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Updated: Feb 3, 2026

Quantitative Microtubule Fractionation Technique to Separate Stable Microtubules, Labile Microtubules, and Free Tubulin in Mouse Tissues
Published on: November 17, 2023
Microtubule polyglutamylation and acetylation drive microtubule dynamics critical for platelet formation
Juliette van Dijk1,2, Guillaume Bompard1,3, Julien Cau1,3,4
1Universités de Montpellier, 34293, Montpellier, France.
Background:
Upon maturation in the bone marrow, polyploid megakaryocytes elongate very long and thin cytoplasmic branches called proplatelets. Proplatelets enter the sinusoids blood vessels in which platelets are ultimately released. Microtubule dynamics, bundling, sliding, and coiling, drive these dramatic morphological changes whose regulation remains poorly understood. Microtubule properties are defined by tubulin isotype composition and post-translational modification patterns. It remains unknown whether microtubule post-translational modifications occur in proplatelets and if so, whether they contribute to platelet formation.
Results:
Here, we show that in proplatelets from mouse megakaryocytes, microtubules are both acetylated and polyglutamylated. To bypass the difficulties of working with differentiating megakaryocytes, we used a cell model that allowed us to test the functions of these modifications. First, we show that α2bβ3integrin signaling in D723H cells is sufficient to induce β1tubulin expression and recapitulate the specific microtubule behaviors observed during proplatelet elongation and platelet release. Using this model, we found that microtubule acetylation and polyglutamylation occur with different spatio-temporal patterns. We demonstrate that microtubule acetylation, polyglutamylation, and β1tubulin expression are mandatory for proplatelet-like elongation, swelling formation, and cytoplast severing. We discuss the functional importance of polyglutamylation of β1tubulin-containing microtubules for their efficient bundling and coiling during platelet formation.
Conclusions:
We characterized and validated a powerful cell model to address microtubule behavior in mature megakaryocytes, which allowed us to demonstrate the functional importance of microtubule acetylation and polyglutamylation for platelet release. Furthermore, we bring evidence of a link between the expression of a specific tubulin isotype, the occurrence of microtubule post-translational modifications, and the acquisition of specific microtubule behaviors. Thus, our findings could widen the current view of the regulation of microtubule behavior in cells such as osteoclasts, spermatozoa, and neurons, which express distinct tubulin isotypes and display specific microtubule activities during differentiation.
Insights
Microtubule acetylation and polyglutamylation are essential for platelet formation. These post-translational modifications, along with β1-tubulin expression, drive proplatelet elongation and release.
Area of Science:
- Cell Biology
- Molecular Biology
- Hematology
Background:
- Megakaryocytes mature in bone marrow, forming proplatelets for platelet release.
- Microtubule dynamics are critical for proplatelet elongation and platelet formation.
- Regulation of microtubule dynamics in proplatelets is poorly understood.
Purpose of the Study:
- Investigate microtubule post-translational modifications in proplatelets.
- Determine the role of acetylation and polyglutamylation in platelet formation.
- Establish a cell model to study these processes.
Main Methods:
- Utilized a D723H cell model to mimic megakaryocyte differentiation.
- Analyzed microtubule acetylation and polyglutamylation patterns.
- Assessed the impact of β1-tubulin expression on microtubule behavior.
Main Results:
- Demonstrated acetylation and polyglutamylation of microtubules in proplatelets.
- Showed that β1-tubulin expression is induced by α2bβ3integrin signaling.
- Confirmed that acetylation, polyglutamylation, and β1-tubulin are mandatory for proplatelet elongation and platelet release.
Conclusions:
- Validated a cell model for studying microtubule dynamics in megakaryocytes.
- Established the functional importance of microtubule acetylation and polyglutamylation in platelet release.
- Linked tubulin isotype expression, PTMs, and microtubule behaviors to platelet formation.
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