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PMID: 21791726 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Taking directions: the role of microtubule-bound nucleation in the self-organization of the plant cortical array.

Physical biology ·Vol. 8 ·No. 5 ·2011-10-00 ·Pages 056002

Deinum EE, Tindemans SH, Mulder BM

Abstract

The highly aligned cortical microtubule array of interphase plant cells is a key regulator of anisotropic cell expansion. Recent computational and analytical work has shown that the non-equilibrium self-organization of this structure can be understood on the basis of experimentally observed collisional interactions between dynamic microtubules attached to the plasma membrane. Most of these approaches assumed that new microtubules are homogeneously and isotropically nucleated on the cortical surface. Experimental evidence, however, shows that nucleation mostly occurs from other microtubules and under specific relative angles. Here, we investigate the impact of directed microtubule-bound nucleations on the alignment process using computer simulations. The results show that microtubule-bound nucleations can increase the degree of alignment achieved, decrease the timescale of the ordering process and widen the regime of dynamic parameters for which the system can self-organize. We establish that the major determinant of this effect is the degree of co-alignment of the nucleations with the parent microtubule. The specific role of sideways branching nucleations appears to allow stronger alignment while maintaining a measure of overall spatial homogeneity. Finally, we investigate the suggestion that observed persistent rotation of microtubule domains can be explained through a handedness bias in microtubule-bound nucleations, showing that this is possible only for an extreme bias and over a limited range of parameters.

MeSH Terms
Computer Simulation Cytoskeleton/physiology Microtubules/ultrastructure Plants/ultrastructure Tubulin/physiology
Chemicals
Tubulin
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Deinum Eva E
Department of Biomolecular Systems, FOM institute AMOLF, Science Park 104, 1098 XG Amsterdam, The Netherlands. e.deinum@amolf.nl
Tindemans Simon H
Mulder Bela M
Article Info
Journal
Physical biology
Abbr.
Phys Biol
ISSN
1478-3975
Published
2011-10-00
Epub
2011-00-26
Pages
056002
Language
English
Region
England
NLM ID
101197454
Subset
IM
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