Related Experiment Video
Updated: Oct 20, 2025

Kinase Inhibitor Screening In Self-assembled Human Protein Microarrays
Published on: October 23, 2019
Virtual Screening and Molecular Docking: Discovering Novel c-KIT Inhibitors
Fernanda Mello Tavares1, Angela Cristina Gomes2, Edson Mareco Assunção2
1Post graduate Program in Health Sciences, University of Western São Paulo (UNOESTE), Presidente Prudente, SP,Brazil.
Abstract:
Gastrointestinal stromal tumors (GISTs) are unusual cancers, which are developed in specialized cells in the gastrointestinal tract wall. Various strategies involving single-agents, combinations, and rapid complementary inhibitor cycling are now being used to control such tumors. Based on promising early clinical trial experience, certain novel KIT and PDGFRA tyrosine kinase inhibitors have shown advanced clinical development. Resistance to tyrosine kinase inhibitors has brought immense difficulties, with patients now requiring additional therapeutic options. This review describes and discusses the last five years (2016-2020) in developing novel c-KIT kinase inhibitors using virtual screening and docking approaches. Computational techniques can be used to complement experimental studies to identify new candidate molecules for therapeutic use. Molecular modeling strategies allow the analysis of the required characteristics that compounds must have to effectively bind c-KIT. Through such analyses, it is possible to both discover and design novel inhibitors against cancer-related proteins that play a critical role in tumor development (including mutant strains). Docking showed potential in the detection of the key residues responsible for ligand recognition and is very helpful to understand the interactions in the active site that can be used to develop new compounds/classes of anticancer drugs and help millions of cancer patients.
Insights
Novel computational methods, including virtual screening and docking, are advancing the development of c-KIT kinase inhibitors for gastrointestinal stromal tumors (GISTs). These techniques aid in designing new anticancer drugs to overcome tyrosine kinase inhibitor resistance.
Area of Science:
- Oncology
- Computational Chemistry
- Drug Discovery
Background:
- Gastrointestinal stromal tumors (GISTs) are rare cancers originating in the gastrointestinal tract.
- Current treatments involve tyrosine kinase inhibitors (TKIs), but resistance necessitates new therapeutic strategies.
- Novel c-KIT and PDGFRA inhibitors are in advanced clinical development.
Purpose of the Study:
- To review the development of novel c-KIT kinase inhibitors from 2016-2020.
- To highlight the role of virtual screening and molecular docking in identifying new drug candidates.
- To explore computational strategies for designing effective anticancer agents against GISTs.
Main Methods:
- Virtual screening and molecular docking approaches were employed.
- Computational techniques were used to analyze molecular interactions and identify key binding residues.
- Molecular modeling aided in understanding inhibitor-target interactions for c-KIT.
Main Results:
- Virtual screening and docking show promise in identifying novel c-KIT inhibitors.
- Computational methods facilitate the analysis of essential compound characteristics for effective c-KIT binding.
- These approaches aid in discovering and designing inhibitors for both wild-type and mutant c-KIT.
Conclusions:
- Computational drug discovery, particularly virtual screening and docking, is crucial for developing new GIST therapies.
- Understanding c-KIT active site interactions through molecular modeling can guide the design of next-generation anticancer drugs.
- These methods offer a powerful complement to experimental studies in the fight against GISTs.
More Related Videos
10:25Screening Traditional Chinese Medicine Compounds for Inhibiting UCHL3 Activity Based on Molecular Docking and Deubiquitinating Enzyme Probe Technology
Published on: November 22, 2024
10:21Author Spotlight: Streamlining Protein Target Prediction and Validation via Molecular Docking and CETSA
Published on: February 23, 2024