PD-1 expression on T cell surfaces, indicating its ability to effectively restore T cell function by inhibiting immune checkpoints. The results of HE staining suggest that BZD exhibits favorable safety profiles. CONCLUSION: BZD treats CRC through multiple components, targets, and metabolic pathways. BZD can reverse the abnormal expression of genes such as PI3K, AKT, MYC, EGFR, HIF-1A, VEGFR, JUN, STAT3, CASP3, and TP53, and suppresses the progression of colorectal cancer by regulating signaling pathways such as PI3K-AKT, P53, and VEGF. Furthermore, BZD can increase the number of T cells and promote T cell activation in tumor-bearing mice, enhancing the immune function against colorectal cancer. Among them, quercetin, kaempferol, licochalcone A, naringenin, and formaronetin are more highly predictive components related to the T cell activation in colorectal cancer mice. This study is of great significance for the development of novel anti-cancer drugs. It highlights the importance of network pharmacology-based approaches in studying complex traditional Chinese medicine formulations. |
format | Online Article Text |
id | pubmed-10548240 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2023 |
publisher | Frontiers Media S.A. |
record_format | MEDLINE/PubMed |
spelling | pubmed-105482402023-10-05 Mechanism of Bazhen decoction in the treatment of colorectal cancer based on network pharmacology, molecular docking, and experimental validation Lu, Shuai Sun, Xibo Zhou, Zhongbao Tang, Huazhen Xiao, Ruixue Lv, Qingchen Wang, Bing Qu, Jinxiu Yu, Jinxuan Sun, Fang Deng, Zhuoya Tian, Yuying Li, Cong Yang, Zhenpeng Yang, Penghui Rao, Benqiang Front Immunol Immunology OBJECTIVE: Bazhen Decoction (BZD) is a common adjuvant therapy drug for colorectal cancer (CRC), although its anti-tumor mechanism is unknown. This study aims to explore the core components, key targets, and potential mechanisms of BZD treatment for CRC. METHODS: The Traditional Chinese Medicine Systems Pharmacology (TCMSP) was employed to acquire the BZD’s active ingredient and targets. Meanwhile, the Drugbank, Therapeutic Target Database (TTD), DisGeNET, and GeneCards databases were used to retrieve pertinent targets for CRC. The Venn plot was used to obtain intersection targets. Cytoscape software was used to construct an “herb-ingredient-target” network and identify core targets. GO and KEGG pathway enrichment analyses were conducted using R language software. Molecular docking of key ingredients and core targets of drugs was accomplished using PyMol and Autodock Vina software. Cell and animal research confirmed Bazhen Decoction efficacy and mechanism in treating colorectal cancer. RESULTS: BZD comprises 173 effective active ingredients. Using four databases, 761 targets related to CRC were identified. The intersection of BZD and CRC yielded 98 targets, which were utilized to construct the “herb-ingredient-target” network. The four key effector components with the most targets were quercetin, kaempferol, licochalcone A, and naringenin. Protein-protein interaction (PPI) analysis revealed that the core targets of BZD in treating CRC were AKT1, MYC, CASP3, ESR1, EGFR, HIF-1A, VEGFR, JUN, INS, and STAT3. The findings from molecular docking suggest that the core ingredient exhibits favorable binding potential with the core target. Furthermore, the GO and KEGG enrichment analysis demonstrates that BZD can modulate multiple signaling pathways related to CRC, like the T cell receptor, PI3K-Akt, apoptosis, P53, and VEGF signaling pathway. In vitro, studies have shown that BZD dose-dependently inhibits colon cancer cell growth and invasion and promotes apoptosis. Animal experiments have shown that BZD treatment can reverse abnormal expression of PI3K, AKT, MYC, EGFR, HIF-1A, VEGFR, JUN, STAT3, CASP3, and TP53 genes. BZD also increases the ratio of CD4(+) T cells to CD8(+) T cells in the spleen and tumor tissues, boosting IFN-γ expression, essential for anti-tumor immunity. Furthermore, BZD has the potential to downregulate the PD-1 expression on T cell surfaces, indicating its ability to effectively restore T cell function by inhibiting immune checkpoints. The results of HE staining suggest that BZD exhibits favorable safety profiles. CONCLUSION: BZD treats CRC through multiple components, targets, and metabolic pathways. BZD can reverse the abnormal expression of genes such as PI3K, AKT, MYC, EGFR, HIF-1A, VEGFR, JUN, STAT3, CASP3, and TP53, and suppresses the progression of colorectal cancer by regulating signaling pathways such as PI3K-AKT, P53, and VEGF. Furthermore, BZD can increase the number of T cells and promote T cell activation in tumor-bearing mice, enhancing the immune function against colorectal cancer. Among them, quercetin, kaempferol, licochalcone A, naringenin, and formaronetin are more highly predictive components related to the T cell activation in colorectal cancer mice. This study is of great significance for the development of novel anti-cancer drugs. It highlights the importance of network pharmacology-based approaches in studying complex traditional Chinese medicine formulations. Frontiers Media S.A. 2023-09-20 /pmc/articles/PMC10548240/ /pubmed/37799727 http://dx.doi.org/10.3389/fimmu.2023.1235575 Text en Copyright © 2023 Lu, Sun, Zhou, Tang, Xiao, Lv, Wang, Qu, Yu, Sun, Deng, Tian, Li, Yang, Yang and Rao https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms. |
spellingShingle | Immunology Lu, Shuai Sun, Xibo Zhou, Zhongbao Tang, Huazhen Xiao, Ruixue Lv, Qingchen Wang, Bing Qu, Jinxiu Yu, Jinxuan Sun, Fang Deng, Zhuoya Tian, Yuying Li, Cong Yang, Zhenpeng Yang, Penghui Rao, Benqiang Mechanism of Bazhen decoction in the treatment of colorectal cancer based on network pharmacology, molecular docking, and experimental validation |
title | Mechanism of Bazhen decoction in the treatment of colorectal cancer based on network pharmacology, molecular docking, and experimental validation |
title_full | Mechanism of Bazhen decoction in the treatment of colorectal cancer based on network pharmacology, molecular docking, and experimental validation |
title_fullStr | Mechanism of Bazhen decoction in the treatment of colorectal cancer based on network pharmacology, molecular docking, and experimental validation |
title_full_unstemmed | Mechanism of Bazhen decoction in the treatment of colorectal cancer based on network pharmacology, molecular docking, and experimental validation |
title_short | Mechanism of Bazhen decoction in the treatment of colorectal cancer based on network pharmacology, molecular docking, and experimental validation |
title_sort | mechanism of bazhen decoction in the treatment of colorectal cancer based on network pharmacology, molecular docking, and experimental validation |
topic | Immunology |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10548240/ https://www.ncbi.nlm.nih.gov/pubmed/37799727 http://dx.doi.org/10.3389/fimmu.2023.1235575 |
work_keys_str_mv | AT lushuai mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT sunxibo mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT zhouzhongbao mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT tanghuazhen mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT xiaoruixue mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT lvqingchen mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT wangbing mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT qujinxiu mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT yujinxuan mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT sunfang mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT dengzhuoya mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT tianyuying mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT licong mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT yangzhenpeng mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT yangpenghui mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation AT raobenqiang mechanismofbazhendecoctioninthetreatmentofcolorectalcancerbasedonnetworkpharmacologymoleculardockingandexperimentalvalidation |