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2-(m-Azidobenzoyl)taxol binds differentially to distinct β-tubulin isotypes
Chia-Ping Huang Yang1, Eng-Hui Yap2, Hui Xiao3
1Department of Molecular Pharmacology, Albert Einstein College of Medicine, Bronx, NY 10461; Department of Obstetrics and Gynecology and Women's Health, Division of Gynecologic Oncology, Albert Einstein College of Medicine, Bronx, NY 10461; chia-ping.h.yang@einstein.yu.edu susan.horwitz@einstein.yu.edu.
Abstract:
There are seven β-tubulin isotypes present in distinct quantities in mammalian cells of different origin. Altered expression of β-tubulin isotypes has been reported in cancer cell lines resistant to microtubule stabilizing agents (MSAs) and in human tumors resistant to Taxol. To study the relative binding affinities of MSAs, tubulin from different sources, with distinct β-tubulin isotype content, were specifically photolabeled with a tritium-labeled Taxol analog, 2-(m-azidobenzoyl)taxol, alone or in the presence of MSAs. The inhibitory effects elicited by these MSAs on photolabeling were distinct for β-tubulin from different sources. To determine the exact amount of drug that binds to different β-tubulin isotypes, bovine brain tubulin was photolabeled and the isotypes resolved by high-resolution isoelectrofocusing. All bands were analyzed by mass spectrometry following cyanogen bromide digestion, and the identity and relative quantity of each β-tubulin isotype determined. It was found that compared with other β-tubulin isotypes, βIII-tubulin bound the least amount of 2-(m-azidobenzoyl)taxol. Analysis of the sequences of β-tubulin near the Taxol binding site indicated that, in addition to the M-loop that is known to be involved in drug binding, the leucine cluster region of βIII-tubulin contains a unique residue, alanine, at 218, compared with other isotypes that contain threonine. Molecular dynamic simulations indicated that the frequency of Taxol-accommodating conformations decreased dramatically in the T218A variant, compared with other β-tubulins. Our results indicate that the difference in residue 218 in βIII-tubulin may be responsible for inhibition of drug binding to this isotype, which could influence downstream cellular events.
Insights
Microtubule stabilizing agents (MSAs) show varied binding affinities to different beta-tubulin isotypes. Beta-III tubulin exhibits lower binding due to a unique alanine residue, impacting drug efficacy in cancer treatment.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Seven beta-tubulin isotypes exist in mammalian cells, with altered expression linked to drug resistance.
- Microtubule stabilizing agents (MSAs) like Taxol are crucial in cancer therapy.
- Drug resistance in cancer is often associated with changes in beta-tubulin isotype expression.
Purpose of the Study:
- To investigate the binding affinities of MSAs to different beta-tubulin isotypes.
- To elucidate the molecular basis for differential drug binding among beta-tubulin isotypes.
- To understand how isotype-specific drug binding influences cellular responses and treatment outcomes.
Main Methods:
- Photolabeling of tubulin with a tritium-labeled Taxol analog.
- High-resolution isoelectrofocusing to resolve beta-tubulin isotypes.
- Mass spectrometry for isotype identification and quantification.
- Molecular dynamic simulations to analyze drug-binding conformations.
Main Results:
- Distinct inhibitory effects of MSAs were observed across different beta-tubulin isotypes.
- Beta-III tubulin showed the least binding affinity for the Taxol analog compared to other isotypes.
- A unique alanine residue at position 218 in beta-III tubulin was identified as a key difference near the drug-binding site.
- Molecular simulations confirmed reduced Taxol-accommodating conformations in the beta-III tubulin variant.
Conclusions:
- The unique alanine at position 218 in beta-III tubulin significantly reduces Taxol binding.
- Differential drug binding to beta-tubulin isotypes can influence the efficacy of microtubule-targeting agents.
- Understanding these isotype-specific interactions is crucial for developing more effective cancer therapies.
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