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PMID: 21535258 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Cortical microtubules optimize cell-wall crystallinity to drive unidirectional growth in Arabidopsis.

The Plant journal : for cell and molecular biology ·Vol. 66 ·No. 6 ·2011-06-00 ·Pages 915-28

Fujita M, Himmelspach R, Hocart CH, Williamson RE, Mansfield SD, Wasteneys GO

Abstract

The shape of plants depends on cellulose, a biopolymer that self-assembles into crystalline, inextensible microfibrils (CMFs) upon synthesis at the plasma membrane by multi-enzyme cellulose synthase complexes (CSCs). CSCs are displaced in directions predicted by underlying parallel arrays of cortical microtubules, but CMFs remain transverse in cells that have lost the ability to expand unidirectionally as a result of disrupted microtubules. These conflicting findings suggest that microtubules are important for some physico-chemical property of cellulose that maintains wall integrity. Using X-ray diffraction, we demonstrate that abundant microtubules enable a decrease in the degree of wall crystallinity during rapid growth at high temperatures. Reduced microtubule polymer mass in the mor1-1 mutant at high temperatures is associated with failure of crystallinity to decrease and a loss of unidirectional expansion. Promotion of microtubule bundling by over-expressing the RIC1 microtubule-associated protein reduced the degree of crystallinity. Using live-cell imaging, we detected an increase in the proportion of CSCs that track in microtubule-free domains in mor1-1, and an increase in the CSC velocity. These results suggest that microtubule domains affect glucan chain crystallization during unidirectional cell expansion. Microtubule disruption had no obvious effect on the orientation of CMFs in dark-grown hypocotyl cells. CMFs at the outer face of the hypocotyl epidermal cells had highly variable orientation, in contrast to the transverse CMFs on the radial and inner periclinal walls. This suggests that the outer epidermal mechanical properties are relatively isotropic, and that axial expansion is largely dependent on the inner tissue layers.

MeSH Terms
Arabidopsis/chemistry,genetics,growth & development Arabidopsis Proteins/metabolism Cell Enlargement Cell Membrane/chemistry Cell Wall/chemistry Cellulose/metabolism Darkness Genotype Hypocotyl/chemistry,growth & development Inflorescence/chemistry,growth & development Microfibrils/metabolism Microtubule-Associated Proteins/metabolism Microtubules/metabolism Multienzyme Complexes/metabolism Mutation Temperature X-Ray Diffraction
Chemicals
Arabidopsis Proteins Microtubule-Associated Proteins Multienzyme Complexes Cellulose
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Fujita Miki
Department of Botany, University of British Columbia, 6270 University Boulevard, Vancouver, British Columbia, V6T 1Z4, Canada.
Himmelspach Regina
Hocart Charles H
Williamson Richard E
Mansfield Shawn D
Wasteneys Geoffrey O
Article Info
Journal
The Plant journal : for cell and molecular biology
Abbr.
Plant J
ISSN
1365-313X
Published
2011-06-00
Epub
2011-00-28
Pages
915-28
Language
English
Region
England
NLM ID
9207397
Subset
IM
Grants
Canadian Institutes of Health Research · 178544 · Canada
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