Abscisic Acid Mediates a Divergence in the Drought Response of Two Conifers

被引:151
作者
Brodribb, Timothy J. [1 ]
McAdam, Scott A. M. [1 ]
机构
[1] Univ Tasmania, Sch Plant Sci, Hobart, Tas 7001, Australia
基金
澳大利亚研究理事会;
关键词
STOMATAL CONDUCTANCE; WATER STATUS; ACTIVE POOLS; SOIL-WATER; PLANT; STRESS; ABA; RECOVERY; GROWTH; FERN;
D O I
10.1104/pp.113.217877
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
During water stress, stomatal closure occurs as water tension and levels of abscisic acid (ABA) increase in the leaf, but the interaction between these two drivers of stomatal aperture is poorly understood. We investigate the dynamics of water potential, ABA, and stomatal conductance during the imposition of water stress on two drought-tolerant conifer species with contrasting stomatal behavior. Rapid rehydration of excised shoots was used as a means of differentiating the direct influences of ABA and water potential on stomatal closure. Pinus radiata (Pinaceae) was found to exhibit ABA-driven stomatal closure during water stress, resulting in strongly isohydric regulation of water loss. By contrast, stomatal closure in Callitris rhomboidea (Cupressaceae) was initiated by elevated foliar ABA, but sustained water stress saw a marked decline in ABA levels and a shift to water potential-driven stomatal closure. The transition from ABA to water potential as the primary driver of stomatal aperture allowed C. rhomboidea to rapidly recover gas exchange after water-stressed plants were rewatered, and was associated with a strongly anisohydric regulation of water loss. These two contrasting mechanisms of stomatal regulation function in combination with xylem vulnerability to produce highly divergent strategies of water management. Species-specific ABA dynamics are proposed as a central component of drought survival and ecology.
引用
收藏
页码:1370 / 1377
页数:8
相关论文
共 31 条
[1]  
[Anonymous], NEW PHYTOL
[2]   The Stomatal Response to Reduced Relative Humidity Requires Guard Cell-Autonomous ABA Synthesis [J].
Bauer, Hubert ;
Ache, Peter ;
Lautner, Silke ;
Fromm, Joerg ;
Hartung, Wolfram ;
Al-Rasheid, Khaled A. S. ;
Sonnewald, Sophia ;
Sonnewald, Uwe ;
Kneitz, Susanne ;
Lachmann, Nicole ;
Mendel, Ralf R. ;
Bittner, Florian ;
Hetherington, Alistair M. ;
Hedrich, Rainer .
CURRENT BIOLOGY, 2013, 23 (01) :53-57
[3]   INFLUENCE OF SOIL-WATER ON THE PHYSIOLOGICAL AND MORPHOLOGICAL COMPONENTS OF PLANT WATER-BALANCE IN POPULUS-TRICHOCARPA, POPULUS-DELTOIDES AND THEIR F1 HYBRIDS [J].
BRAATNE, JH ;
HINCKLEY, TM ;
STETTLER, RF .
TREE PHYSIOLOGY, 1992, 11 (04) :325-339
[4]   Passive Origins of Stomatal Control in Vascular Plants [J].
Brodribb, Tim J. ;
McAdam, Scott A. M. .
SCIENCE, 2011, 331 (6017) :582-585
[5]   Xylem function and growth rate interact to determine recovery rates after exposure to extreme water deficit [J].
Brodribb, Tim J. ;
Bowman, David M. J. S. ;
Nichols, Scott ;
Delzon, Sylvain ;
Burlett, Regis .
NEW PHYTOLOGIST, 2010, 188 (02) :533-542
[6]   Hydraulic Failure Defines the Recovery and Point of Death in Water-Stressed Conifers [J].
Brodribb, Tim J. ;
Cochard, Herve .
PLANT PHYSIOLOGY, 2009, 149 (01) :575-584
[7]   The control of stomata by water balance [J].
Buckley, TN .
NEW PHYTOLOGIST, 2005, 168 (02) :275-291
[8]   A hydromechanical and biochemical model of stomatal conductance [J].
Buckley, TN ;
Mott, KA ;
Farquhar, GD .
PLANT CELL AND ENVIRONMENT, 2003, 26 (10) :1767-1785
[9]   Generation of active pools of abscisic acid revealed by in vivo Imaging of water-stressed Arabidopsis [J].
Christmann, A ;
Hoffmann, T ;
Teplova, I ;
Grill, E ;
Müller, A .
PLANT PHYSIOLOGY, 2005, 137 (01) :209-219
[10]   Unraveling the effects of plant hydraulics on stomatal closure during water stress in walnut [J].
Cochard, H ;
Coll, L ;
Le Roux, X ;
Améglio, T .
PLANT PHYSIOLOGY, 2002, 128 (01) :282-290