TANGLED1 mediates microtubule interactions that may promote division plane positioning in maize

Author:

Martinez Pablo1ORCID,Dixit Ram2ORCID,Balkunde Rachappa S.2ORCID,Zhang Antonia3ORCID,O’Leary Seán E.13ORCID,Brakke Kenneth A.4ORCID,Rasmussen Carolyn G.15ORCID

Affiliation:

1. Biochemistry and Molecular Biology Graduate Program, University of California, Riverside, CA

2. Department of Biology and Center for Engineering Mechanobiology, Washington University in St. Louis, St. Louis, MO

3. Department of Biochemistry, University of California, Riverside, CA

4. Department of Mathematics, Susquehanna University, Selinsgrove, PA

5. Department of Botany and Plant Sciences, Center for Plant Cell Biology, Institute for Integrative Genome Biology, University of California, Riverside, CA

Abstract

The microtubule cytoskeleton serves as a dynamic structural framework for mitosis in eukaryotic cells. TANGLED1 (TAN1) is a microtubule-binding protein that localizes to the division site and mitotic microtubules and plays a critical role in division plane orientation in plants. Here, in vitro experiments demonstrate that TAN1 directly binds microtubules, mediating microtubule zippering or end-on microtubule interactions, depending on their contact angle. Maize tan1 mutant cells improperly position the preprophase band (PPB), which predicts the future division site. However, cell shape–based modeling indicates that PPB positioning defects are likely a consequence of abnormal cell shapes and not due to TAN1 absence. In telophase, colocalization of growing microtubules ends from the phragmoplast with TAN1 at the division site suggests that TAN1 interacts with microtubule tips end-on. Together, our results suggest that TAN1 contributes to microtubule organization to ensure proper division plane orientation.

Funder

National Science Foundation

National Institute of Food and Agriculture

Ford Foundation

Publisher

Rockefeller University Press

Subject

Cell Biology

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