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β3 accelerates microtubule plus end maturation through a divergent lateral interface.
Lisa M Wood1, Jeffrey K Moore1
1Department of Cell and Developmental Biology, University of Colorado Anschutz Medical Campus, Aurora, CO, USA.
Biorxiv : the Preprint Server for Biology
|July 29, 2024
Summary
Beta-tubulin isotype β3 (TUBB3) has unique functions in cancer and chemoresistance. Specific residues at its lateral interface alter microtubule dynamics and paclitaxel resistance by affecting lattice maturation.
Area of Science:
- Cell Biology
- Biochemistry
- Molecular Biology
Background:
- Beta-tubulin isotypes share sequence similarity but possess distinct biological activities.
- The beta-tubulin isotype TUBB3 (β3) is implicated in aggressive cancers and chemoresistance.
- Functional divergence despite sequence similarity suggests critical roles for specific residues.
Purpose of the Study:
- To investigate the functional importance of limited sequence divergence in beta-tubulin isotypes.
- To elucidate the mechanistic basis for the unique activity of TUBB3/β3.
- To determine how TUBB3/β3 influences microtubule dynamics and response to chemotherapy.
Main Methods:
- Created mutant yeast strains expressing beta-tubulin alleles mimicking TUBB3 variant residues.
- Utilized HeLa cells to study the effects of β3 overexpression on microtubule dynamics.
- Analyzed microtubule growth, EB binding, and response to paclitaxel in wild-type and mutant cells.
Main Results:
- Residues at the lateral interface of β3 are sufficient to modify microtubule dynamics and response to microtubule-targeting agents.
- Overexpression of β3 in HeLa cells reduces microtubule growth lifetime, dependent on lateral interface residues.
- Microtubules with β3 show faster lattice maturation and resistance to paclitaxel, requiring specific lateral interface regions (H1-S2 and H2-S3).
Conclusions:
- Identified specific residues at the lateral interface of β3 as key determinants of its unique functional activity.
- Demonstrated that β3 tubulin influences microtubule lattice maturation rate at the growing plus end.
- Suggests that differential tubulin isotype expression can modulate cellular responses to microtubule-targeting drugs.
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