How Plants Cope with Water Stress in the Field? Photosynthesis and Growth
Top Cited Papers
Open Access
- 15 June 2002
- journal article
- review article
- Published by Oxford University Press (OUP) in Annals of Botany
- Vol. 89 (7) , 907-916
- https://doi.org/10.1093/aob/mcf105
Abstract
Plants are often subjected to periods of soil and atmospheric water deficit during their life cycle. The frequency of such phenomena is likely to increase in the future even outside today’s arid/semi‐arid regions. Plant responses to water scarcity are complex, involving deleterious and/or adaptive changes, and under field conditions these responses can be synergistically or antagonistically modified by the superimposition of other stresses. This complexity is illustrated using examples of woody and herbaceous species mostly from Mediterranean‐type ecosystems, with strategies ranging from drought‐avoidance, as in winter/spring annuals or in deep‐rooted perennials, to the stress resistance of sclerophylls. Differences among species that can be traced to different capacities for water acquisition, rather than to differences in metabolism at a given water status, are described. Changes in the root : shoot ratio or the temporary accumulation of reserves in the stem are accompanied by alterations in nitrogen and carbon metabolism, the fine regulation of which is still largely unknown. At the leaf level, the dissipation of excitation energy through processes other than photosynthetic C‐metabolism is an important defence mechanism under conditions of water stress and is accompanied by down‐regulation of photochemistry and, in the longer term, of carbon metabolism.Keywords
This publication has 29 references indexed in Scilit:
- ABA, ethylene and the control of shoot and root growth under water stress.2002
- Biochemistry and physiology of foliar isoprene productionTrends in Plant Science, 2000
- Root water uptake and transport: using physiological processes in global predictionsTrends in Plant Science, 2000
- Abscisic Acid Accumulation Maintains Maize Primary Root Elongation at Low Water Potentials by Restricting Ethylene ProductionPlant Physiology, 2000
- Pre-Anthesis Reserve Utilization for Protein and Carbohydrate Synthesis in Grains of WheatPlant Physiology, 1999
- Protein Changes in Response to Progressive Water Deficit in Maize1Plant Physiology, 1998
- Effects of Xylem pH on Transpiration from Wild-Type andflaccaTomato Leaves1Plant Physiology, 1998
- Stress Tolerance of Photosystem II in VivoPlant Physiology, 1992
- Effect of Inhibition of Abscisic Acid Accumulation on the Spatial Distribution of Elongation in the Primary Root and Mesocotyl of Maize at Low Water PotentialsPlant Physiology, 1992
- Regulation of Ribulose-1,5-Bisphosphate Carboxylase Activity in Response to Light Intensity and CO2 in the C3 Annuals Chenopodium album L. and Phaseolus vulgaris L.Plant Physiology, 1990