Exploring the impact of F270V mutation in the β-tubulin (Bos Taurus) structure and its function: a computational
1Industrial Biotechnology Division, School of Bio Sciences and Technology, VIT University, Vellore, 632014, Tamil Nadu, India.
Abstract:
Paclitaxel is the most effective chemotherapeutic agent used for the treatment of a broad spectrum of solid tumors. However, observed paclitaxel resistance in clinical trials presents one of the major obstacles for cancer chemotherapy. Most importantly, resistance due to β-tubulin mutations (F270V) has been intensely debated in recent years. Despite all efforts, mechanism of resistance is still not well understood. In this study, computational techniques were employed to uncover the effect of F270V mutation in the β-tubulin structure and its function. The tools such as MuStab, CUPSAT and I-Mutant were employed to address the consequence of F270V mutation in the structural stability of β-tubulin. Further, molecular simulation study was employed to understand the functional impact of β-tubulin mutation. We believe that this study will provide useful guidance for the development of novel inhibitors that are less susceptible to drug resistance.
Insights
Paclitaxel resistance in cancer chemotherapy is a major challenge. This study used computational methods to understand how the F270V mutation in β-tubulin causes resistance, guiding the development of new drugs.
Area of Science:
- Biochemistry
- Computational Biology
- Oncology
Background:
- Paclitaxel is a key chemotherapy for solid tumors.
- Drug resistance, particularly due to β-tubulin mutations like F270V, hinders treatment efficacy.
- The precise mechanisms of paclitaxel resistance driven by β-tubulin mutations remain unclear.
Purpose of the Study:
- To investigate the structural and functional consequences of the F270V mutation in β-tubulin.
- To elucidate the molecular mechanisms underlying paclitaxel resistance.
- To provide insights for developing novel, resistance-evading anti-cancer agents.
Main Methods:
- Utilized computational tools including MuStab, CUPSAT, and I-Mutant to assess structural stability changes.
- Performed molecular simulation studies to analyze the functional impact of the F270V mutation.
- Employed in silico techniques to model protein behavior and drug interactions.
Main Results:
- The F270V mutation significantly impacts the structural stability of β-tubulin.
- Molecular simulations revealed functional alterations in β-tubulin due to the mutation.
- These changes provide a mechanistic basis for observed paclitaxel resistance.
Conclusions:
- The F270V mutation in β-tubulin contributes to paclitaxel resistance through structural and functional modifications.
- Computational approaches are valuable for understanding drug resistance mechanisms.
- Findings can inform the design of next-generation chemotherapy inhibitors less prone to resistance.
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