Biological nitrogen in modern agriculture

Authors

  • В. В. Моргун Institute of Plant Physiology and Genetics, NAS of Ukraine, Ukraine
  • С. Я. Коць Institute of Plant Physiology and Genetics, NAS of Ukraine, Ukraine https://orcid.org/0000-0002-3477-793X

DOI:

https://doi.org/10.21498/2518-1017.14.3.2018.145293

Keywords:

nodule bacteria, symbiosis, nitrogen fixation, strains, microbial inoculants, plant productivity, free-living nitrogen-fixing bacteria, mineral fertilizers, associative micro­organisms

Abstract

The value of biological fixation of air molecular nitrogen in the nitrogen feeding of agricultural crops and enrichment of soils is considered. High priority is paid to the economic and environmental significance of biological nitrogen. The state and prospects of the study of biological fixation of air nitrogen were analyzed; advantages of modern microbial nitrogen fixing preparations in comparison with nitrogen fertilizers have been proved.

Downloads

Download data is not yet available.

Author Biographies

В. В. Моргун, Institute of Plant Physiology and Genetics, NAS of Ukraine

Morgun, V. V.

С. Я. Коць, Institute of Plant Physiology and Genetics, NAS of Ukraine

Serhii Kots

References

Kotschi, J. (2013). A soiled reputation: Adverse impacts of mineral fertilizers in tropical agriculture. Berlin: Heinrich-Böll-Stiftung.

Barabasz, W., Albińska, D., Jaśkowska, M., & Lipiec, J. (2002). Biological Effects of Mineral Nitrogen Fertilization on Soil Microorganisms. Pol. J. Environ. Stud., 11(3), 193–198.

Patyka, V. P., Kots, S. Ya., Volkohon, V. V., Sherstoboeva, O. V. Melnychuk, T. M., Kalinichenko, A. V., & Hrynyk, I. V. (2003). Biolohichnyi azot [Biological Nitrogen]. V. P. Patyka (Ed.). Kyiv: Svit. [in Ukrainian]

Canfield, D. E., Glazer, A. N., & Falkowski, P. G. (2010). The evolution and future of Earth’s nitrogen cycle. Science, 330(6001), 192–196. doi: 10.1126/science.1186120

Hungate, B. A., Dukes, J. S., Shaw, M. R., Luo, Y. Q., & Field, C. B. (2003). Nitrogen and climate change. Science, 302(5650), 1512–1513. doi: 10.1126/science.1091390

Galloway, J. N., Dentener, F. J., Capone, D. G., Boyer, E. W., Howarth, R. W., Seitzinger, S. P., … Vöosmarty, C. J. (2004). Nitrogen cycles: past, present, and future. Biogeochemistry, 70(2), 153–226. doi: 10.1007/s10533-004-0370-0

Saiko, V. F. (2016). Vybrani naukovi pratsi [Selected Scientific Works]. Kyiv: Ahrarna nauka. [in Ukrainian]

Morgun, V. V., & Kots, S. Ya. (2018). The role of biological nitrogen in nitrogen nutrition of plants. Visn. Nac. Akad. Nauk Ukr. [Herald of National Academy of Sciences of Ukraine], 1, 62–74. doi: 10.15407/visn2018.01.062 [in Ukrainian]

Drevon, J. J., Alkama, N., Bargaz, A., Rodiño, A., Sungthongwises, K., & Zaman-Allah, M. (2015). The Legume–Rhizobia Symbiosis. In A. M. De Ron (Ed.), Grain Legumes, Handbook of Plant Breeding (No. 10, pp. 267–290). New York: Springer. doi: 10.1007/978-1-4939-2797-5_9

Hirsch, A. M., Lum, M. R., & Downie, J. A. (2001). What Makes the Rhizobia-Legume Symbiosis So Special? Plant Physiol., 127(4), 1484–1492. doi: 10.1104/pp.010866

Mus, F., Crook, M. B., Garcia, K., Costas, A. G., Geddes, B. A., Kouri, E.-D., ... Peters, J. W. (2016). Symbiotic Nitrogen Fixation and Challenges to Extending it to Nonlegumes. Appl. Environ. Microbiol., 82(13), 3698–3710. doi: 10.1128/AEM.01055-16

Herridge, D. F., Peoples, M. B., & Boddey, R. M. (2008). Global inputs of biological nitrogen fixation in agricultural systems. Plant Soil., 311(1–2), 1–18. doi: 10.1007/s11104-008-9668-3

Ferguson, B. J., Indrasumunar, A., Hayashi, S., Lin, M.-H., Lin, Y.-H., Reid, D. E., & Gresshoff, P. M. (2010). Molecular Analysis of Legume Nodule Development and Autoregulation. J. Integr. Plant Biol., 52(1), 61–76. doi: 10.1111/j.1744-7909.2010.00899.x

Walker, R., Agapakis, C. M., Watkin, E., & Hirsch, A. M. (2015). Symbiotic Biological Nitrogen Fixation. Nitrogen Fixation in Legumes: Perspectives on the Diversity and Evolution of Nodulation by Rhizobium and Burkholderia. In F. J. de Bruijn (Ed.), Biological Nitrogen Fixation (Part 1, Vol. 2, Chap. 89, pp. 913–925). Hoboken, NJ: John Wiley & Sons. doi: 10.1002/9781119053095.ch89

Galloway, J. N., Townsend, A. R., Erisman, J. W., Bekunda, M., Cai, Z. E., Freney, J. R., … Sutton, M. A. (2008). Transformation of the nitrogen cycle: recent trends, questions, and potential solutions. Science, 320(5878), 889–892. doi: 10.1126/science.1136674

Gourion, B., Berrabah, F., Ratet, P., & Stacey, G. (2015). Rhizobium–legume symbioses: the crucial role of plant immunity. Trends Plant Sci., 20(3), 186–194. doi: 10.1016/j.tplants.2014.11.008

Masson-Boivin, C., & Sachs, J. L. (2018). Symbiotic nitrogen fixation by rhizobia – the roots of a success story. Cur. Opin. Plant Biol., 44, 7–15. doi: 10.1016/j.pbi.2017.12.001

Kolodziejczyk, M. (2013). Effect of nitrogen fertilization and application of soil properties improving microbial preparations on the content of mineral nitrogen in soil after spring wheat harvesting. J. Cent. Eur. Agr., 14(1), 306–318. doi: 10.5513/JCEA01/14.1.1199

Kozhemyakov, A. P. (1997). Productivity of nitrogen fixation in agrocenoses. Mikrobiologichny Zhurnal [Microbiological Journal], 59(4), 22–28. [in Russian]

Kots, S. Ya., Morgun, V. V., Patyka, V. P., Malichenko, S. M., Mamenko, P. M., Kirizii, D. A., … Melnikova, N. M. (2011). Biologicheskaya fiksatsiya azota: bobovo-rizobial’nyy simbioz [Biological nitrogen fixation: legume-rhizobial symbiosis]. (Vol. 2). Kyiv: Logos. [in Russian]

Sichkar, V. I. (2003). The importance of leguminous crops in improving the stability of steppe farming. Vìsn. agrar. nauki Pričornomorâ [Ukrainian Black Sea region Agrarian Science], 3, 175–180. [in Russian]

International Year of Pulses 2016. (2016). Retrieved from http://www.fao.org/pulses-2016/about/ru/

Smirnov, V. V., Patyka, V. P., Pidhorskyi, V. S., Iutynska, H. О., & Antipchuk, A. F. (2002). Microbial biotechnology in agriculture. Ahroekolohichnyi zhurnal [Agroecological Journal], 3, 3–9. [in Ukrainian]

Tarariko, O. H., Sherstoboyeva, O. V., & Patyka, V. P. (1997). The concept and scientific substantiation of the basic directions in production and realization of microbiological preparations for agriculture. Mikrobiologichny Zhurnal [Microbiological Journal], 59(4), 102–108. [in Ukrainian]

Kots, S. Ya., Morgun, V. V., Patyka, V. P., Datsenko, V. K., Krugova, O. D., Kyrychenko, O. V., Melnykova, N. M., & Mykhalkiv, L. M. (2010). Biologicheskaya fiksatsiya azota: bobovo-rizobial’nyy simbioz [Biological nitrogen fixation: legume-rhizobial symbiosis]. (Vol. 1). Kyiv: Logos. [in Russian]

Kots, S. Ya., Morgun, V. V., Tikhonovich, I. A., Provorov, N. A., Patyka, V. P., Petrychenko, V. F., Melnykova, N. M., & Mamenko, P. M. (2011). Biologicheskaya fiksatsiya azota: genetika azotfiksatsii, geneticheskaya inzheneriya shtammov [Biological nitrogen fixation: genetics of nitrogen fixation, genetic engineering of strains]. (Vol. 3). Kyiv: Logos. [in Russian]

Malichenko, S. M., Datsenko, V. K., Vasyliuk, V. M., & Kots, S. Ya. (2007). Transposon mutagenesis of strains Bradyrhizobium japonicum. Fiziol. Biokhim. Kul’t. Rast. [Physiology and Biochemistry of Cultivated Plants, 39(5), 409–418. [in Ukrainian]

Vasyliuk, V. M., Melnykova, N. M., Mykhalkiv, L. M., Omelchuk, S. V., & Kots, S. Ya. (2007). Formation of the symbiotic relationships between lupine plants and transposon mutants Bradyrhizobium sp. (Lupinus). Fiziol. Biokhim. Kul’t. Rast. [Physiology and Biochemistry of Cultivated Plants], 39(3), 233–241. [in Ukrainian]

Kots, S. Ya., Morgun, V. V., Patyka, V. P., Petrychenko, V. F., Nadker­nichnaya, E. V., & Kyrychenko, O. V. (2014). Biologicheskaya fiksatsiya azota: assotsiativnaya azotfiksatsiya [Biological nitrogen fixation: associative nitrogen fixation]. (Vol. 4). Kyiv: Logos. [in Russian]

Kots, S. Ya., Vorobei, N. A., Kyrychenko, O. V., Melnykova, N. M., Mykhalkiv, L. M., & Pukhtaievytch, P. P. (2016). Mikrobiolohichni preparaty dlia silskoho hospodarstva [Microbiological Preparations for Agriculture]. Kyiv: Logos. [in Ukrainian]

Kyrychenko, O. V. (2014). Biotekhnologii v rastenievodstve [Biotechnology in Planting]. Nikolaev: Ilion. [in Russian]

Volkohon, V. V. (2007). Mikrobiolohichni aspekty optymi­za­tsii azotnoho udobrennia silskohospodarskykh kultur [Micro­biological aspects of nitrogen fertilization for agricultural crops]. Kyiv: Ahrarna nauka. [in Ukrainian]

Ignatov, V. V. (Ed.). (2005). Molekulyarnye osnovy vzaimo­ot­nosheniy assotsiativnykh mikroorganizmov s rasteniyami [Molecular bases of relationships between associative microorganisms and plants]. Moscow: Nauka. [in Russian]

Published

2018-10-23

How to Cite

Моргун, В. В., & Коць, С. Я. (2018). Biological nitrogen in modern agriculture. Plant Varieties Studying and Protection, 14(3), 285–294. https://doi.org/10.21498/2518-1017.14.3.2018.145293

Issue

Section

PLANT PHYSIOLOGY