Scientia Agricultura Sinica ›› 2021, Vol. 54 ›› Issue (17): 3587-3591.doi: 10.3864/j.issn.0578-1752.2021.17.003

• CLIMATE CHANGE AND MAIZE PRODUCTION IN CHINA • Previous Articles     Next Articles

Response and Adaptation of Maize Production System to Climate Change

XIE RuiZhi(),MING Bo   

  1. Institute of Crop Science, Chinese Academy of Agricultural Sciences/Key Laboratory of Crop Physiology and Ecology, Ministry of Agriculture and Rural Affairs, Beijing 100081
  • Received:2021-08-03 Accepted:2021-08-20 Online:2021-09-01 Published:2021-09-09
[1] 李少昆, 赵久然, 董树亭, 赵明, 李潮海, 崔彦宏, 刘永红, 高聚林, 薛吉全, 王立春, 王璞, 陆卫平, 王俊河, 杨祁峰, 王子明. 中国玉米栽培研究进展与展望. 中国农业科学, 2017, 50(11): 1941-1959.
LI S K, ZHAO J R, DONG S T, ZHAO M, LI C H, CUI Y H, LIU Y H, GAO J L, XUE J Q, WANG L C, WANG P, LU W P, WANG J H, YANG Q F, WANG Z M. Advances and prospects of maize cultivation in China. Scientia Agricultura Sinica, 2017, 50(11): 1941-1959. (in Chinses)
[2] LOBELL D B, BURKE M B, TEBALDI C, MASTRANDREA M D, FALCON W P, NAYLOR R L. Prioritizing climate change adaptation needs for food security in 2030. Science, 2008, 319(5863): 607-610.
doi: 10.1126/science.1152339
[3] LOBELL D B, SCHLENKER W, COSTA-ROBERTS J. Climate trends and global crop production since 1980. Science, 2011, 333: 616-620.
doi: 10.1126/science.1204531
[4] 和骅芸, 胡琦, 潘学标, 马雪晴, 胡莉婷, 王晓晨, 何奇瑾. 气候变化背景下华北平原夏玉米花期高温热害特征及适宜播期分析. 中国农业气象, 2020, 41(1): 1-15.
HE H Y, HU Q, PAN X B, MA X Q, HU L T, WANG X C, HE Q J. Characteristics of heat damage during flowering period of summer maize and suitable sowing date in North China plain under climate change. Chinese Journal of Agrometeorology, 2020, 41(1): 1-15. (in Chinese)
[5] CAIRNS J E, CROSSA J, ZAIDI P H. Identification of drought, heat, and combined drought and heat tolerant donors in maize. Crop Science, 2013, 53(4): 1335-1346.
doi: 10.2135/cropsci2012.09.0545
[6] 宋方威, 吴鹏, 邢吉敏, 周小英, 崔筱然, 于秀萍, 王进. 高温胁迫对玉米自交系父本花粉生活力的影响. 玉米科学, 2014, 22(3): 153-158.
SONG F W, WU P, XING J M, ZHOU X Y, CUI X R, YU X P, WANG J. Influences of heat stress on viability of pollen grain inbred lines of male parent. Journal of Maize Sciences, 2014, 22(3): 153-158. (in Chinese)
[7] 闫振华, 刘东尧, 贾绪存, 杨琴, 陈艺博, 董朋飞, 王群. 花期高温干旱对玉米雄穗发育、生理特性和产量影响. 中国农业科学, 2021, 54(17): 3592-3608.
YAN Z H, LIU D Y, JIA X C, YANG Q, CHEN Y B, DONG P F, WANG Q. Maize tassel development, physiological traits and yield under heat and drought stress at flowering stage. Scientia Agricultura Sinica, 2021, 54(17): 3592-3608. (in Chinese)
[8] 郑东泽. 气象因素对寒地玉米生长发育、产量及品质的影响. 哈尔滨: 东北农业大学, 2013.
ZHENG D Z. Effects of meteorological factors on growth, yield and quality of maize in cold regions. Haerbin: Northeast Agricultural University, 2013. (in Chinese)
[9] CAMPBELL C, ATKINSON L, ZARAGOZA-CASTELLS J, LUNDMARK M, ATKIN O, HURRY V. Acclimation of photosynthesis and respiration is asynchronous in response to changes in temperature regardless of plant functional group. New Phytologist, 2007, 176(2): 375-389.
doi: 10.1111/nph.2007.176.issue-2
[10] 刘东尧, 闫振华, 陈艺博, 杨琴, 贾绪存, 李鸿萍, 董朋飞, 王群. 增温对玉米茎秆生长发育、抗倒性和产量的影响. 中国农业科学, 2021, 54(17): 3609-3622.
LIU D Y, YAN Z H, CHEN Y B, YANG Q, JIA X C, LI H P, DONG P F, WANG Q. Effects of elevated temperature on maize stem growth, lodging resistance characters and yield. Scientia Agricultura Sinica, 2021, 54(17): 3609-3622. (in Chinese)
[11] 邵靖宜, 李小凡, 于维祯, 刘鹏, 赵斌, 张吉旺, 任佰朝. 高温干旱复合胁迫对夏玉米产量和茎秆显微结构的影响. 中国农业科学, 2021, 54(17): 3623-3631.
SHAO J Y, LI X F, YU W Z, LIU P, ZHAO B, ZHANG J W, REN B Z. Combined effects of high temperature and drought on yield and stem microstructure of summer maize. Scientia Agricultura Sinica, 2021, 54(17): 3623-3631. (in Chinese)
[12] SUN H, ZHANG X, CHEN S, PEI D, LIU C. Effects of harvest and sowing time on the performance of the rotation of winter wheat-summer maize in the North China Plain. Industrial Crops and Products, 2006, 25(3): 239-247.
doi: 10.1016/j.indcrop.2006.12.003
[13] 任佰朝, 高飞, 魏玉君, 董树亭, 赵斌, 刘鹏, 张吉旺. 冬小麦-夏玉米周年生产条件下夏玉米的适宜熟期与积温需求特性. 作物学报, 2018, 44(1): 137-143.
doi: 10.3724/SP.J.1006.2018.00137
REN B Z, GAO F, WEI Y J, DONG S T, ZHAO B, LIU P, ZHANG J W. Suitable maturity period and accumulated temperature of summer maize in wheat-maize double cropping system. Acta Agronomica Sinica, 2018, 44(1): 137-143. (in Chinese)
doi: 10.3724/SP.J.1006.2018.00137
[14] 陈静, 任佰朝, 赵斌, 刘鹏, 杨今胜, 张吉旺. 基于品种生育期有效积温确定夏玉米适宜播期. 中国农业科学, 2021, 54(17): 3632-3646.
CHEN J, REN B Z, ZHAO B, LIU P, YANG J S, ZHANG J W. Determination on suitable sowing date of summer maize hybrids based on effective accumulated temperature in growth period. Scientia Agricultura Sinica, 2021, 54(17): 3632-3646. (in Chinese)
[15] 中国气象局科技与气候变化司. 2017年中国温室气体公报. 北京, 2019.
Department of Science, Technology and Climate Change, China Meteorological Administration. 2017 China Greenhouse Gases Bulletin. Beijing, 2019. (in Chinese)
[16] ELIZABETH A A, STEPHEN P L. What have we learned from 15 years of free-air CO2 enrichment (FACE)? A meta-analytic review of the responses of photosynthesis, canopy properties and plant production to rising CO2. New Phytologist, 2005, 165(2): 351-372.
doi: 10.1111/nph.2005.165.issue-2
[17] ZONG Y Z, SHANGGUAN Z P. Nitrogen deficiency limited the improvement of photosynthesis in maize by elevated CO2 under drought. Journal of Integrative Agriculture, 2014, 13(1): 73-81.
doi: 10.1016/S2095-3119(13)60349-4
[18] REICH P B, HUNGATE B A, LUO Y Q. Carbon-nitrogen interactions in terrestrial ecosystems in response to rising atmospheric carbon dioxide. Annual Review of Ecology, Evolution, and Systematics, 2006, 37: 611-636.
doi: 10.1146/annurev.ecolsys.37.091305.110039
[19] 牛晓光, 杨荣全, 李明, 段碧华, 刁田田, 马芬, 郭李萍. 大气CO2浓度升高与氮肥互作对玉米光合特性及产量的影响. 中国生态农业学报, 2020(2): 255-264.
NIU X G, YANG R Q, LI M, DUAN B H, DIAO T T, MA F, GUO L P. Effects of interaction between elevated atmospheric CO2 concentration and nitrogen fertilizer on photosynthetic characteristic and yield of maize. Chinese Journal of Ecological Agriculture, 2020(2): 255-264. (in Chinese)
[20] 李明, 李迎春, 牛晓光, 马芬, 魏娜, 郝兴宇, 董李冰, 郭李萍. 大气CO2浓度升高与氮肥互作对玉米花后碳氮代谢及产量的影响. 中国农业科学, 2021, 54(17): 3647-3665.
LI M, LI Y C, NIU X G, MA F, WEI N, HAO X Y, DONG L B, GUO L P. Effects of elevated atmospheric CO2 concentration and nitrogen fertilizer on the yield of summer maize and carbon and nitrogen metabolism after flowering. Scientia Agricultura Sinica, 2021, 54(17): 3647-3665. (in Chinese)
[21] NORBY R J, DELUCIA E H, GIELEN B, CALFAPIETRA C, GIARDINA C P, KING J S, LEDFORD J, MCCARTHY H R, MOORE D J P, CEULEMANS R, DE ANGELIS P, FINZI A C, KARNOSKY D F, KUBISKE M E, LUKAC M, PREGITZER K S, SCARASCIA-MUGNOZZA G E, SCHLESINGER W H, OREN R. Forest response to elevated CO2 is conserved cross a broad range of productivity. Proceedings of the National Academy of Sciences of the USA, 2005, 102(50): 18052-18056.
[22] 王艳红, 于镇华, 李彦生, 刘俊杰, 王光华, 刘晓冰, 谢志煌, Stephen J Herbert, 金剑, 植物–土壤–微生物间碳流对大气CO2浓度升高的响应. 土壤与作物, 2018, 7(1): 22-30.
WANG Y H, YU Z H, LI Y S, LIU J J, WANG G H, LIU X B, XIE Z H, HERBERT S J, JIN J. Carbon flow in the plant-soil-microbe continuum in response to atmospheric elevated CO2. Soils and Crops, 2018, 7(1): 22-30. (in Chinese)
[23] KUZYAKOV Y, GAVRICHKOVA O. Time lag between photosynthesis and carbon dioxide efflux from soil: A review of mechanisms and controls. Global Change Biology, 2010, 16(12): 3386-3406.
doi: 10.1111/j.1365-2486.2010.02179.x
[24] OSANAI Y, KNOX O, NACHIMUTHU G, WILSONA B. Increasing soil organic carbon with maize in cotton-based cropping systems: Mechanisms and potential. Agriculture, Ecosystems and Environment, 2020, 229: 106985.
[25] 房蕊, 于镇华, 李彦生, 谢志煌, 刘俊杰, 王光华, 刘晓冰, 陈渊, 刘居东, 张少庆, 吴俊江, Stephen J Herbert, 金剑. 大气CO2浓度和温度升高对农田土壤碳库及微生物群落结构的影响. 中国农业科学, 2021, 54(17): 3666-3679.
FANG R, YU Z H, LI Y S, XIE Z H, LIU J J, WANG G H, LIU X B, CHEN Y, LIU J D, ZHANG S Q, WU J J, HERBERT S J, JIN J. Effects of elevated CO2 concentration and warming on soil carbon pools and microbial community composition in farming soils. Scientia Agricultura Sinica, 2021, 54(17): 3666-3679. (in Chinese)
[26] WHITE D. Expert Review of The Intergovernmental Panel on Climate Change (IPCC) 2019 Special Report Global Warming of 1.5 °C. 2019.
[27] LI L, XU J H, HU J X, HAN J R. Reducing nitrous oxide emissions to mitigate climate change and protect the ozone layer. Environmental Science and Technology, 2014, 48(9): 5290-5297.
doi: 10.1021/es404728s
[28] THOMPSON R L, LASSALETTA L, PATRA P K, WILSON C, WELLS K C, GRESSENT A, KOFFI E N, CHIPPERDIELD M, WINIWARTER W, DAVIDSON E A, TIAN H, CANADELL J G. Acceleration of global N2O emissions seen from two decades of atmospheric inversion. Nature Climate Change, 2019, 9(2): 1-6.
doi: 10.1038/s41558-018-0385-5
[29] GUDAPATY P, SRINIVAS I, RAO K V, SHANKER A K, RAJU B M K, CHOUDHARY D, RAO K S, SRINIVASRAO C, MANDAPAKA M. Net global warming potential and greenhouse gas intensity of conventional and conservation agriculture system in rainfed semi arid tropics of India. Atmospheric Environment, 2016, 145: 239-250.
doi: 10.1016/j.atmosenv.2016.09.039
[30] ZHANG J T, TIAN H Q, SHI H, ZHANG J F, WANG X K, PAN S F, YANG J. Increased greenhouse gas emission intensity of major croplands in China: Implications for food security and climate change mitigation. Global Change Biology, 2020, 26(11): 6116-6133.
doi: 10.1111/gcb.v26.11
[31] KANTER D R, SEARCHINGER T D. A technology-forcing approach to reduce nitrogen pollution. Nature Sustainability, 2018, 1(10): 544-552.
doi: 10.1038/s41893-018-0143-8
[32] MCGEOUGH K L, WATSON C J, MŰLLER C, LAUGHLIN R. Evidence that the efficacy of the nitrification inhibitor dicyandiamide (DCD) is affected by soil properties in UK soils. Soil Biology and Biochemistry, 2016, 94: 222-232.
doi: 10.1016/j.soilbio.2015.11.017
[33] 赵迅, 郭李萍, 谢立勇, 孙雪, 赵洪亮, 许婧. 不同农作措施对棕壤玉米田N2O排放及碳足迹的影响. 中国农业气象, 2016, 37(3): 270-280.
ZHAO X, GUO L P, XIE L Y, SUN X, ZHAO H L, XU J. Impacts of different farming managements on N2O emission and carbon footprint for maize from brown soil. Chinese Journal of Agrometeorology, 2016, 37(3): 270-280. (in Chinese)
[34] 姚凡云, 刘志铭, 曹玉军, 吕艳杰, 魏雯雯, 吴兴宏, 王永军, 谢瑞芝. 不同类型氮肥对东北春玉米土壤N2O和CO2昼夜排放的影响. 中国农业科学, 2021, 54(17): 3680-3690.
YAO F Y, LIU Z M, CAO Y J, LÜ Y J, WEI W W, WU X H, WANG Y J, XIE R Z. Diurnal variation of N2O and CO2 emissions in spring maize fields in northeast China under different nitrogen fertilizers. Scientia Agricultura Sinica, 2021, 54(17): 3680-3690. (in Chinese)
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