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Network Pharmacology and Molecular Docking for Natural Product-Based Therapies in Gallbladder and Biliary Tract
Sushant S Das1, Rajni Rathore2, Harsimranjit Singh1
1Anatomy, All India Institute of Medical Sciences, Jammu, IND.
Abstract:
Gallbladder cancer (GBC) and other biliary tract cancers (BTCs) are aggressive hepatobiliary malignancies with limited pharmacological treatment options and a poor prognosis. Even with platinum-gemcitabine regimens and selected targeted or immunotherapies, most patients experience only transient benefits, highlighting the need for new mechanistic approaches. Natural products, ranging from purified phytochemicals to complex traditional formulations, act on several key processes involved in gallbladder carcinogenesis, including chronic inflammation, epithelial-mesenchymal transition, apoptosis, and DNA damage responses. These multi-target effects are difficult to capture using reductionist approaches that focus on single receptors or pathways. Network pharmacology and molecular docking have therefore emerged as valuable in silico tools for understanding this complexity. By integrating compound-target predictions, protein-protein interaction networks, and pathway enrichment analyses with structural models of ligand-target binding, these approaches can generate pharmacological hypotheses, prioritize targets for validation, and suggest rational combinations with standard systemic therapies. However, their application to gallbladder and biliary tract cancers remains limited and methodologically heterogeneous. In this narrative review, we summarize current preclinical evidence, outline standard workflows, critically examine common pitfalls, and propose a best-practice workflow and reporting checklist. We also discuss how in silico methods can be integrated into experimental and clinical pharmacology to support the mechanism-driven development of natural product-based therapies in hepatobiliary oncology.
Insights
Natural products show promise for treating gallbladder cancer (GBC) and biliary tract cancers (BTCs) by targeting multiple pathways. Network pharmacology and molecular docking can help develop these natural product-based therapies.
Area of Science:
- Hepatobiliary Oncology
- Pharmacology
- Computational Biology
Background:
- Gallbladder cancer (GBC) and biliary tract cancers (BTCs) are aggressive malignancies with poor prognosis and limited treatment options.
- Current therapies offer only transient benefits, necessitating novel mechanistic approaches.
- Natural products offer multi-target effects relevant to gallbladder carcinogenesis, but their complexity is challenging to study.
Purpose of the Study:
- To review preclinical evidence on natural products for GBC and BTCs.
- To outline and critically examine in silico methodologies like network pharmacology and molecular docking.
- To propose a best-practice workflow for applying these computational tools in hepatobiliary oncology.
Main Methods:
- Literature review of preclinical studies on natural products in GBC/BTCs.
- Analysis of network pharmacology and molecular docking workflows.
- Identification of common pitfalls and best practices in computational approaches.
Main Results:
- Natural products impact key carcinogenesis processes (inflammation, EMT, apoptosis, DNA damage).
- Network pharmacology and molecular docking are valuable in silico tools for understanding multi-target effects.
- Application of these methods in GBC/BTCs is limited and heterogeneous.
Conclusions:
- In silico approaches can generate hypotheses, prioritize targets, and suggest combinations for natural product-based therapies.
- A standardized workflow and reporting checklist are needed for reliable application of these methods.
- Integrating computational methods with experimental and clinical studies can advance mechanism-driven drug development in hepatobiliary oncology.
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