The ecological significance of long-distance water transport: short-term regulation, long-term acclimation and the hydraulic costs of stature across plant life forms

被引:281
作者
Mencuccini, M [1 ]
机构
[1] Univ Edinburgh, Inst Ecol & Resource Management, Edinburgh EH9 3JU, Midlothian, Scotland
关键词
hydraulic architecture; hydraulic conductance; leaf water status; stomatal regulation; structural acclimation;
D O I
10.1046/j.1365-3040.2003.00991.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Plant hydraulic conductance, namely the rate of water flow inside plants per unit time and unit pressure difference, varies largely from plant to plant and under different environmental conditions. Herein the main factors affecting: (a) the scaling between whole-plant hydraulic conductance and leaf area; (b) the relationship between gas exchange at the leaf level and leaf-specific xylem hydraulic conductance; (c) the short-term physiological regulation of plant hydraulic conductance under conditions of ample soil water, and (d) the long-term structural acclimation of xylem hydraulic conductance to changes in environmental conditions are reviewed. It is shown that plant hydraulic conductance is a highly plastic character that varies as a result of multiple processes acting at several time scales. Across species ranging from coniferous and broad-leaved trees to shrubs, crop and herbaceous species, and desert subshrubs, hydraulic conductance scaled linearly with leaf area, as expected from first principles. Despite considerable convergence in the scaling of hydraulic properties, significant differences were apparent across life forms that underlie their different abilities to conduct gas exchange at the leaf level. A simple model of carbon allocation between leaves and support tissues explained the observed patterns and correctly predicted the inverse relationships with plant height. Therefore, stature appears as a fundamental factor affecting gas exchange across plant life forms. Both short-term physiological regulation and long-term structural acclimation can change the levels of hydraulic conductance significantly. Based on a meta-analysis of the existing literature, any change in environmental parameters that increases the availability of resources (either above- or below-ground) results in the long-term acclimation of a less efficient (per unit leaf area) hydraulic system.
引用
收藏
页码:163 / 182
页数:20
相关论文
共 108 条
[1]   Leaf anatomical characteristics associated with shoot hydraulic conductance, stomatal conductance and stomatal sensitivity to changes of leaf water status in temperate deciduous trees [J].
Aasamaa, K ;
Sober, A ;
Rahi, M .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 2001, 28 (08) :765-774
[2]   Regulation of water flux through trunks, branches, and leaves in trees of a lowland tropical forest [J].
Andrade, JL ;
Meinzer, FC ;
Goldstein, G ;
Holbrook, NM ;
Cavelier, J ;
Jackson, P ;
Silvera, K .
OECOLOGIA, 1998, 115 (04) :463-471
[3]  
[Anonymous], 1914, Transpiration and the ascent of sap in plants
[4]  
[Anonymous], 1979, WATER FLOW IN PLANTS
[5]   Effects of elevated CO2 on stem growth, vessel area and hydraulic conductivity of oak and cherry seedlings [J].
Atkinson, CJ ;
Taylor, JM .
NEW PHYTOLOGIST, 1996, 133 (04) :617-626
[6]   COMPARATIVE RESISTANCE OF THE SOIL AND THE PLANT TO WATER TRANSPORT [J].
BLIZZARD, WE ;
BOYER, JS .
PLANT PHYSIOLOGY, 1980, 66 (05) :809-814
[7]   Water relations of loblolly pine seedlings from diverse geographic origins [J].
Bongarten, Bruce C. ;
Teskey, Robert O. .
TREE PHYSIOLOGY, 1986, 1 (03) :265-276
[8]   RESPONSE TO WATER-STRESS OF ITALIAN ALDER SEEDLINGS FROM DIVERSE GEOGRAPHIC ORIGINS [J].
BORGHETTI, M ;
COCCO, S ;
LAMBARDI, M ;
RADDI, S .
CANADIAN JOURNAL OF FOREST RESEARCH-REVUE CANADIENNE DE RECHERCHE FORESTIERE, 1989, 19 (08) :1071-1076
[9]  
BORGHETTI M, 1987, ACTA OECOL-OEC PLANT, V8, P113
[10]   EFFECTS OF THINNING ON SOIL AND TREE WATER RELATIONS, TRANSPIRATION AND GROWTH IN AN OAK FOREST (QUERCUS-PETRAEA (MATT) LIEBL) [J].
BREDA, N ;
GRANIER, A ;
AUSSENAC, G .
TREE PHYSIOLOGY, 1995, 15 (05) :295-306