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Updated: Apr 19, 2026

Analyzing Platelet Subpopulations by Multi-color Flow Cytometry
Published on: June 10, 2025
New explanations for old observations: marginal band coiling during platelet activation
1University Grenoble Alpes, IAB, Grenoble, France; INSERM, IAB, Grenoble, France; CHU de Grenoble, IAB, Grenoble, France.
Abstract:
Blood platelets are tiny cell fragments derived from megakaryocytes. Their primary function is to control blood vessel integrity and ensure hemostasis if a vessel wall is damaged. Circulating quiescent platelets have a flat, discoid shape maintained by a circumferential microtubule bundle, called the marginal band (MB). In the case of injury platelets are activated and rapidly adopt a spherical shape due to microtubule motor-induced elongation and subsequent coiling of the MB. Platelet activation and shape change can be transient or become irreversible. This depends on the strength of the activation stimulus, which is translated into a cytoskeletal crosstalk between microtubules, their motors and the actomyosin cortex, ensuring stimulus-response coupling. Following microtubule motor-driven disc-to-sphere transition, a strong stimulus will lead to compression of the sphere through actomyosin cortex contraction. This will concentrate the granules in the center of the platelet and accelerate their exocytosis. Once granules are released, platelets have crossed the point of no return to irreversible activation. This review summarizes the current knowledge of the molecular mechanism leading to platelet shape change, with a special emphasis on microtubules, and refers to previously published observations, which have been essential for generating an integrated view of cytoskeletal rearrangements during platelet activation.
Insights
Platelet shape change during activation involves microtubule dynamics and actomyosin cortex contraction. This process, crucial for hemostasis, can become irreversible based on stimulus strength, leading to granule release.
Area of Science:
- Hematology
- Cell Biology
- Biophysics
Background:
- Blood platelets are essential for hemostasis and blood vessel integrity.
- Quiescent platelets possess a discoid shape maintained by the marginal band (MB) microtubule bundle.
- Platelet activation triggers rapid shape changes crucial for their function.
Purpose of the Study:
- To review the molecular mechanisms underlying platelet shape change upon activation.
- To emphasize the role of microtubules and their interactions with motors and the actomyosin cortex.
- To integrate current knowledge on cytoskeletal rearrangements during platelet activation.
Main Methods:
- Literature review of existing studies on platelet activation and cytoskeletal dynamics.
- Analysis of molecular crosstalk between microtubules, motors, and the actomyosin cortex.
- Integration of observations on stimulus-response coupling and irreversible activation.
Main Results:
- Platelet activation involves microtubule motor-driven disc-to-sphere transition.
- Strong stimuli induce actomyosin cortex contraction, compressing the sphere and concentrating granules.
- Granule exocytosis marks an irreversible point of platelet activation.
Conclusions:
- Platelet shape change is a complex process regulated by cytoskeletal dynamics.
- Microtubules, motors, and the actomyosin cortex are key players in stimulus-response coupling.
- Understanding these mechanisms is vital for comprehending hemostasis and platelet function.
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