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Molecular basis for class V beta-tubulin effects on microtubule assembly and paclitaxel resistance
Rajat Bhattacharya1, Fernando Cabral
1Department of Integrative Biology and Pharmacology, The University of Texas Medical School, Houston, TX 77030, USA.
Abstract:
Vertebrates produce at least seven distinct beta-tubulin isotypes that coassemble into all cellular microtubules. The functional differences among these tubulin isoforms are largely unknown, but recent studies indicate that tubulin composition can affect microtubule properties and cellular microtubule-dependent behavior. One of the isotypes whose incorporation causes the largest change in microtubule assembly is beta5-tubulin. Overexpression of this isotype can almost completely destroy the microtubule network, yet it appears to be required in smaller amounts for normal mitotic progression. Moderate levels of overexpression can also confer paclitaxel resistance. Experiments using chimeric constructs and site-directed mutagenesis now indicate that the hypervariable C-terminal region of beta5 plays no role in these phenotypes. Instead, we demonstrate that two residues found in beta5 (Ser-239 and Ser-365) are each sufficient to inhibit microtubule assembly and confer paclitaxel resistance when introduced into beta1-tubulin; yet the single mutation of residue Ser-239 in beta5 eliminates its ability to confer these phenotypes. Despite the high degree of conservation among beta-tubulin isotypes, mutations affecting residue 365 demonstrate that amino acid substitutions can be context sensitive; i.e. an amino acid change in one isotype will not necessarily produce the same phenotype when introduced into a different isotype. Modeling studies indicate that residue Cys-239 of beta1-tubulin is close to a highly conserved Cys-354 residue suggesting the possibility that disulfide formation could play a significant role in the stability of microtubules formed with beta1- but not with beta5-tubulin.
Insights
Beta5-tubulin significantly impacts microtubule assembly and paclitaxel resistance. Specific residues in beta5-tubulin, not its C-terminal region, drive these effects, highlighting isotype-specific functions.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Vertebrates express seven beta-tubulin isotypes that form microtubules.
- Functional distinctions between these isotypes are poorly understood.
- Tubulin composition influences microtubule dynamics and cellular functions.
Purpose of the Study:
- Investigate the functional impact of beta5-tubulin on microtubule assembly.
- Identify the specific molecular determinants responsible for beta5-tubulin's effects.
- Explore the role of specific amino acid residues in conferring phenotypes like paclitaxel resistance.
Main Methods:
- Site-directed mutagenesis and chimeric construct analysis.
- Overexpression studies of beta-tubulin isotypes.
- Computational modeling of tubulin structures.
Main Results:
- Beta5-tubulin incorporation drastically alters microtubule networks and confers paclitaxel resistance.
- Specific residues (Ser-239 and Ser-365) in beta5-tubulin are key to its function.
- Mutating Ser-239 in beta5-tubulin abolishes its phenotype-conferring ability.
- Amino acid substitutions' effects are context-dependent on the tubulin isotype.
Conclusions:
- Beta5-tubulin's unique properties stem from specific amino acid residues, not its C-terminus.
- Microtubule assembly and drug resistance are modulated by specific beta-tubulin isotypes.
- Context sensitivity of mutations underscores the complexity of tubulin isotype function.
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