Acta Agron Sin ›› 2009, Vol. 35 ›› Issue (9): 1672-1680.doi: 10.3724/SP.J.1006.2009.01672
• TILLAGE & CULTIVATION·PHYSIOLOGY & BIOCHEMISTRY • Previous Articles Next Articles
LIU Li-Jun,YANG Li-Nian,SUN Xiao-Lin,WANG Zhi-Qin,YANG Jian-Chang*
[1] FAO. Statistical Databases, Food and Agriculture Organization (FAO) of the United Nations, Rome. http://www.fao.org, 2007 [2] Peng S-B(彭少兵), Huang J-L(黄见良), Zhong X-H(钟旭华), Yang J-C(杨建昌), Wang G-H(王光火), Zou Y-B(邹应斌), Zhang F-S(张福锁), Zhu Q-S(朱庆森). Research strategy in improving fertilizer-nitrogen use efficiency of irrigated rice in China. Sci Agric Sin (中国农业科学),2002, 35(9): 1095-1103(in Chinese with English abstract) [3] Zhu Z-L(朱兆良). Research progresses on the fate of soil N supply and applied fertilizer N in China. Soil (土壤), 1985, 17(1): 2-9(in Chinese) [4] Wang G H, Dobermann A, Witt C, Sun Q Z, Fu R X. Performance of site-specific nutrient management for irrigated rice in southeast China. Agron J, 2001, 93: 869-878 [5] Liu L-J(刘立军), Xu W(徐伟), Xu G-W(徐国伟), Zhou J-L(周家麟), Yang J-C(杨建昌).N-saving effect and its mechanism of site-specific nitrogen management in rice. Jiangsu J Agric Sci (江苏农业学报), 2005, 21(3): 155-161(in Chinese with English abstract) [6] Dobermann A, Witt C, Dawe D, Gines H C, Nagarajan R, Satawathananont S, Son T T, Tan P S, Wang G H, Chien N V, Thoa V T K, Phung C V, Stalin P, Muthukrishna P, Ravi V, Babu M, Chatuporn S, Kongchum M, Sun Q, Fu R, Simbaha G C, Adviento M A A. Site-specific nutrient management for intensive rice cropping systems in Asia. Field Crops Res, 2002, 74: 37-66 [7] Dobermann A, Witt C. The evolution of site-specific nutrient management in irrigated rice systems of Asia. In: Dobermann A, Witt C, eds. Increasing Productivity of Intensive Rice Systems through Site-Specific Nutrient Management. Los Baños, Philippines: International Rice Research Institute, 2004. pp 75-100 [8] Peng S, Garcia F V, Laza R C, Sanico A L, Visperas R M, Cassman K G. Increased N-use efficiency using a chlorophyll meter on high yielding irrigated rice. Field Crops Res, 1996, 47: 243-252 [9] Wang G-H(王光火), Zhang Q-C(张奇春), Huang C-Y(黄昌勇). SSNM-A new approach to increasing fertilizer N use efficiency and reducing N loss from rice fields. J Zhejiang Agric Univ (Agric Life Sci)(浙江大学学报·农业与生命科学版), 2003, 29(1): 67-70(in Chinese with English abstract) [10] Liu L J, Sang D Z, Liu C L, Wang Z Q, Yang J C, Zhu Q S. Effects of real-time and site-specific nitrogen managements on rice yield and nitrogen use efficiency. Agric Sci China, 2004, 3(4): 262-268 [11] Liu L-J(刘立军), Xu W(徐伟), Sang D-Z(桑大志), Liu C-L(刘翠莲), Zhou J-L(周家麟), Yang J-C(杨建昌). Site-specific nitrogen management increases fertilizer-nitrogen use efficiency in Rice. Acta Agron Sin (作物学报), 2006, 32(7): 987-994 (in Chinese with English abstract) [12] Bremner J M, Mulvaney C S. Nitrogen-total. In: Page A L ed. Methods of Soil Analysis. Part 2. 2nd edn. Agron Monogr. 9. ASA and SSSA, Madison, WI. 1982. pp 595-624 [13] Zhang J-D(章骏德), Liu G-P(刘国屏), Shi Y-Y(施永永). Research Methods of Plant Physiology (植物生理研究法). Nanchang: Jiangxi People’s Publishing House, 1982. pp 52-57 (in Chinese) [14] Foyer C H, Valadier M H, Migge A, Thomas W B. Drought-induced effects on nitrate reductase activity and mRNA and on the coordination of nitrogen and carbon metabolism in maize leaves. Plant Physiol, 1998, 117: 283-292 [15] Hayakawa T, Yamaya T, Mae T, Ojima K. Changes in the content of two glutamate synthase proteins in spikelets of rice (Oryza sativa)plants during ripening. Plant Physiol, 1993, 101: 1257-1262 [16] Bradford, M. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem, 1976, 72, 248-254 [17] Liu L-J(刘立军), Xu W(徐伟), Wu C-F(吴长付), Yang J-C(杨建昌). Characteristics of growth, development and nutrient uptake in rice under site-specific nitrogen management. Chin J Rice Sci (中国水稻科学), 2007, 21(2): 191-197 (in Chinese with English abstract) [18] Foyer C H, Noctor G, Lelandais M, Lescure J C, Valadier M H, Boutin J P, Horton P. Short-term effects of nitrate, nitrite and ammonium assimilation on photosynthesis, carbon partitioning and protein phosphorylation in maize. Planta, 1994, 192: 211-220 [19] Miflin B J. Ammonia assimilation. In: Miflin B J ed. The Biochemistry of Plants: Amino Acids and Derivatives. New York: Academic Press, 1980. pp 169-202 [20] Sechley K A, Yamaya T, Oaks A. Compartment of nitrogen assimilation in higher plants. Int Rev Cytol, 1992, 134: 85-163 [21] Mo L-Y(莫良玉), Wu L-H(吴良欢), Tao Q-N(陶勤南). Effects of different nitrogen forms on rice seedlings under sterilized culture at high temperature. Plant Nutr Fert Sci (植物营养与肥料学报), 2002, 8(2): 157-161 (in Chinese with English abstract) [22] Husted S, Hebbern C A, Mattsson M, Schjoerring J K. A critical experimental evaluation of methods for determination of NH+4 in plant tissue, xylem sap and apoplastic fluid. Physiologia Plantarum, 2000, 109: 167-179 [23] Lam H M, Coschigano K T, Oliveira I C, Melo-Oliveira R, Coruzzi G M. The molecular genetics of nitrogen assimilation into amino acids in higher plants. Ann Rev Plant Physiol Plant Mol Biol, 1996, 47: 569-593 [24] Ling Q-H(凌启鸿), Zhang H-C(张洪程), Dai Q-G(戴其根), Ding Y-F(丁艳锋), Ling L(凌励), Su Z-F(苏祖芳), Xu M(徐茂), Que J-H(阙金华), Wang S-H(王绍华). Study on precise and quantitative N application in rice. Sci Agric Sin (中国农业科学), 2005, 38(12): 2457-2467 (in Chinese with English abstract) Ling Q-H(凌启鸿), Zhang H-C(张洪程), Ding Y-F(丁艳锋), Dai Q-G(戴其根), Ling L(凌励), Wang S-H(王绍华), Xu M(徐茂). Precise and quantitative cultivation for high yield in rice. North Rice (北方水稻), 2007, (2): 1-9 (in Chinese with English abstract) |
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