CO2浓度倍增对8种作物叶片光合作用、蒸腾作用和水分利用效率的影响
网络出版日期: 2012-05-04
Effects of doubled CO2 concentration on leaf photosynthesis, transpiration and water use efficiency of eight crop species
Online published: 2012-05-04
揭示作物光合作用、蒸腾作用和水分利用效率(WUE)对大气CO2浓度变化的响应, 对预测未来大气CO2浓度升高条件下作物生产力与需水规律的变化具有重要意义。在自然CO2浓度、CO2倍增和倍增后恢复到自然CO2浓度3种情况下, 对大豆(Glycine max)、甘薯(Ipomoea batatas)、花生(Arachis hypogaea)、水稻(Oryza sativa)、棉花(Gossypium hirsutum)、玉米(Zea mays)、高粱(Sorghum vulgare)和谷子(Setaria italica) 8种作物的气体交换参数进行了研究。结果表明: CO2浓度倍增可以提高光合速率, 降低蒸腾速率, 从而提高WUE, 其中光合速率提高的贡献更大; C3比C4作物的光合速率、WUE增幅大, C3作物光合速率提高对WUE的贡献大于C4作物; 通过对比倍增后恢复到自然CO2浓度时气体交换参数随环境条件变化的响应确定了其内在调控机制; 倍增后恢复到自然CO2浓度时作物光合速率低于自然CO2浓度下的光合速率, 而蒸腾速率无明显差异。由此判断: CO2浓度倍增下存在光合下调现象, 这可能是由于Rubisco酶蛋白含量、活化水平和比活性降低等“非气孔因素”造成的, 并非由气孔导度的降低引起的。
王建林, 温学发, 赵风华, 房全孝, 杨新民 . CO2浓度倍增对8种作物叶片光合作用、蒸腾作用和水分利用效率的影响[J]. 植物生态学报, 2012 , 36(5) : 438 -446 . DOI: 10.3724/SP.J.1258.2012.00438
Aims Our objective was to elucidate the response of crop photosynthesis, transpiration and water use efficiency to atmospheric CO2 concentration. This has great significance to predicting crop productivity and water-demand changes under increasing atmospheric CO2 concentration.
Methods The photosynthesis rate, transpiration rate and water use efficiency of eight crops (soybean (Glycine max), sweet potato (Ipomoea batatas), peanut (Arachis hypogaea), rice (Oryza sativa), cotton (Gossypium hirsutum), corn (Zea mays), sorghum (Sorghum vulgare) and millet (Setaria italica)) were studied under natural CO2 concentration, doubled CO2 concentration and natural CO2 concentration after doubled CO2 conditions.
Important findings Doubled CO2 concentration increased the photosynthesis rate and decreased the transpiration rate, and therefore water use efficiency was more significantly increased. The increase of water use efficiency showed greater dependence on the increase of photosynthesis rate than the decrease of transpiration rate. The variations of photosynthesis rate and water use efficiency of C3 crops were larger than those of C4 crops. The effect of photosynthesis rate of C3 crops on the water use efficiency was larger than that of C4 crops. The photosynthesis rate under natural CO2 concentration after doubled CO2 concentration was lower than that under natural CO2 concentration, but no significant difference was found for the transpiration rate. The photosynthetic capacity under natural CO2 concentration after doubled CO2 concentration was decreased mainly by the decreasing of some non-stomatal factors, including the protein content, activation levels and specific activity of the enzyme Rubisco.
[1] | Bai LP (白莉萍), Zhou GS (周广胜) (2004). Research of effect of global environment change on agricultural crops. Chinese Journal of Applied and Environmental Biology (应用与环境生物学报), 10, 394-397. (in Chinese with English abstract) |
[2] | Bowes G (1993). Facing the inevitable: plants and increasing atmospheric CO2. Annual Review of Plant Physiology and Plant Molecular Biology, 44, 309-332. |
[3] | Drake BG, Gonzàlez-Meler MA, Long SP (1997). More efficient plants: a consequence of rising atmospheric CO2? Annual Review of Plant Physiology and Plant Molecular Biology, 48, 609-639. |
[4] | Easterling DR, Evans JL, Groisman PY, Karl TR, Kunkel KE, Ambenje P (2000). Observed variability and trends in extreme climate events: a brief review. Bulletin of the American Meteorological Society, 81, 417-425. |
[5] | He P (何平) (2001). Green house effect and plant photosynthesis: an analysis on the influence of CO2 enrichment on photosynthetic mechanism in plants. Journal of Central South Forestry University (中南林学院学报), 21(1), 1-4. (in Chinese with English abstract) |
[6] | IPCC (2007). Climate change 2007: impacts, adaptation, and vulnerability. In: Pachauri RK, Reisinger A eds. Contribution of Working Group II to the Forth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge University Press, Cambridge, UK. |
[7] | Jiang GM (蒋高明), Han XG (韩兴国), Lin GH (林光辉) (1997). Response of plant growth to elevated CO2: a review on the chief methods and basic conclusions based on experiments in the external countries in past decade. Acta Phytoecologica Sinica (植物生态学报), 21, 489-502. (in Chinese with English abstract) |
[8] | Karl TR, Trenberth KE (2003). Modern global climate change. Science, 302, 1719-1723. |
[9] | Kimball BA, Kobayashi K, Bindi M (2002). Responses of agricultural crops to free-air CO2 enrichment. Advance in Agronomy, 77, 293-368. |
[10] | Kiziloglu FM, Sahin U, Kuslu Y, Tunc T (2009). Determining water-yield relationship, water use efficiency, crop and pan coefficients for silage maize in a semiarid region. Irrigation Science, 27, 129-137. |
[11] | Koch KE, Jones PH, Avigne WT, Allen LH Jr (1986). Growth, dry matter partitioning, and diurnal activities of RUBP carboxylase in citrus seedlings maintained at two levels of CO2. Plant Physiology, 67, 477-484. |
[12] | Liao Y (廖轶), Chen GY (陈根云), Zhang HB (张海波), Cai SQ (蔡时青), Zhu JG (朱建国), Han Y (韩勇), Liu G (刘钢), Xu DQ (许大全) (2002). Response and acclimation of photosynthesis in rice leaves to free-air CO2 enrichment (FACE). Chinese Journal of Applied Ecology (应用生态学报), 13, 1205-1209. (in Chinese with English abstract) |
[13] | Lin WH (林伟宏) (1998). Response of photosynthesis to elevated atmospheric CO2. Acta Ecologica Sinica (生态学报), 18, 529-538. (in Chinese with English abstract) |
[14] | Liu CM (刘昌明), Yu HN (于沪宁) (1997). The Soil-Plant- Atmosphere System Experimental Study on Moisture Movement (土壤-作物-大气系统水分运动实验研究). Meteorological Press, Beijing. (in Chinese) |
[15] | Luo YQ, Wan SQ, Hui DF, Wallace LL (2001). Acclimatization of soil respiration to warming in a tall grass prairie. Nature, 431, 622-625. |
[16] | Peng CL (彭长连), Lin ZF (林植芳), Lin GZ (林桂珠) (1999). Changes of antioxidative ability in leaves of rice cultivars grown under enriched CO2. Acta Agronomica Sinica (作物学报), 25, 39-43. (in Chinese with English abstract) |
[17] | Schimel DS, House JI, Hibbard KA, Bousquet P, Ciais P, Peylin P, Braswell BH, Apps MJ, Baker D, Bondeau A, Canadell J, Churkina G, Cramer W, Denning AS, Field CB, Friedlingstein P, Goodale C, Heimann M, Houghton RA, Melillo JM, Moore B III, Murdiyarso D, Noble I, Pacala SW, Prentice IC, Raupach MR, Rayner PJ, Scholes RJ, Steffen WL, Wirth C (2001). Recent patterns and mechanisms of carbon exchange by terrestrial ecosystems. Nature, 414, 169-172. |
[18] | Sellers PJ, Dickinson RE, Randall DA, Betts AK, Hall FG, Berry JA, Collatz GJ, Denning AS, Mooney HA, Nobre CA, Sato N, Field CB, Henderson-Sellers A (1997). Modeling the exchanges of energy, water, and carbon between continents and the atmosphere. Science, 275, 502-509. |
[19] | Wang JL (王建林), Yu GR (于贵瑞), Fang QX (房全孝), Jiang DF (姜德锋), Qi H (齐华), Wang QF (王秋凤) (2008). Responses of water use efficiency of nine plant species to light and CO2 and its modeling. Acta Ecologica Sinica (生态学报), 28, 525-533. (in Chinese with English abstract) |
[20] | Xie H (谢辉), Fan GZ (范桂枝), Jing YH (荆彦辉), Dong L (东丽), Deng HF (邓华凤) (2006). Progress of research on photosynthetic acclimation of plant to elevated atmospheric CO2. Review of China Agricultural Science and Technology (中国农业科技导报), 8(3), 29-34. (in Chinese with English abstract) |
[21] | Xu DQ (许大全) (1994). Responses of photosynthesis and related processes to long-term high CO2 concentration. Plant Physiology Communications (植物生理学通讯), 30, 81-87. (in Chinese) |
[22] | Xue S (薛崧), Wang PH (汪沛洪), Xu DQ (许大全), Li LR (李立人) (1992). Effects of water stress on CO2 assimilation of two winter wheat cultivars with different drought resistance. Acta Photophysiologica Sinica (植物生理学报), 18, 1-7. (in Chinese with English abstract) |
[23] | Yang JY (杨建莹), Mei XR (梅旭荣), Liu Q (刘勤), Yan CR (严昌荣), He WQ (何文清), Liu EK (刘恩科), Liu S (刘爽) (2011). Variations of winter wheat growth stages under climate changes in northern China. Chinese Journal of Plant Ecology (植物生态学报), 35, 623-631. (in Chinese with English abstract) |
[24] | Yu GR (于贵瑞), Wang QF (王秋凤), Yu ZL (于振良) (2004). Study on the coupling cycle of water-carbon and process management in terrestrial ecosystem. Advances in Earth Science (地球科学进展), 19, 831-839. (in Chinese with English abstract) |
[25] | Yu GR, Wang QF, Zhuang J (2004). Modeling the water use efficiency of soybean and maize plants under environmental stresses: application of a synthetic model of photosynthesis-transpiration based on stomatal behavior. Journal of Plant Physiology, 161, 308-318. |
[26] | Zhang XQ (张小全), Xu DY (徐德应), Zhao MS (赵茂盛), Chen ZL (陈仲庐) (2000). The responses of 17-years-old Chinese fir shoots to elevated CO2. Acta Ecologica Sinica (生态学报), 20, 390-396. (in Chinese with English abstract) |
[27] | Zhao TH (赵天宏), Wang MY (王美玉), Zhang WW (张巍巍), Zhang X (张鑫) (2006). Effects of elevated atmospheric CO2 concentration on plant photosynthesis. Ecology and Environment (生态环境), 15, 1096-1100. (in Chinese with English abstract) |
[28] | Zheng FY (郑凤英), Peng SL (彭少麟) (2001). Meta-analysis of the response of plant ecophysiological variables to doubled atmospheric CO2 concentrations. Acta Botanica Sinica (植物学报), 43, 1101-1109. (in Chinese with English abstract) |
[29] | Zuo BY (左宝玉), Jiang GZ (姜桂珍), Bai KZ (白克智), Kuang TY (匡廷云) (1996). Effect of doubled-CO2 concentration on the ultrastructure of chloroplasts from Medicago sativa and Setaria italica. Acta Botanica Sinica (植物学报), 38, 72-76. (in Chinese with English abstract) |
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