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Updated: Jun 26, 2026

Self-Assembly of Microtubule Tactoids
Published on: June 23, 2022
Establishing new sites of polarization by microtubules
Nicolas Minc1, Scott V Bratman, Roshni Basu
1Department of Microbiology, College of Physicians and Surgeons, Columbia University, 701W 168th Street, New York, NY 10032, USA.
Background:
Microtubules (MTs) participate in the spatial regulation of actin-based processes such as cytokinesis and cell polarization. The fission yeast Schizosaccharomyces pombe is a rod-shaped cell that exhibits polarized cell growth at cell tips. MT plus ends contact and shrink from the cell tips and contribute to polarity regulation.
Results:
Here, we investigate the effects of changing cell shape on MTs and cell-polarization machinery. We physically bend fission yeast cells by forcing them into microfabricated femtoliter chambers. In these bent cells, MTs maintain a straight axis and contact and shrink from cortical sites at the sides of cells. At these ectopic sites, polarity factors such as bud6p, for3p (formin), and cdc42p are recruited and assemble actin cables in a MT-dependent manner. MT contact at the cortex induces the appearance of a bud6p dot within seconds. The accumulation of polarity factors leads to cell growth at these sites, when the MT-associated polarity factor tea1p is absent. This process is dependent on MTs, mal3p (EB1), moe1p (an EB1-binding protein), and for3p but, surprisingly, is independent of the tea1p-tea4p pathway.
Conclusions:
These studies provide a direct demonstration for how MTs induce actin assembly at specific locations on the cell cortex and begin to identify a new pathway involved in this process. MT interactions with the cortex may be regulated by cortical-attachment sites. These findings highlight the crosstalk between cell shape, polarity mechanisms, and MTs responsible for cell morphogenesis.
Insights
Microtubules (MTs) guide actin cable formation in bent yeast cells, revealing a new pathway for cell polarization independent of the known tea1p-tea4p pathway. This highlights the interplay between cell shape, MTs, and morphogenesis.
Area of Science:
- Cell Biology
- Cytoskeletal Dynamics
- Microbiology
Background:
- Microtubules (MTs) are crucial for spatial regulation of actin-based processes like cell polarization in fission yeast (Schizosaccharomyces pombe).
- Fission yeast exhibits polarized growth at cell tips, with MT plus ends contacting and shrinking from these sites to regulate polarity.
Purpose of the Study:
- To investigate how altered cell shape affects MT organization and the cell-polarization machinery.
- To understand the mechanisms by which MTs induce actin assembly at specific cortical sites.
Main Methods:
- Physically bending fission yeast cells using microfabricated femtoliter chambers.
- Observing MT behavior and recruitment of polarity factors (bud6p, for3p, cdc42p) in bent cells.
- Assessing the MT-dependent nature of actin cable assembly and cell growth at ectopic sites.
Main Results:
- Bent yeast cells show MTs maintaining a straight axis and contacting cortical sites at cell sides.
- Polarity factors are recruited to these ectopic sites, initiating MT-dependent actin cable assembly.
- Cell growth occurs at these sites, dependent on MTs, mal3p (EB1), moe1p, and for3p, but surprisingly independent of the tea1p-tea4p pathway.
Conclusions:
- MTs directly induce actin assembly at specific cortical locations, identifying a novel regulatory pathway.
- Cortical-attachment sites may regulate MT interactions with the cell cortex.
- Cell shape, MTs, and polarity mechanisms are interconnected, influencing cell morphogenesis.
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