• Scopus
  • Chinese Science Citation Database (CSCD)
  • A Guide to the Core Journal of China
  • CSTPCD
  • F5000 Frontrunner
  • RCCSE
Advanced search
LIU Tong, WANG Chen, XU Lu, ZHOU Zhi-qiang, ZHANG Yu-hong. Effects of foliar nitrogen application on growth and photosynthetic characteristics of Taxus cuspidata seedlings.[J]. Journal of Beijing Forestry University, 2016, 38(8): 64-70. DOI: 10.13332/j.1000-1522.20160099
Citation: LIU Tong, WANG Chen, XU Lu, ZHOU Zhi-qiang, ZHANG Yu-hong. Effects of foliar nitrogen application on growth and photosynthetic characteristics of Taxus cuspidata seedlings.[J]. Journal of Beijing Forestry University, 2016, 38(8): 64-70. DOI: 10.13332/j.1000-1522.20160099

Effects of foliar nitrogen application on growth and photosynthetic characteristics of Taxus cuspidata seedlings.

More Information
  • Received Date: March 21, 2016
  • Published Date: August 30, 2016
  • In order to find the growth responseto nitrogen fertilizing during the breeding of Taxus cuspidata, six-year-old seedlings were taken as experimental materials to study the fertilizing effects of foliar nitrogen on growth, leaf nitrogen content, chlorophyll content and photosynthetic characteristics. The seedlings were treated with three nitrogen levels (0.5, 1.0, 1.5 g/L) and three nitrogen forms, namely, urea, nitrate-nitrogen and ammonium nitrogen. The results showed that the growth of seedlings treated with nitrogen were better than the seedlings treated with water (CK), and the branch growth treated with 1 g/L urea was 39.1% longer than that of CK (P 0.01). Leaf nitrogen content and chlorophyll content of all nitrogen treated seedlings increased obviously, the seedlings treated with 1.5 g/L urea had the highest nitrogen content which was 20.0% higher than CK (P0.01), total chlorophyll content and chlorophyll a content of the seedlings fertilized with 1 g/L urea were 20.5% and 27.1% higher than that of CK, respectively (P0.01). The seedlings treated with nitrogen had better photosynthetic indexes than that of CK (except for the seedlings treated with 1.5 g/L ammonium sulfate) including the net photosynthetic rate (Pn), the maximum net photosynthetic rate (Pmax), apparent quantum efficiency (AQY) and light saturated point (LSP), and Pmax of seedlings treated with 1 g/L urea was improved by 62.0% (P 0.01) compared with CK. In general, total chlorophyll content and Pmax of seedlings showed an increasing trend as leaf nitrogen content increased, 1 g/L urea treatment had the best result, and there was no obvious difference between nitrate-nitrogen and ammonium nitrogen treatment.
  • [1]
    EVANS J R. Developmental constraints on photosynthesis: effects of light and nutrition[M]. New York: Springer, 1996: 281-304.
    [1]
    HAO L F, LIU T Y, ZHANG L F, et al. Effects of N exponential fertilization on nutrient loading and photosynthesis of Betula platyphylla seedlings[J].Journal of Beijing Forestry University, 2014,36(6):17-23.
    [2]
    BOUSSADIA O, STEPPE K, VAN LABEKE M C, et al. Effects of nitrogen deficiency on leaf chlorophyll fluorescence parameters in two olive tree cultivars ‘Meski’ and ‘Koroneiki’[J]. Journal of Plant Nutrition, 2015, 38(14): 2230-2246.
    [2]
    ZHANG Z L, ZHAI W J.Plant physiology experiment instruction[M]. Beijing:Higher Education Press, 2003:35-43.
    [3]
    WANG J H, REN S F, SHI B S, et al.Effects of shades on the photosynthetic characteristics and chlorophyll fluorescence parameters of Forsythia suspensa[J].Acta Ecologica Sinica, 2011,31(7):1811-1817.
    [3]
    郝龙飞, 刘婷岩, 张连飞, 等. 氮素指数施肥对白桦播种苗养分承载和光合作用的影响 [J]. 北京林业大学学报, 2014, 36(6): 17-23.
    [4]
    ZHANG H H, LI W, HU J W, et al.Responses of photosynthetic characteristics in leaves of Populus simonii×P. nigra and Morus alba L. seedlings to nitrogen forms[J]. Journal of Nanjing Forestry University,2016,40(2):1-8.
    [4]
    BOXMAN A W, ROELOFS J G. Some effects of nitrate versus ammonium nutrition on the nutrient fluxes in Pinus sylvestris seedlings: effects of mycorrhizal infection[J]. Canadian Journal of Botany, 1988, 66(6): 1091-1097.
    [5]
    MARSCHNER H, HUSSLING M, GEORGE E. Ammonium and nitrate uptake rates and rhizosphere pH in non-mycorrhizal roots of Norway spruce (Picea abies (L.) Karst.)[J]. Trees, 1991, 5(1): 14-21.
    [5]
    CHEN Y L, LIU M H, LI X L. Effects of different nitrogen forms and ratios on the photosynthetic characteristics of Pinus koraiensis seedlings [J].Journal of Nanjing Forestry University,2005,29(3):77-80.
    [6]
    ZHANG Y, CUI X Y.Nitrogen absorption and assimilation characteristics of Pinus koraiensis seedings in different NH+4/NO-3 ratios[J]. Journal of Beijing Forestry University,2011,33(5):61-64.
    [6]
    KRONZUCKER H J, SIDDIQI M Y, GLASS A D. Conifer root discrimination against soil nitrate and the ecology of forest succession[J]. Nature, 1997, 385: 59-61.
    [7]
    LIU C S. Soil fertilizer science[M]. Beijing: China Agricultural University Press,2006:177.
    [7]
    MALAGOLI M, DAL CANAL A, QUAGGIOTTI S, et al. Differences in nitrate and ammonium uptake between scots pine and european larch[J]. Plant and Soil, 2000, 221(1): 1-3.
    [8]
    GUO S, ZHOU Y, SHEN Q, et al. Effect of ammonium and nitrate nutrition on some physiological processes in higher plants-growth, photosynthesis, photorespiration, and water relations[J]. Plant Biology, 2007, 9(1): 21-29.
    [9]
    GHILOUFI W, CHAIEB M. Leaf traits of two Mediterranean perennial tussock grass species in relation to soil nitrogen and phosphorus availability[J]. African Journal of Ecology, 2015, 53(4): 581-587.
    [10]
    WANG L Y, DING L M, HUO S C, et al. Three new taxoids from the seed of Taxus cuspidata[J]. Journal of Natural Medicines, 2013, 67(4): 827-832.
    [11]
    WANG X X, SHIGEMORI H, KOBAYASHI J I. Taxezopidine A, a novel taxoid from seeds of Japanese yew Taxus cuspidata[J]. Tetrahedron Letters, 1997, 38(43): 7587-7588.
    [12]
    FAUZEE N. Taxanes: promising anti-cancer drugs[J]. Asian Pacific Journal of Cancer Prevention, 2011, 12(4): 837.
    [13]
    LI S T, FU C H, ZHANG M, et al. Enhancing taxol biosynthesis by overexpressing a 9-cis-epoxycarotenoid dioxygenase gene in transgenic cell lines of Taxus chinensis[J]. Plant Molecular Biology Reporter, 2012, 30(5): 1125-1130.
    [14]
    张志良, 翟伟箐. 植物生理学实验指导 [M]. 北京: 高等教育出版社, 2003: 35-43.
    [15]
    HU Y B, SUN G Y, WANG X C. Induction characteristics and response of photosynthetic quantum conversion to changes in irradiance in mulberry plants[J]. Journal of Plant Physiology, 2007, 164(8): 959-968.
    [16]
    BOARDMAN N. Comparative photosynthesis of sun and shade plants[J]. Annual Review of Plant Physiology, 1977, 28(1): 355-377.
    [17]
    王建华, 任士福, 史宝胜, 等. 遮荫对连翘光合特性和叶绿素荧光参数的影响 [J]. 生态学报, 2011, 31(7): 1811-1817.
    [18]
    张会慧, 李威, 胡举伟, 等. 小黑杨和桑树幼苗叶片光合特性对不同氮素形态的响应 [J]. 南京林业大学学报(自然科学版), 2016, 40(2): 1-8.
    [19]
    陈永亮, 刘明河, 李修岭. 不同形态氮素配比对红松幼苗光合特性的影响 [J]. 南京林业大学学报(自然科学版), 2005, 29(3): 77-80.
    [20]
    PIWPUAN N, ZHAI X, BRIX H. Nitrogen nutrition of Cyperus laevigatus and Phormium tenax: effects of ammonium versus nitrate on growth, nitrate reductase activity and N uptake kinetics[J]. Aquatic Botany, 2013, 106: 42-51.
    [21]
    JAMPEETONG A, BRIX H. Nitrogen nutrition of Salvinia natans: effects of inorganic nitrogen form on growth, morphology, nitrate reductase activity and uptake kinetics of ammonium and nitrate[J]. Aquatic Botany, 2009, 90(1): 67-73.
    [22]
    张韫, 崔晓阳. 不同NH+4/NO-3配比作用下红松幼苗的氮吸收和同化特征 [J].北京林业大学学报, 2011, 33(5): 61-64.
    [23]
    TEMPLER P, DAWSON T. Nitrogen uptake by four tree species of the Catskill Mountains, New York: implications for forest N dynamics [J]. Plant and Soil, 2004, 262(1-2): 251-261.
    [24]
    NELSON L, SELBY R. The effect of nitrogen sources and iron levels on the growth and composition of sitka spruce and scots pine[J]. Plant and Soil, 1974, 41(3): 573-588.
    [25]
    STADLER J, GEBAUER G. Nitrate reduction and nitrate content in ash trees (Fraxinus excelsior L.): distribution between compartments, site comparison and seasonal variation[J]. Trees, 1992, 6(4): 236-240.
    [26]
    刘春生. 土壤肥料学 [M]. 北京: 中国农业大学出版社, 2006: 177.
    [27]
    WARREN C R, DREYER E, ADAMS M A. Photosynthesis-Rubisco relationships in foliage of Pinus sylvestris in response to nitrogen supply and the proposed role of Rubisco and amino acids as nitrogen stores [J]. Trees, 2003, 17(4): 359-366.
    [28]
    MANTER D K, KAVANAGH K L, ROSE C L. Growth response of Douglas-fir seedlings to nitrogen fertilization: importance of Rubisco activation state and respiration rates [J]. Tree Physiology, 2005, 25(8): 1015-1021.
    [29]
    BERNARDI A C D C, CARMELLO Q A D C, CARVALHO S A D, et al. Nitrogen, phosphorus and potassium fertilization interactions on the photosynthesis of containerized citrus nursery trees [J]. Journal of Plant Nutrition, 2015, 38(12): 1902-1912.
    [30]
    NAKAJI T, FUKAMI M, DOKIYA Y, et al. Effects of high nitrogen load on growth, photosynthesis and nutrient status of Cryptomeria japonica and Pinus densiflora seedlings [J]. Trees, 2001, 15(8): 453-461.
  • Related Articles

    [1]Li Chenxi, Wei Xing, Tang Jingwen, Cheng Xin, Liu Jing, Peng Zhenglin, Su Anran, Su Jiaxi, Wu Chenglin, Wu Chunze. Response of photosynthetic and stoichiometric characteristics of female and male leaves of Fraxinus mandshurica to exogenous hormones[J]. Journal of Beijing Forestry University, 2023, 45(12): 80-89. DOI: 10.12171/j.1000-1522.20220335
    [2]Zhang Xing, Wang Miaomiao, Li Guolei, Bai Zhengjia, Yao Fei. Photosynthetic response of Quercus variabilis and Quercus aliena var. acuteserrata seedlings to high temperature stress[J]. Journal of Beijing Forestry University, 2022, 44(7): 25-35. DOI: 10.12171/j.1000-1522.20210240
    [3]Hu Chengfeng, Chen Qiaoling, Qiao Xuetao, Cheng Yanxia. Photosynthetic, spectral reflectance characteristics and primary productivity of main tree species in broadleaved Korean pine forest[J]. Journal of Beijing Forestry University, 2020, 42(5): 12-24. DOI: 10.12171/j.1000-1522.20190364
    [4]LIU Tong, JIN Hui-ying, XU Hao-yu, ZHOU Zhi-qiang, ZHANG Yu-hong. Diurnal changes of photosynthetic characteristics of Taxus cuspidata seedlings under different light conditions.[J]. Journal of Beijing Forestry University, 2015, 37(10): 67-72. DOI: 10.13332/j.1000-1522.20150007
    [5]FENG Da-lan, HUANG Xiao-hui, LIU Yun, ZHU Heng-xing, XIANG Zhong-huai. Growth and photosynthetic characteristics of four woody plants in the rocky and desertified area.[J]. Journal of Beijing Forestry University, 2015, 37(5): 62-69. DOI: 10.13332/j.1000-1522.20130531
    [6]HE Qian, SU Yan, LI Ji-yue, CHEN Bo, LI Zhi-hua, ZHANG Zhong-you, LIU Yu-xian. Photosynthetic characteristics of Cryptomeria fortunei and Cupressus funebris in different site types[J]. Journal of Beijing Forestry University, 2011, 33(6): 75-79.
    [7]LA Yan-fei, ZHANG Qi-xiang, PAN Hui-tang, SUN Ming. Growth, development and photosynthetic characteristics of Lilium Oriental hybrids under low light conditions[J]. Journal of Beijing Forestry University, 2010, 32(4): 213-217.
    [8]WANG Fei, YIN Wei-lun, XIA Xin-li, XIE Qian-jin. Mutagenic effect of aerospace on morphological and photosynthetic characteristics of tall fescue SP1.[J]. Journal of Beijing Forestry University, 2010, 32(3): 106-111.
    [9]WANG Yan-mei, NIU Xiao-feng, LIU Zhen, ZHANG Na, FAN Xin. Photosynthetic characteristics of Paulownia during growth cessation and terminal buds death.[J]. Journal of Beijing Forestry University, 2009, 31(6): 121-127.
    [10]HE Ming, ZHAI Ming-pu, CAO Bang-hua. Effects of increased nitrogen and phosphorus on photosynthetic characteristics of Robinia pseudoacacia clonal seedlings under water stress[J]. Journal of Beijing Forestry University, 2009, 31(6): 116-120.
  • Cited by

    Periodical cited type(4)

    1. 李树萍,董琼,李世民,金友帆,张梅. 树番茄幼苗生长及氮积累与分配对光照和氮素添加的响应. 江西农业大学学报. 2023(01): 156-168 .
    2. 刘博达. 氮肥对油松幼苗生长的影响. 特种经济动植物. 2023(11): 28-30 .
    3. 潘陆荣,周袁慧子,王艺锦,苏远玉,王凌晖. 遮光和施肥对苹婆幼苗生理特性和氮素积累的影响. 湖北农业科学. 2021(14): 79-85 .
    4. 李惋瑾,王若水,肖辉杰,王百田,张克斌,刘青青,郭冰寒. 鲜海带生物酶解有机液肥对沙木蓼生长和土壤理化性质的影响. 北京林业大学学报. 2018(07): 62-72 . 本站查看

    Other cited types(12)

Catalog

    Article views (1746) PDF downloads (32) Cited by(16)

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return