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Updated: Jun 27, 2026

Rapid and Robust Analysis of Cellular and Molecular Polarization Induced by Chemokine Signaling
Published on: December 12, 2014
An experimental and computational study of effects of microtubule stabilization on T-cell polarity
Arie Baratt1, Sergey N Arkhipov, Ivan V Maly
1Department of Computational Biology, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania, United States of America.
Abstract:
T-killer cells eliminate infected and cancerous cells with precision by positioning their centrosome near the interface (immunological synapse) with the target cell. The mechanism of centrosome positioning has remained controversial, in particular the role of microtubule dynamics in it. We re-examined the issue in the experimental model of Jurkat cells presented with a T cell receptor-binding artificial substrate, which permits controlled stimulation and reproducible measurements. Neither 1-microM taxol nor 100-nM nocodazole inhibited the centrosome positioning at the "synapse" with the biomimetic substrate. At the same time, in micromolar taxol but not in nanomolar nocodazole the centrosome adopted a distinct peripheral rather than the normally central position within the synapse. This effect was reproduced in a computational energy-minimization model that assumed no microtubule dynamics, but only a taxol-induced increase in the length of the microtubules. Together, the experimental and computational results indicate that microtubule dynamics are not essential for the centrosome positioning, but that the fit of the microtubule array in the deformed body of the conjugated T cell is a major factor. The possibility of modulating the T-cell centrosome position with well-studied drugs and of predicting their effects in silico appears attractive for designing anti-cancer and antiviral therapies.
Insights
Microtubule dynamics are not essential for T-killer cell centrosome positioning. Cell shape and microtubule length, not dynamics, dictate positioning at the immunological synapse for targeted cell elimination.
Area of Science:
- Immunology
- Cell Biology
- Biophysics
Background:
- T-killer cells precisely eliminate target cells by positioning their centrosome at the immunological synapse.
- The precise mechanism of centrosome positioning, particularly the role of microtubule dynamics, remains debated.
Purpose of the Study:
- To investigate the role of microtubule dynamics in T-killer cell centrosome positioning.
- To determine factors influencing centrosome localization at the immunological synapse.
Main Methods:
- Utilized Jurkat cells stimulated with a T cell receptor-binding artificial substrate.
- Administered taxol and nocodazole to modulate microtubule dynamics.
- Developed a computational energy-minimization model to simulate microtubule behavior.
Main Results:
- Neither taxol nor nocodazole inhibited centrosome positioning at the synapse.
- Micromolar taxol, but not nanomolar nocodazole, shifted centrosome position peripherally.
- Computational models confirmed that increased microtubule length, not dynamics, influenced positioning.
Conclusions:
- Microtubule dynamics are not essential for centrosome positioning at the immunological synapse.
- The physical constraints of the microtubule array within the cell's deformed shape are critical.
- Modulating centrosome position via drugs offers potential therapeutic strategies for cancer and viral infections.
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