论文

氮素水平对旱作小麦光合特性的影响

  • 高素玲 ,
  • 苗丰 ,
  • 陈建辉 ,
  • 信龙飞 ,
  • 邵瑞鑫
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  • 1. 河南农业职业学院, 河南 中牟 451450;
    2. 河南省粮食作物生理生态与遗传改良重点实验室, 河南 郑州 450002
高素玲(1967- ),女,河南民权人,副教授,主要从事作物栽培研究

收稿日期: 2013-03-27

  网络出版日期: 2014-10-14

基金资助

河南省基础研究项目(122300410012)

Effects of Nitrogen Levels on Photosynthetic Characteristics of Triticum aestivum L. in Dry Farmland

  • GAO Su-ling ,
  • MIAO Feng ,
  • CHEN Jian-hui ,
  • XIN Long-fei ,
  • SHAO Rui-xin
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  • 1. Henan Vocational College Agriculture, Zhongmu 451450, China;
    2. Key Laboratory of Physiology, Ecology and Genetic Improvement of Food Crops in Henan Province, Zhengzhou 450002, China

Received date: 2013-03-27

  Online published: 2014-10-14

摘要

在大田试验条件下,以长武134(旱地品种)与郑麦9023(水地品种)为试验材料,研究了4个施氮水平对小麦不同生育时期光合作用和产量的影响。结果表明:在0~180 kg/hm 2 施氮水平范围内,随着施氮量的增加,2个品种的叶绿素(Chl)含量、光合速率(Pn)、光合性能指数(PI)、生物量在各个生育时期均表现为上升趋势;施氮量继续增加(≥180 kg/hm2 ),2个品种的Pn、生物量开始呈下降趋势,而PI值和Chl含量则无明显变化。同时,随着氮水平的升高,2个品种的产量也表现出先升后降的趋势,在180 kg/hm2 施氮水平时小麦产量最高。

本文引用格式

高素玲 , 苗丰 , 陈建辉 , 信龙飞 , 邵瑞鑫 . 氮素水平对旱作小麦光合特性的影响[J]. 华北农学报, 2013 , 28(4) : 169 -173 . DOI: 10.3969/j.issn.1000-7091.2013.04.031

Abstract

Nitrogen(N) is one of the main factors restricting the photosynthesis,and the deficiency of N will ul timately affect the yield and quality of crops.Field trials were conducted using Changwu 134(Dryland cultivar) an Zhengmai 9023(Irrigated- land cultivar) as material to study the effect of four nitrogen rates on photosynthesis an biomass of wheat at different growth stages.The results showed that,in the range of N 0- 180 kg /ha,the chlorophyl (Chl) content,photosynthetic rate(Pn),photosynthetic performance index(PI) and biomass of the two varieties a different stages all showed a upward trend with the increasing nitrogen application level.However,when the nitroge application level was increased further(180 kg /ha),the Pn and biomass of the two varieties began to present downward trend,while the PI and Chl contents had no significant changes.Furthermore,the changing trend of yiel with increasing nitrogen level were the same to that of phtosynthesis and biomass in the two varieties,the highes yiled being from the treatment 180 kg /ha.

参考文献

[1] Field C,Mooney H A. The photosynthesis-nitrogen rela-tionship in wild plants[M]//Givinsh T J. On the econo-my of form and function. Cambridge: Cambridge Universi-ty Press,1986: 25-55.
[2] Sun N X,Zong X F,Wang S G. Effects of nitrogen supply on photosynthetic traits of maize[J]. Journal of Southwest Agricultural University,2005,27(3): 389-392.
[3] Nziger M,Edmeades G O,Lafitte R H. Selection for drought tolerance increases maize yields across a range of nitrogen levels[J] . Crop Science,1999,39 (4): 1035-1040.
[4] Appenroth K J,Stckel J,Srivastava A,et al. Multiple effects of chromate on the photosyntheticapparatus of Spi-rodela polyrhiza as probed by OJIP chlorophyll a fluores-cence measurements[J]. Environmental Pollution,2001,115: 49-64.
[5] Van Heerden P D R,Tsimilli-Michael M,Krüger G H J,etal. Dark chilling effects on soybean genotypes during veg-etative development: parallel studies of CO2 assimilation,chlorophyll a fluorescence kinetics O-J-I-P and nitrogen fixation[J]. Physiology Plant,2003,117: 476-491.
[6] Van Heerden P D R,Strasser R J,Krüger G H J. Reduc-tion of dark chilling stress in N2-fixing soybean by nitrate as indicated by chlorophyll a fluorescence kinetics[J]. Physiology Plant,2004,121: 239-249.
[7] 王西娜,王朝辉,李生秀. 施氮量对夏季玉米产量及土 壤水氮动态的影响[J]. 生态学报,2007,27(1): 197-204.
[8] 段巍巍,赵红梅,郭程瑾,等. 夏玉米光合特性对氮素 用量的反应[J]. 作物学报,2007,33(6): 949-954.
[9] 王继芳,刘树堂,宋希云. 长期定位施肥对夏玉米光合 性状及产量的影响[J]. 中国农学通报,2009,25(15): 136-139.
[10] Dai J,Gao H,Dai Y,et al. Changes in activity of energy dissipating mechanisms in wheat flag leaves during se-nescence[J]. Plant Biol,2004,6(2): 171-177.
[11] Jiang C D,Gao H Y,Zou Q. Changes of donor and ac-cepter side in photosystem II complex induced by iron deficiency in attached soybean and maize leaves[J]. Photosynthetica,2003,4(2): 267-271.
[12] Chen S G,Dai X B,Qiang S,et al. Effect of a nonhost-selective toxin from Alternaria alternata on chloroplast-e-lectron transfer activity in Eupatorium adenophorum[J]. Plant Phathology,2005,54: 671-677.
[13] Fryer M J,Andrews J R,Oxborough K,et al. Relation-ship between CO2 assimilation,photosynthetic electron transport,and active O2 metabolism in leaves of maize in the field during periods of low temperature[J]. Plant Physiology,1998,116: 571-580.
[14] Chen H X,Li W J,An S Z,et al. Dissipation of excess en-ergy in Mehler-peroxidase reaction in Rumex leaves during salt shock[J] . Photosynthetica,2004,42(1): 117-122.
[15] Shao R X,Wang K B,Shangguan Z P. Cytokinin-induced photosynthetic adaptability of Zea mays L. to drought stress associated with nitric oxide signal: Probed by ESR spectroscopy and fast OJIP fluorescence rise[J]. Journal of Plant Physiology,2010,167(6): 472-479.
[16] Thach L B,Shapcott A,Schmidt S,et al. The OJIP fast fluorescence rise characterizes Graptophyllum species and their stress responses[J]. Photosynthesis Research,2007,94(2-3): 423-436.
[17] 黄中文,赵团结,喻德跃,等. 大豆生物量积累 收获 指数及产量间的相关与 QTL 分析[J]. 作物学报,2008(6): 944-951.
[18] 平晓燕,周广胜,孙敬松. 植物光合产物分配及其影 响因子研究进展[J]. 植物生态学报,2010,34 (1): 100-111.
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