Interaction of microtubule depolymerizing agent indanocine with different human αβ tubulin isotypes
Bajarang Vasant Kumbhar1, Dulal Panda1, Ambarish Kunwar1
1Department of Biosciences and Bioengineering, Indian Institute of Technology Bombay, Powai, Mumbai, Maharashtra, India.
Abstract:
Tubulin isotypes are known to regulate the stability and dynamics of microtubules, and are also involved in the development of resistance against microtubule-targeted cancer drugs. Indanocine, a potent microtubule depolymerizing agent, is highly active against multidrug-resistant (MDR) cancer cells without affecting normal cells. It is known to disrupt microtubule dynamics in cells and induce apoptotic cell death. Indanocine is reported to bind to tubulin at the colchicine site i.e. at the interface of αβ tubulin heterodimer. However, it's precise binding mode, involved molecular interactions and the binding affinities with different αβ-tubulin isotypes present in MDR cells are not well understood. Here, the binding affinities of human αβ-tubulin isotypes with indanocine were examined, employing the molecular modeling approach i.e. docking, molecular dynamics simulation and binding energy calculations. Multiple sequence analysis suggests that the amino acid sequences are different in the indanocine binding pockets of βI, βIIa, βIII and βVI isotypes. However, such differences are not observed in the amino acid sequences of βIVa, βIVb, and βV tubulin isotypes at indanocine binding pockets. Docking and molecular dynamics simulation results show that indanocine prefers the interface binding pocket of αβIIa, αβIII, αβIVb, αβV, and αβVI tubulin isotypes; whereas it is expelled from the interface binding pocket of αβIVa and αβI-tubulin isotypes. Further, binding free energy calculations show that αβVI has the highest binding affinity and αβI has the lowest binding affinity for indanocine among all β-tubulin isotypes. The binding free energy decreases in the order of αβVI > αβIVb > αβIIa > αβIII > αβV > αβIVa > αβI. Thus, our study provides a significant understanding of involved molecular interactions of indanocine with tubulin isotypes, which may help to design potent indanocine analogues for specific tubulin isotypes in MDR cells in future.
Insights
Indanocine effectively targets multidrug-resistant (MDR) cancer cells by binding to specific tubulin isotypes. This study reveals indanocine
Area of Science:
- Molecular Biology
- Biochemistry
- Computational Chemistry
Background:
- Tubulin isotypes influence microtubule dynamics and drug resistance in cancer.
- Indanocine is a potent microtubule depolymerizing agent active against multidrug-resistant (MDR) cancer cells.
- The precise binding mode and affinities of indanocine to various tubulin isotypes are not fully understood.
Purpose of the Study:
- To investigate the binding affinities and molecular interactions of indanocine with human αβ-tubulin isotypes.
- To elucidate the binding preferences of indanocine across different tubulin isotypes found in MDR cells.
Main Methods:
- Molecular modeling techniques including docking, molecular dynamics simulations, and binding free energy calculations were employed.
- Comparative analysis of amino acid sequences in the indanocine binding pockets of different tubulin isotypes.
Main Results:
- Sequence analysis revealed variations in indanocine binding pockets among β-tubulin isotypes (βI, βIIa, βIII, βVI) but not others (βIVa, βIVb, βV).
- Docking and simulations indicated indanocine prefers binding to αβIIa, αβIII, αβIVb, αβV, and αβVI, but is expelled from αβIVa and αβI.
- Binding free energy calculations showed highest affinity for αβVI and lowest for αβI, with the order: αβVI > αβIVb > αβIIa > αβIII > αβV > αβIVa > αβI.
Conclusions:
- This study provides a detailed understanding of indanocine's molecular interactions with various tubulin isotypes.
- The findings can guide the design of novel indanocine analogs targeting specific tubulin isotypes in MDR cancer cells.
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