The control of stomata by water balance

被引:570
作者
Buckley, TN [1 ]
机构
[1] Utah State Univ, Biol Dept, Logan, UT 84322 USA
[2] Australian Natl Univ, Res Sch Biol Sci, Cooperat Res Ctr Greenhouse Accounting, Canberra, ACT 2601, Australia
[3] Australian Natl Univ, Res Sch Biol Sci, Environm Biol Grp, Canberra, ACT 2601, Australia
关键词
cavitation; feedback; feedforward; stomatal conductance; transpiration; water potential;
D O I
10.1111/j.1469-8137.2005.01543.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
It is clear that stomata play a critical role in regulating water loss from terrestrial vegetation. What is not clear is how this regulation is achieved. Stomata appear to respond to perturbations of many aspects of the soil - plant - atmosphere hydraulic continuum, but there is little agreement regarding the mechanism ( or mechanisms) by which stomata sense such perturbations. This review discusses feedback and feedforward mechanisms by which hydraulic perturbations are putatively transduced into stomatal movements, in relation to generic empirical features of those responses. It is argued that a metabolically mediated feedback response of stomatal guard cells to the water status in their immediate vicinity (` hydro- active local feedback') remains the best explanation for many well- known features of hydraulically related stomatal behaviour, such as transient ` wrong- way' responses and the equivalence of hydraulic supply and demand as stomatal effectors. Furthermore, many curious phenomena that appear inconsistent with feedback, such as ` apparent feedforward' humidity responses and ` isohydric' behaviour ( water potential homeostasis), are in fact expected to emerge from the juxtaposition of hydro- active local feedback and the well- known hysteretic and threshold- like effect of water potential on xylem hydraulic resistance.
引用
收藏
页码:275 / 291
页数:17
相关论文
共 127 条
[1]   The cellular basis of guard cell sensing of rising CO2 [J].
Assmann, SM .
PLANT CELL AND ENVIRONMENT, 1999, 22 (06) :629-637
[2]   From milliseconds to millions of years: guard cells and environmental responses [J].
Assmann, SM ;
Wang, XQ .
CURRENT OPINION IN PLANT BIOLOGY, 2001, 4 (05) :421-428
[3]   ABA-deficient (aba1) and ABA-insensitive (abi1-1, abi2-1) mutants of Arabidopsis have a wild-type stomatal response to humidity [J].
Assmann, SM ;
Snyder, JA ;
Lee, YRJ .
PLANT CELL AND ENVIRONMENT, 2000, 23 (04) :387-395
[4]   The multisensory guard cell. Stomatal responses to blue light and abscisic acid [J].
Assmann, SM ;
Shimazaki, K .
PLANT PHYSIOLOGY, 1999, 119 (03) :809-815
[5]   A test of the hydraulic limitation hypothesis in fast-growing Eucalyptus saligna [J].
Barnard, HR ;
Ryan, MG .
PLANT CELL AND ENVIRONMENT, 2003, 26 (08) :1235-1245
[6]   Cellular signaling and volume control in stomatal movements in plants [J].
Blatt, MR .
ANNUAL REVIEW OF CELL AND DEVELOPMENTAL BIOLOGY, 2000, 16 :221-241
[7]  
Bond BJ, 1999, TREE PHYSIOL, V19, P503
[8]   CO2 and water vapor exchange across leaf cuticle (epidermis) at various water potentials [J].
Boyer, JS ;
Wong, SC ;
Farquhar, GD .
PLANT PHYSIOLOGY, 1997, 114 (01) :185-191
[9]   Diurnal depression of leaf hydraulic conductance in a tropical tree species [J].
Brodribb, TJ ;
Holbrook, NM .
PLANT CELL AND ENVIRONMENT, 2004, 27 (07) :820-827
[10]   Stomatal closure during leaf dehydration, correlation with other leaf physiological traits [J].
Brodribb, TJ ;
Holbrook, NM .
PLANT PHYSIOLOGY, 2003, 132 (04) :2166-2173