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Role of cytokinin in enhanced productivity of maize supplied with NH4 + and NO3

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Abstract

Supplying both N forms (NH4 ++NO3 ) to the maize (Zea mays L.) plant can optimize productivity by enhancing reproductive development. However, the physiological factors responsible for this enhancement have not been elucidated, and may include the supply of cytokinin, a growth-regulating substance. Therefore, field and gravel hydroponic studies were conducted to examine the effect of N form (NH4 ++NO3 versus predominantly NO3 ) and exogenous cytokinin treatment (six foliar applications of 22 μM 6-benzylaminopurine (BAP) during vegetative growth versus untreated) on productivity and yield of maize. For untreated plants, NH4 ++NO3 nutrition increased grain yield by 11% and whole shoot N content by 6% compared with predominantly NO3 . Cytokinin application to NO3 -grown field plants increased grain yield to that of NH4 ++NO3 -grown plants, which was the result of enhanced dry matter partitioning to the grain and decreased kernel abortion. Likewise, hydroponically grown maize supplied with NH4 ++NO3 doubled anthesis earshoot weight, and enhanced the partitioning of dry matter to the shoot. NH4 ++NO3 nutrition also increased earshoot N content by 200%, and whole shoot N accumulation by 25%. During vegetative growth, NH4 ++NO3 plants had higher concentrations of endogenous cytokinins zeatin and zeatin riboside in root tips than NO3 -grown plants. Based on these data, we suggest that the enhanced earshoot and grain production of plants supplied with NH4 ++NO3 may be partly associated with an increased endogenous cytokinin supply.

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References

  • Antil R S, Yadav D S, Kumar V and Singh M 1983 Effect of forms of nitrogen on dry matter yield, concentration and uptake of N, P, and K in corn (Zea mays L.). Trop. Plant Sci. Res. 1, 353–354.

    Google Scholar 

  • Below F E and Gentry L E 1987 Effect of mixed N nutrition on nutrient accumulation, partitioning, and productivity of corn. J. Fert. Issues 4, 79–85.

    Google Scholar 

  • Buban T, Varga A, Tromp J, Knegt E and Bruinsma J 1978 Effects of ammonium and nitrate nutrition on the levels of zeatin and amino nitrogen in xylem sap of apple root-stocks. Z. Pflanzenernaehr. Bodenkd. 89, 289–295.

    CAS  Google Scholar 

  • Camberato J J and Bock B R 1989 Response of grain sorghum to enhanced ammonium supply. Plant and Soil 113, 79–83.

    Article  CAS  Google Scholar 

  • Cataldo D A, Schrader L E and Youngs V L 1974 Analysis by digestion and colorimetric assay of total nitrogen in plant tissue high in nitrate. Crop Sci. 14, 854–856.

    Article  CAS  Google Scholar 

  • El-Keltawi N E and Croteau R 1987 Influence of foliar-applied cytokinins on growth and essential oil content of several members of the lamiaceae. Photochemistry 26, 891–895.

    Article  CAS  Google Scholar 

  • Ghisi R and Passera C 1987 Effect of benzylaminopurine on enzyme activities of nitrogen assimilation pathway in detached leaves of maize plants. Agrochimica 31, 265–272.

    CAS  Google Scholar 

  • Hansen C E, Wenzler H and Meins F 1984 Concentration gradients of trans-zeatin riboside and trans-zeatin in the maize stem. Plant Physiol. 75, 959–963.

    PubMed  CAS  Google Scholar 

  • Heberer J A, Below F E and Hageman R H 1985 Drying method effect on leaf chemical constituents of four crop species. Crop Sci. 25, 1117–1119.

    Article  Google Scholar 

  • Koter M, Czapla J, Nowak G and Nowak J 1983 A study on use of growth regulators in agricultural production. I. Effect of GA3, IAA, and kinetin on growth and development of bean, maize, and flax. Zesz. Nauk. Akad. Rohn. Tech. Olszytyn. 36, 17–27.

    Google Scholar 

  • Kuiper D, Kuiper P J C, Lambers H, Schuit J and Staal M 1989 Cytokinin concentration in relation to mineral nutrition and benzyladenine treatment in Plantago major ssp. pleiosperma. Physiol. Plant. 75, 511–517.

    Article  CAS  Google Scholar 

  • Kuraishi S, Tezuka T, Ushijima T and Tazaki T 1966 Effect of cytokinins on frost hardiness. Plant Cell Physiol. 7, 705–706.

    CAS  Google Scholar 

  • Michael G and Beringer H 1980 The role of hormones in yield formation. In Physiological Aspects of Crop Productivity. pp 85–115. Proc. 15th Colloq. Int. Potash Institute, Bern, Switzerland.

    Google Scholar 

  • Norman R J, Edberg J C and Stucki J W 1985 Determination of nitrate in soil extracts by dual-wavelength ultraviolet spectrophotometry. Soil Sci. Soc. Am. J. 49, 1182–1185.

    Article  CAS  Google Scholar 

  • Polowick P L and Greyson R I 1984 The relative efficiency of cytokinins in the development of normal spikelets on cultured tassels of Zea mays. Can. J. Bot. 62, 830–834.

    CAS  Google Scholar 

  • Ritchie S W, Hanway J J and Benson G O 1986 How a corn plant develops. Iowa Agric. Home Economics Exp. Stn., Iowa Cooperative Ext. Serv. Spec. Rep. 48.

  • Roa L V M, Datta N, Mahadevan M, Guha-Mukherjee S and Sopory S S 1984 Influence of cytokinins and phytochrome on nitrate reductase activity in etiolated leaves of maize. Photochemistry 23, 1875–1879.

    Article  Google Scholar 

  • Salama A M S El-D and Wareing P F 1979 Effects of mineral nutrition on endogenous cytokinins in plants of sunflower (Helianthus annuus L.) J. Exp. Bot. 30, 971–981.

    CAS  Google Scholar 

  • Schistad I J and Nissen P 1984 Cytokinin-induced retention of chlorophyll in senescing barley leaves: Complexity of dose response. Physiol. Plant. 61, 566–570.

    Article  CAS  Google Scholar 

  • Schrader L E, Domska D, Jung P E and Peterson L A 1972 Uptake and assimilation of ammonium-N and nitrate-N and their influence on the growth of corn (Zea mays L.). Agron. J. 64, 690–695.

    Article  CAS  Google Scholar 

  • Simpson R 1986 Translocation and metabolism of nitrogen: Whole plant aspects. In Fundamental, Ecological and Agricultural Aspects of Nitrogen Metabolism in Higher Plant. Eds. HLambers, J JNeeteson and I.Stulen pp 71–96. Martinus Nijhoff, Dordrecht, The Netherlands.

    Google Scholar 

  • Simpson R J, Lambers H and Dalling M J 1982 Kinetin application to roots and its effect on uptake, translocation and distribution of nitrogen in wheat (Triticum aestivum) grown with a split root system. Physiol. Plant. 56, 430–435.

    Article  CAS  Google Scholar 

  • Swank J C, Below F E, Lambert R J and Hageman R H 1982 Interaction of carbon and nitrogen metabolism in the productivity of maize. Plant Physiol. 70, 1185–1190.

    Article  PubMed  CAS  Google Scholar 

  • Towne G and Owensby C 1983 Cytokinins effect on protein and chlorophyll content of big bluestem leaves. J. Range Manage. 36, 75–77.

    CAS  Google Scholar 

  • Wang X T 1990 Influence of nitrogen form on growth and tillering of wheat. M. Sc. Thesis. Library, Univ. of Illinois, Urbana, IL.

    Google Scholar 

  • Wheeler A W 1972 Changes in growth-promoting substance content during growth of wheat. Ann. Appl. Biol. 72, 327–334.

    Article  CAS  Google Scholar 

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Smiciklas, K.D., Below, F.E. Role of cytokinin in enhanced productivity of maize supplied with NH4 + and NO3 . Plant Soil 142, 307–313 (1992). https://doi.org/10.1007/BF00010976

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