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Fasciclin-like arabinogalactan proteins: specialization for stem biomechanics and cell wall architecture in Arabidopsis and Eucalyptus

dc.contributor.authorMacMillan, Colleen P.
dc.contributor.authorMansfield, Shawn
dc.contributor.authorStachurski, Zbigniew
dc.contributor.authorEvans, Robert
dc.contributor.authorSoutherton, Simon G.
dc.date.accessioned2015-12-10T22:59:25Z
dc.date.issued2010
dc.date.updated2016-02-24T11:02:07Z
dc.description.abstractThe ancient cell adhesion fasciclin (FAS) domain is found in bacteria, fungi, algae, insects and animals, and occurs in a large family of fasciclin-like arabinogalactan proteins (FLAs) in higher plants. Functional roles for FAS-containing proteins have been determined for insects, algae and vertebrates; however, the biological functions of the various higher-plant FLAs are not clear. Expression of some FLAs has been correlated with the onset of secondary-wall cellulose synthesis in Arabidopsis stems, and also with wood formation in the stems and branches of trees, suggesting a biological role in plant stems. We examined whether FLAs contribute to plant stem biomechanics. Using phylogenetic, transcript abundance and promoter-GUS fusion analyses, we identified a conserved subset of single FAS domain FLAs (group A FLAs) in Eucalyptus and Arabidopsis that have specific and high transcript abundance in stems, particularly in stem cells undergoing secondary-wall deposition, and that the phylogenetic conservation appears to extend to other dicots and monocots. Gene-function analyses revealed that Arabidopsis T-DNA knockout double mutant stems had altered stem biomechanics with reduced tensile strength and a reduced tensile modulus of elasticity, as well as altered cell-wall architecture and composition, with increased cellulose microfibril angle and reduced arabinose, galactose and cellulose content. Using materials engineering concepts, we relate the effects of these FLAs on cell-wall composition with stem biomechanics. Our results suggest that a subset of single FAS domain FLAs contributes to plant stem strength by affecting cellulose deposition, and to the stem modulus of elasticity by affecting the integrity of the cell-wall matrix.
dc.identifier.issn0960-7412
dc.identifier.urihttp://hdl.handle.net/1885/61076
dc.publisherBlackwell Publishing Ltd
dc.sourceThe Plant Journal
dc.subjectKeywords: Arabinogalactan proteins; Microfibril angles; Modulus of elasticity; Secondary cell wall; Adhesion; Algae; Animals; Biomechanics; Biophysics; Cell adhesion; Cellulose; Cellulose derivatives; Elastic moduli; Elasticity; Proteins; Synthesis (chemical); Tens Biomechanics; Cellulose microfibril angle; Fasciclin-like arabinogalactan proteins; Modulus of elasticity; Secondary cell wall; Tensile strength
dc.titleFasciclin-like arabinogalactan proteins: specialization for stem biomechanics and cell wall architecture in Arabidopsis and Eucalyptus
dc.typeJournal article
local.bibliographicCitation.issue4
local.bibliographicCitation.lastpage703
local.bibliographicCitation.startpage689
local.contributor.affiliationMacMillan, Colleen P., Ensis - the joint forces of CSIRO and SCION
local.contributor.affiliationMansfield, Shawn, University of British Columbia
local.contributor.affiliationStachurski, Zbigniew, College of Engineering and Computer Science, ANU
local.contributor.affiliationEvans, Robert, CSIRO Forestry and Forest Products
local.contributor.affiliationSoutherton, Simon G., CSIRO Plant Industry
local.contributor.authoruidStachurski, Zbigniew, u9300839
local.description.embargo2037-12-31
local.description.notesImported from ARIES
local.identifier.absfor060702 - Plant Cell and Molecular Biology
local.identifier.absseo820199 - Forestry not elsewhere classified
local.identifier.ariespublicationu4334215xPUB585
local.identifier.citationvolume62
local.identifier.doi10.1111/j.1365-313X.2010.04181.x
local.identifier.scopusID2-s2.0-77952220926
local.identifier.thomsonID000277609500013
local.type.statusPublished Version

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