Maximum height in a conifer is associated with conflicting requirements for xylem design
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- 19 August 2008
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 105 (33) , 12069-12074
- https://doi.org/10.1073/pnas.0710418105
Abstract
Despite renewed interest in the nature of limitations on maximum tree height, the mechanisms governing ultimate and species-specific height limits are not yet understood, but they likely involve water transport dynamics. Tall trees experience increased risk of xylem embolism from air-seeding because tension in their water column increases with height because of path-length resistance and gravity. We used morphological measurements to estimate the hydraulic properties of the bordered pits between tracheids in Douglas-fir trees along a height gradient of 85 m. With increasing height, the xylem structural modifications that satisfied hydraulic requirements for avoidance of runaway embolism imposed increasing constraints on water transport efficiency. In the branches and trunks, the pit aperture diameter of tracheids decreases steadily with height, whereas torus diameter remains relatively constant. The resulting increase in the ratio of torus to pit aperture diameter allows the pits to withstand higher tensions before air-seeding but at the cost of reduced pit aperture conductance. Extrapolations of vertical trends for trunks and branches show that water transport across pits will approach zero at a heights of 109 m and 138 m, respectively, which is consistent with historic height records of 100-127 m for this species. Likewise, the twig water potential corresponding to the threshold for runaway embolism would be attained at a height of approximately 107 m. Our results suggest that the maximum height of Douglas-fir trees may be limited in part by the conflicting requirements for water transport and water column safety.Keywords
This publication has 45 references indexed in Scilit:
- Coordination of leaf and stem water transport properties in tropical forest treesOecologia, 2008
- Safety and efficiency conflicts in hydraulic architecture: scaling from tissues to treesPlant, Cell & Environment, 2007
- Bayesian analysis of Douglas-fir hydraulic architecture at multiple scalesTrees, 2006
- Evolution of Water Transport and Xylem StructureInternational Journal of Plant Sciences, 2003
- Cavitation and water storage capacity in bole xylem segments of mature and young Douglas-fir treesTrees, 2001
- The effects of cambial age and position within the stem on specific conductivity in Douglas-fir ( Pseudotsuga menziesii) sapwoodTrees, 2001
- The canopy water relations of old-growth Douglas-fir treesTrees, 1999
- Conduit diameter and drought‐induced embolism in Salvia mellifera Greene (Labiatae)New Phytologist, 1994
- Use of Positive Pressures to Establish Vulnerability CurvesPlant Physiology, 1992
- Relation between the permeability and the anatomy of jack pine sapwood with stand developmentCanadian Journal of Forest Research, 1989