Effect of Combined Application of Organic and Chemical Nitrogen Fertilizers on Physi-ological Indices and Grain Yield of Maize (Zea mays L)
Subject Areas : Journal of Crop Nutrition ScienceBanafsheh Hatampor 1 , Seyed Keyvan Marashi 2
1 - MSc. Student, Department of Agronomy, Ahvaz Branch, Islamic Azad University, Ahvaz, Iran.
2 - Associate Professor, Department of Agronomy, Ahvaz Branch, Islamic Azad University, Ahvaz, Iran
Keywords: Azotobacter, Biofertilizer, Nitroxin, Nutrition, Sustainable agriculture,
Abstract :
BACKGROUND: The integrated management of plant nutrition is always considered as a solution in sustainable development. In this process, the need for chemical fertilizers is reduced and helps to make the environment healthier. OBJECTIVES: Current study was done to assess effect of different level of fertilizer and biofertlizer on growth curves and crop production. METHODS: This experiment was conducted via randomized complete block design (RCBD) with three replications at Shahid Salemi field in south west of Iran-Ahvaz. The studied treatments included urea application only, Nitroxin application only, Nitroxin + 25% nitrogen from urea source, Nitroxin + 50% nitrogen from urea source, Nitroxin + 75% nitrogen from urea source, Azotobacter application only, Azotobacter + 25% nitrogen from urea source, Azotobacter + 50% nitrogen from urea source, Azotobacter + 75% nitrogen from urea source. RESULT: The results indicated that the combined application of organic and chemical nitrogen fertilizers had a significant effect on growth indices. The highest values of dry matter accumulation, leaf area index, relative growth rate, crop growth rate, and net assimilation rate were obtained from the Nitroxin + 75% nitrogen from urea source, Azotobacter + 75% nitrogen from urea source, and Nitrogen supply entirely from urea source treatments. The lowest values of growth indices were observed under 100% Nitroxin and 100% Azotobacter nitrogen source treatments. The combined fertilizer treatment significantly influenced grain yield. The highest grain yield was obtained from Nitroxin + 75% nitrogen from urea source and Azotobacter + 75% nitrogen from urea source treatments with averages of 3670 and 3500 Kg.ha-1, respectively. The lowest grain yield with average of 2610 Kg.ha-1 was obtained from the treatment using only nitrogen from the Azotobacter source. CONCLUSION: Overall, the results of the experiment showed that the simultaneous use of organic and chemical nitrogen fertilizers can have a positive effect on physiological indices and grain yield while reducing the use of chemical fertilizers. This can significantly contribute to environmental sustainability and serves as an important strategy towards sustainable agriculture.
Asadi Kopal, S. and S. Eesazadeh lzrjan. 2009. Nitroxin impact of bio-fertilizer and soil on plant growth and yield of rice. The 1st Regional Conf. Soil and Water Res. Manag. Its Role in Agri. Islamic Azad University of Shahre Ghods. (Abstract in English)
Ashkavand, M., M. Roshdi, J. Khalili Mohaleh, F. Jalili. and A. Hosseinpour. 2013. Effect of drought stress during phonological stage and biofertilizer and nitrogen applica-tion on yield and yield components of corn (KSC 704). J. Crop EcoPhysiol. (Agri. Sci.). 6(4): 365-375.
Burris, R. H. 2000. Retrospective on biological nitrogen fixation. International Rice Re-search Institute (IRRI).
Hamzei J. and H. Sarmadi Naiebi. 2010. Effect of biological and chemical fertilizers ap-plication on yield, yield components, agronomic efficiency and nitrogen uptake in Corn. Plant Prod. Tech. (Agri. Res). 10(2): 53-63.
Blak, C. A. 2011. Soil fertility evaluation and control. Lewis Publisher, London. UK. 415 pp.
Cakir, R. 2004. Effect of water stress at different development stage on vegetative and reproductive growth of corn. Field Crops Res. 89(1):1-16.
Campillo, R., C. Jobet. and P. Undurraga. 2010. Effects of nitrogen on productivity, grain quality, and optimal nitrogen rates in winter Wheat cv. Kumpa-inia in andisols of southern Chile. Chilean J. Agri. Res. 70 (1): 122-131.
Chaudhary, P., A. Chaudhary, U. Agri, H. Khatoon. and A. Singh, A. 2022. Recent trends and advancements for agro-environmental sustainability at higher altitudes. In: Sur-vival Strategies in Cold-adapted Microorganisms, Eds R. Goel, R. Soni, D. C. Suyal, and M. Khan M. (Singapore: Springer). Doi: 10.1007/978-981-16-2625-8-19.
Diaz, C., V. Saliba-Colombani, O. Loudet, P. Belluomo, L. Moreau, F. Daniel-Vedele, J-F, Morot-Gaudry. and C. Masclaux-Daubresse. 2006. Leaf yellowing and anthocya-nin accumulation are two genetically independent strategies in response to nitrogen limita-tion in Arabidopsis thaliana. Plant Cell Physiol. 47: 74–83.
Khavari, S. 2010. The need for industrial production of bio-fertilizers in the country. Sinai Publishing. 420pp.
Koochaki, A. and Gh. H. Sarmadnia. 2013. Physiology of Crop Plants. Publications University of Mashhad. 400pp.
Lack, Sh., A. Naderi, S. A. Siadat, A. Ayenehband, Gh. Noormohammadi. and S. H. Moosavi. 2008. The Effects of different levels of irrigation, nitrogen and plant population on yield, yield components and dry matter remobilization of Corn at climatical conditions of Khuzestan. J. Water and Soil Sci. 11(42): 1-14.
Lawrence, J. R., Q. M. Ketterings. and J. H. Cherney. 2008. Effect of nitrogen applica-tion on yield and growth of Corn. Agron. J. 100(1): 73-79.
Mirza, M. S., G. Rasul, J. K. Mehnazs Ladha, S. Ali. and K. A. Malik. 2000. Beneficial effects of inoculated nitrogen-fixing bacteria on rice. In: Ladha, J.K., Reddy, P.M. (eds) The quest for nitrogen fixation in rice. Intl. Rice Res. Institute. 191–204.
Naseri Rad, H., A. Soleymanifard. and R. Naseri. 2011. Effect of integrated application of biofertilizer on grain yield, yield components and associated traits of Maize cultivars. American-Eurasian J. Agri. Environ. Sci. 10(2): 271-277.
Nemat, A. R. and R. Seyed Sharifi. 2014. Effects of rates and nitrogen application timing on yield, agronomic characteristics and nitrogen use efficiency in corn. Intl. J. Agri. Crop Sci. 4(9): 534-539.
Noormohamadi, G. H., S. A. Siadat. and A. Kashani. 2001. Cereals. Publications of Shahid Chamran University press. Ahvaz. 446 p.
Oliverira, A., E. L. de Canuto, S. Urquiaga, V. M. Reis. and V. M. Baldani. 2006. Yield of micropropagated sugarcane varieties in different soil types following inoculation with diazotrophic bacteria. Plant Soil. 284: 23-32.
Seyed Sharifi, R., F. Lotfollah. and H. Kamari. 2012. Evaluation of effects of Azoto-bacter, Azospirillum and Psedomunas inoculation and spraying of nitrogen on fertilizer use efficiency and growth of Triticale. J. Soil Manag. Sustainable Prod. 5(4): 115-132.
Shaharoona, B., M. Arshad, A. Z. Zahir. and A. Khalid. 2012. Performance of Pseu-domonas spp. containing ACC-deaminase for improving growth and yield of maize (Zea mays L.) in the presence of nitrogenous fertilizer. Soil Biol. Bio. 38(9): 2971–2975.
Sharma, A. K. 2003. Biofertilizer for sustainable agriculture. Biofertilizers for Sustainable Agriculture. Updesh Purohit for Agrobios. Jodhpur. 41-46.
Singh, R., R. K. Behl, K. P. Singh, P. Jain. and N. Narula. 2004. Performance and gene effects for wheat yield under inoculation of arbuscular mycorrhiza fungi and Azotobacter chroococcum. Haryana Agricultural University. Hisar, Indi. Plant Soil Environ. 50: 409-415.
Srivastava, R. K., R. K. Panda, A. Chakraborty. and D. Halder 2018. Enhancing grain yield, biomass and nitrogen use efficiency of maize by varying sowing dates and nitrogen rate under rainfed and irrigated conditions. Field Crops Res. 221: 339-349.
Doi: 10.1016/j.fcr.2017.06.019
Stit, M. and A. Krapp. 1999. The interaction between elevated carbon dioxide and nitro-gen nutrition: the physiological and molecular background. Plant Cell Environ. 22: 583-621.
Sturz, A. V. and B. R. Christe. 2003. beneficial microbial allelopathies in the root zone: The management of Soil quality and plant disease with rhizobacteria. Soil and Tillage Res. 72(2): 107-123.
Tilake, K. V. B. R., N. Ranganayaki, K. K. Pal. and A. Saxena. 2005. Diversity of plant growth and soil health supporting bacteria. Current Sci. 89(1): 136-150.
Wani, S. P. 1988. Nitrogen fixation potantialites of sorghum and millets. In: Biological Ni-trogen Fixation: Recent Developments (Ed. NS Subba Rao). Oxford and IBH. New Delhi. India. 125-174.
Wei, S., X. Wang, G. Li, Y. Qin, D. Jiang. and S. T. Dong. 2019. Plant density and ni-trogen supply affect the grain filling parameters of maize kernels located in different ear positions. Front. Plant Sci. 10: 180. doi: 10.3389/fpls.2019.00180.
Zahir, A. Z., M, Arshad. and A. Khalid. 2004. Improving Maize yield by inoculation with plant growth promoting rhizobacteria. Pak. J. Soil Sci. 15: 7-11.