Nonstomatal limitations are responsible for drought-induced photosynthetic inhibition in four C4 grasses

被引:99
作者
Ghannoum, O
Conroy, JP
Driscoll, SP
Paul, MJ
Foyer, CH
Lawlor, DW
机构
[1] Rothamsted Res, Crop Performance & Improvement, Harpenden AL5 2JQ, Herts, England
[2] Univ Western Sydney, Ctr Hort & Plant Sci, Penrith, NSW 1797, Australia
基金
英国生物技术与生命科学研究理事会;
关键词
C-4; photosynthesis; chla fluorescence; drought; O-2; evolution; stomatal and metabolic inhibition;
D O I
10.1046/j.1469-8137.2003.00835.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Here, the contribution of stomatal and nonstomatal factors to photosynthetic inhibition under water stress in four tropical C-4 grasses was investigated (Panicum coloratum, Bothriochloa bladhii, Cenchrus ciliaris and Astrebla lappacea ). Plants were grown in well watered soil, and then the effects of soil drying were measured on leaf gas exchange, chlorophyll a fluorescence and water relations. During the drying cycle, leaf water potential (Psi(leaf)) and relative water content (RWC) decreased from c. -0.4 to -2.8 MPa and 100-40%, respectively. The CO2 assimilation rates (A) and quantum yield of PSII (Phi(PSII)) of all four grasses decreased rapidly with declining RWC. High CO2 concentration (2500 mul l(-1)) had no effect on A or Phi(PSII) at any stage of the drying cycle. Electron transport capacity and dark respiration rates were unaltered by drought. The CO2 compensation concentrations of P. coloratum and C. ciliaris rose sharply when leaf RWC fell below 70%. In P. coloratum, 5% CO2 did not prevent the decline of O-2 evolution rates under water stress. We conclude that inhibition of photosynthesis in the four C-4 grasses under water stress is dependent mainly on biochemical limitations.
引用
收藏
页码:599 / 608
页数:10
相关论文
共 49 条
[1]   Responses of ribulose-1,5-bisphosphate carboxylase, protein content, and stomatal conductance to water deficit in maize, tomato, and bean [J].
Castrillo, M ;
Fernandez, D ;
Calcagno, AM ;
Trujillo, I ;
Guenni, L .
PHOTOSYNTHETICA, 2001, 39 (02) :221-226
[2]   Effect of water stress on pyruvate, P-i dikinase and phosphoenol pyruvate carboxylase activities in the leaves of two cultivars of sorghum (Sorghum bicolor L) [J].
ContourAnsel, D ;
Ilami, G ;
Ouarzane, A ;
Louguet, P .
JOURNAL OF AGRONOMY AND CROP SCIENCE, 1996, 176 (01) :59-69
[3]   Drought stress inhibits photosynthesis by decreasing stomatal aperture - not by affecting ATP synthesis [J].
Cornic, G .
TRENDS IN PLANT SCIENCE, 2000, 5 (05) :187-188
[4]  
Cornic G., 1994, PHOTOINHIBITION PHOT, P297
[5]  
COWAN IR, 1981, BIOL AUSTR PLANTS, P1
[6]   Effects of water stress on carbon exchange rate and activities of photosynthetic enzymes in leaves of sugarcane (Saccharum sp) [J].
Du, YC ;
Kawamitsu, Y ;
Nose, A ;
Hiyane, S ;
Murayama, S ;
Wasano, K ;
Uchida, Y .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 1996, 23 (06) :719-726
[7]   C-4 photosynthesis, atmospheric CO2 and climate [J].
Ehleringer, JR ;
Cerling, TE ;
Helliker, BR .
OECOLOGIA, 1997, 112 (03) :285-299
[8]   A BIOCHEMICAL-MODEL OF PHOTOSYNTHETIC CO2 ASSIMILATION IN LEAVES OF C-3 SPECIES [J].
FARQUHAR, GD ;
CAEMMERER, SV ;
BERRY, JA .
PLANTA, 1980, 149 (01) :78-90
[9]   Drought-induced effects on nitrate reductase activity and mRNA and on the coordination of nitrogen and carbon metabolism in maize leaves [J].
Foyer, CH ;
Valadier, MH ;
Migge, A ;
Becker, TW .
PLANT PHYSIOLOGY, 1998, 117 (01) :283-292
[10]   THE RELATIONSHIP BETWEEN THE QUANTUM YIELD OF PHOTOSYNTHETIC ELECTRON-TRANSPORT AND QUENCHING OF CHLOROPHYLL FLUORESCENCE [J].
GENTY, B ;
BRIANTAIS, JM ;
BAKER, NR .
BIOCHIMICA ET BIOPHYSICA ACTA, 1989, 990 (01) :87-92