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The importance of xylem constraints in the distribution of conifer species
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Vulnerability of stem xylem to cavitation was measured in 10 species of conifers using high pressure air to induce xylem embolism. Mean values of air pressure required to induce a 50% loss in hydraulic conductivity (50) varied enormously between species, ranging from a maximum of 14.2±0.6 MPa (corresponding to a xylem water potential of −14.2 MPa) in the semi-arid species Actinostrobus acuminatus to a minimum of 2.3±0.2 MPa in the rainforest species Dacrycarpus dacrydioides. Mean 50 was significantly correlated with the mean rainfall of the driest quarter within the distribution of each species. The value of 50 was also compared with leaf drought tolerance data for these species in order to determine whether xylem dysfunction during drought dictated drought response at the leaf level. Previous data describing the maximum depletion of internal CO2 concentration (ci) in the leaves of these species during artificial drought was strongly correlated with 50 suggesting a primary role of xylem in effecting leaf drought response. The possibility of a trade-off between xylem conductivity and xylem vulnerability was tested in a sub-sample of four species, but no evidence of an inverse relationship between 50 and either stem-area specific (Ka) or leaf-area specific conductivity (K1) was found.
|Keywords:||xylem cavitation, air-seeding, drought stress, conifer distribution, xylem conductance.|
|Journal or Publication Title:||New Phytologist|
|Page Range:||pp. 365-375|
|Identification Number - DOI:||10.1046/j.1469-8137.1999.00446.x|
"The definitive version is available at www.blackwell-synergy.com"
|Date Deposited:||10 Dec 2007 01:20|
|Last Modified:||18 Nov 2014 03:25|
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