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Structural basis for drug resistance conferred by β-tubulin mutations: a molecular modeling study on native and
Karen R Navarrete1, Joel B Alderete1, Verónica A Jiménez2
1a Facultad de Ciencias Químicas, Departamento de Química Orgánica , Universidad de Concepción , Casilla 160-C, Concepcion , Chile.
Abstract:
Using molecular modeling, we have investigated the structure and dynamic properties of epothilone B-tubulin complexes with wild-type and mutated tubulin, aimed at identifying the molecular factors involved in the emergence of drug resistance induced by four protein mutations at Phe270Val, Thr274Ile, Arg282Gln, and Gln292Glu. Our results revealed that tubulin mutations render significant changes in the protein conformation in regions involved either in the binding of the ligand or in interdimer contacts that are relevant to the assembly of stable microtubules. In addition, point mutations induce drastic changes in the binding pose of the ligand and in the interaction networks responsible for the epothilone-tubulin association. Large ligand displacements inside the binding pocket and an overall decrease in the strength of drug-receptor polar contacts suggest a looser binding of the ligand in tubulin mutants. These results explain the loss of activity for epothilone B against cancer cells that contain tubulin mutants and provide valuable information to enhance the understanding of the atomic source of epothilones' activity, which can be helpful to conduct further research on the rational design of more potent therapeutic tubulin-binding agents.
Insights
Drug resistance in cancer cells emerges from tubulin mutations that alter epothilone B binding. Molecular modeling reveals looser drug-receptor interactions, explaining reduced drug efficacy against mutated tubulin.
Area of Science:
- Molecular biology
- Structural biology
- Pharmacology
Background:
- Epothilone B is a potent anti-cancer drug targeting tubulin.
- Drug resistance can arise from mutations in target proteins, affecting drug efficacy.
- Understanding these resistance mechanisms is crucial for developing new therapeutics.
Purpose of the Study:
- To investigate the structural and dynamic effects of specific tubulin mutations on epothilone B binding.
- To identify molecular factors contributing to epothilone B resistance.
- To provide insights for the rational design of novel anti-cancer agents.
Main Methods:
- Molecular modeling techniques were employed.
- Analysis of wild-type and mutated tubulin-epothilone B complexes.
- Investigation of protein conformation, ligand binding pose, and interaction networks.
Main Results:
- Tubulin mutations significantly alter protein conformation in ligand-binding and microtubule assembly regions.
- Mutations cause drastic changes in epothilone B binding pose and interaction networks.
- A looser ligand binding and decreased polar contacts were observed in mutated tubulin, explaining reduced drug activity.
Conclusions:
- The study explains the loss of epothilone B activity against cancer cells with specific tubulin mutations.
- Findings elucidate the atomic basis of epothilone activity and drug resistance.
- Results can guide the development of more potent tubulin-binding anti-cancer drugs.
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