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Canopy development and hydraulic function in Eucalyptus tereticornis grown in drought in CO 2 -enriched atmospheres

dc.contributor.authorAtwell, Brian J
dc.contributor.authorHenery, Martin
dc.contributor.authorRogers, Gordon S.
dc.contributor.authorSeneweera, Saman P.
dc.contributor.authorTreadwell, Marie
dc.contributor.authorConroy, Jann P
dc.date.accessioned2015-12-10T22:23:40Z
dc.date.issued2007
dc.date.updated2015-12-09T09:10:22Z
dc.description.abstractWe report on the relationship between growth, partitioning of shoot biomass and hydraulic development of Eucalyptus tereticornis Sm. grown in glasshouses for six months. Close coordination of stem vascular capacity and shoot architecture is vital for survival of eucalypts, especially as developing trees are increasingly subjected to spasmodic droughts and rising atmospheric CO 2 levels. Trees were exposed to constant soil moisture deficits in 45 L pots (30-50% below field capacity), while atmospheric CO2 was raised to 700 μL CO2 L-1 in matched glasshouses using a hierarchical, multi-factorial design. Enrichment with CO2 stimulated shoot growth rates for 12-15 weeks in well-watered trees but after six months of CO2 enrichment, shoot biomasses were not significantly heavier (30% stimulation) in ambient conditions. By contrast, constant drought arrested shoot growth after 20 weeks under ambient conditions, whereas elevated CO 2 sustained growth in drought and ultimately doubled the shoot biomass relative to ambient conditions. These growth responses were achieved through an enhancement of lateral branching up to 8-fold due to CO2 enrichment. In spite of larger transpiring canopies, CO2 enrichment also improved the daytime water status of leaves of droughted trees. Stem xylem development was highly regulated, with vessels per unit area and cross sectional area of xylem vessels in stems correlated inversely across all treatments. Furthermore, vessel numbers related to the numbers of leaves on lateral branches, broadly supporting predictions arising from Pipe Model Theory that the area of conducting tissue should correlate with leaf area. Diminished water use of trees in drought coincided with a population of narrower xylem vessels, constraining hydraulic capacity of stems. Commensurate with the positive effects of elevated CO2 on growth, development and leaf water relations of droughted trees, the capacity for long-distance water transport also increased.
dc.identifier.issn1445-4408
dc.identifier.urihttp://hdl.handle.net/1885/52908
dc.publisherCSIRO Publishing
dc.sourceFunctional Plant Biology
dc.subjectKeywords: Biomass; Carbon dioxide; Drought; Growth rate; Soil moisture; Tissue; Biomass allocation; Glasshouses; Water transport; Xylem; Plants (botany); biomass allocation; canopy; carbon dioxide; dicotyledon; drought; hydraulics; shoot growth; soil moisture; surv Biomass allocation; Carbon dioxide; Drought; Xylem
dc.titleCanopy development and hydraulic function in Eucalyptus tereticornis grown in drought in CO 2 -enriched atmospheres
dc.typeJournal article
local.bibliographicCitation.lastpage1149
local.bibliographicCitation.startpage1137
local.contributor.affiliationAtwell, Brian J, Macquarie University
local.contributor.affiliationHenery, Martin, College of Medicine, Biology and Environment, ANU
local.contributor.affiliationRogers, Gordon S., AHR Consulting
local.contributor.affiliationSeneweera, Saman P., University of Western Sydney
local.contributor.affiliationTreadwell, Marie, Macquarie University
local.contributor.affiliationConroy, Jann P, University of Western Sydney
local.contributor.authoruidHenery, Martin, u2515738
local.description.embargo2037-12-31
local.description.notesImported from ARIES
local.identifier.absfor069902 - Global Change Biology
local.identifier.ariespublicationu9511635xPUB258
local.identifier.citationvolume34
local.identifier.doi10.1071/FP06338
local.identifier.scopusID2-s2.0-36448965621
local.type.statusPublished Version

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