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PMID: 14617086 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Cellulose microfibril alignment recovers from DCB-induced disruption despite microtubule disorganization.

The Plant journal : for cell and molecular biology ·Vol. 36 ·No. 4 ·2003-11-00 ·Pages 565-75

Himmelspach R, Williamson RE, Wasteneys GO

Abstract

Cellulose microfibril deposition patterns define the direction of plant cell expansion. To better understand how microfibril alignment is controlled, we examined microfibril orientation during cortical microtubule disruption using the temperature-sensitive mutant of Arabidopsis thaliana, mor1-1. In a previous study, it was shown that at restrictive temperature for mor1-1, cortical microtubules lose transverse orientation and cells lose growth anisotropy without any change in the parallel arrangement of cellulose microfibrils. In this study, we investigated whether a pre-existing template of well-ordered microfibrils or the presence of well-organized cortical microtubules was essential for the cell to resume deposition of parallel microfibrils. We first transiently disrupted the parallel order of microfibrils in mor1-1 using a brief treatment with the cellulose synthesis inhibitor 2,6-dichlorobenzonitrile (DCB). We then analysed the alignment of recently deposited cellulose microfibrils (by field emission scanning electron microscopy) as cellulose synthesis recovered and microtubules remained disrupted at the mor1-1 mutant's non-permissive culture temperature. Despite the disordered cortical microtubules and an initially randomized wall texture, new cellulose microfibrils were deposited with parallel, transverse orientation. These results show that transverse cellulose microfibril deposition requires neither accurately transverse cortical microtubules nor a pre-existing template of well-ordered microfibrils. We also demonstrated that DCB treatments reduced the ability of cortical microtubules to form transverse arrays, supporting a role for cellulose microfibrils in influencing cortical microtubule organization.

MeSH Terms
Arabidopsis/drug effects,genetics,metabolism Cellulose/metabolism,ultrastructure Herbicides/pharmacology Microscopy, Electron, Scanning/methods Microtubules/drug effects,metabolism,ultrastructure Mutation Nitriles/pharmacology Plant Roots/growth & development,metabolism,ultrastructure Temperature
Chemicals
Herbicides Nitriles Cellulose dichlobanil
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Himmelspach Regina
Plant Cell Biology Group, Research School of Biological Sciences, The Australian National University, Canberra ACT 2601, Australia.
Williamson Richard E
Wasteneys Geoffrey O
Article Info
Journal
The Plant journal : for cell and molecular biology
Abbr.
Plant J
ISSN
0960-7412
Published
2003-11-00
Pages
565-75
Language
English
Region
England
NLM ID
9207397
Subset
IM
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