INFLUENCE OF RISING ATMOSPHERIC CO2 CONCENTRATIONS AND TEMPERATURE ON GROWTH, YIELD AND GRAIN QUALITY OF CEREAL CROPS

被引:106
作者
CONROY, JP [1 ]
SENEWEERA, S [1 ]
BASRA, AS [1 ]
ROGERS, G [1 ]
NISSENWOOLLER, B [1 ]
机构
[1] AUSTRALIAN WOOL TESTING AUTHOR, GUILDFORD, NSW 2161, AUSTRALIA
来源
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY | 1994年 / 21卷 / 06期
关键词
D O I
10.1071/PP9940741
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
A possible scenario for the end of the 21st century is that the atmospheric CO2 concentration will be in the range of 510-760 mu L L(-1) and that the mean global temperature will be 1.5-4.5 degrees C higher. Further, there may be greater incidences of extreme climatic events, which together with the CO2 and temperature changes will influence development, growth and grain yield of cereals such as rice and wheat. For these C-3, plants, the driving force for the growth response to elevated CO2 is higher leaf CO2 assimilation rates (4). However, the response of A to CO2 depends on temperature with maximum absolute increases occuring at temperatures which do not cause flower abortion, while negligible increases are observed at low temperatures. At high temperatures, where A is reduced because of partial inactivation of photosynthetic enzymes, the increase in A due to CO2 enrichment is still observed. Other factors, such as changes in shoot water relations or hormone concentrations, may influence growth at elevated CO2 concentrations. Wheat and rice development is accelerated by high temperature and consequently grain yield is reduced because there is less time for radiation to be intercepted during the vegetative phase. Although high CO2 also accelerates development in rice and, to a lesser extent in wheat, the extra carbohydrate produced by increases in A results in at least a 40% increase in grain yield at temperatures which do not cause flower abortion. This is due mainly to increased tiller numbers rather than increases in the number or weight of individual grains. However, the yield enhancement due to high CO2 will not necessarily compensate for decreases in yield caused by accelerated development at high temperatures. As predicted by the response of A to high CO2, the relative increase in yield, due to rising CO2 concentrations, is smaller at lower temperatures. Elevated atmospheric CO2 may improve the tolerance of plants to heat-induced drought stress by facilitating the maintenance of cell volume and photosynthetic function in the leaves. Increased carbohydrate storage in the stems may also be an advantage during grain filling if the flag leaves senesce prematurely. However, it is unlikely that the effect of very high temperatures on newer abortion will be ameliorated by high CO2. For bread making, the quality of flour produced from grain developed at high temperatures is poorer. High CO2 may also have an effect through a reduction in the protein content of wheat grain. For rice, the amylose content of the grain, a major determinant of cooking quality is increased under elevated CO2.
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页码:741 / 758
页数:18
相关论文
共 68 条
[51]   YIELD RESPONSES OF 2 WHEAT GENOTYPES TO CARBON-DIOXIDE AND TEMPERATURE IN-FIELD STUDIES USING TEMPERATURE-GRADIENT TUNNELS [J].
RAWSON, HM .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 1995, 22 (01) :23-32
[52]   PLANT-RESPONSES TO TEMPERATURE UNDER CONDITIONS OF ELEVATED CO2 [J].
RAWSON, HM .
AUSTRALIAN JOURNAL OF BOTANY, 1992, 40 (4-5) :473-490
[53]  
RAWSON HM, 1989, RURAL IND WORKSHOP C, P21
[54]   NITROGEN AND PHOSPHORUS REQUIREMENTS OF COTTON AND WHEAT UNDER CHANGING ATMOSPHERIC CO2 CONCENTRATIONS [J].
ROGERS, GS ;
PAYNE, L ;
MILHAM, P ;
CONROY, J .
PLANT AND SOIL, 1993, 155 :231-234
[55]   THE EFFECT OF TEMPERATURE ON THE OCCURRENCE OF O-2 AND CO2 INSENSITIVE PHOTOSYNTHESIS IN FIELD-GROWN PLANTS [J].
SAGE, RF ;
SHARKEY, TD .
PLANT PHYSIOLOGY, 1987, 84 (03) :658-664
[56]   TEMPERATURE AND LEAF OSMOTIC POTENTIAL AS FACTORS IN THE ACCLIMATION OF PHOTOSYNTHESIS TO HIGH-TEMPERATURE IN DESERT PLANTS [J].
SEEMANN, JR ;
DOWNTON, WJS ;
BERRY, JA .
PLANT PHYSIOLOGY, 1986, 80 (04) :926-930
[57]   INFLUENCE OF ELEVATED CO2 AND PHOSPHORUS-NUTRITION ON THE GROWTH AND YIELD OF A SHORT-DURATION RICE (ORYZA-SATIVA L CV JARRAH) [J].
SENEWEERA, S ;
MILHAM, P ;
CONROY, J .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 1994, 21 (03) :281-292
[58]   PHOTOSYNTHESIS IN INTACT LEAVES OF C-3 PLANTS - PHYSICS, PHYSIOLOGY AND RATE LIMITATIONS [J].
SHARKEY, TD .
BOTANICAL REVIEW, 1985, 51 (01) :53-105
[59]   LIGHT-REGULATED AND ENDOGENOUS FLUCTUATIONS OF CHLOROPLAST TRANSCRIPT LEVELS IN CHLAMYDOMONAS - REGULATION BY TRANSCRIPTION AND RNA DEGRADATION [J].
SALVADOR, ML ;
KLEIN, U ;
BOGORAD, L .
PLANT JOURNAL, 1993, 3 (02) :213-219
[60]   DROUGHT STRESS INDUCES CHANGES IN THE NONSTRUCTURAL CARBOHYDRATE-COMPOSITION OF WHEAT STEMS [J].
VIRGONA, JM ;
BARLOW, EWR .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 1991, 18 (03) :239-247