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Research Article

Effect of Organic and Inorganic Fertilization on Soil Enzyme Activities in Relation to Yield and Proximate Composition of Colocasia (Colocasia esculenta L) in Alfisols of Eastern India

Pages 2635-2651 | Received 12 Jan 2021, Accepted 24 Jan 2022, Published online: 30 May 2022

References

  • Adediran, J. A., L. B. Taiwo, M. O. Akande, R. A. Sobulo, and O. J. Idowu. 2005. Application of organic and inorganic fertilizer for sustainable maize and cowpea yields in Nigeria. Journal of Plant Nutrition 27:1163–81. doi:10.1081/PLN-120038542.
  • Amanullah, M. M., K. Sathyamoorthi, K. Vaiyapuri, A. Alagesan, and S. Pazhanivelan. 2007. Influence of organic manures on the nutrient uptake and soil fertility of cassava (Manihot esculenta Crantz.) intercropping systems. International Journal of Agricultural Research 2:136–44. doi:10.3923/ijar.2007.136.144.
  • Anderson, D. W. 1988. The effect of parent material and soil development on nutrient cycling in temperate ecosystem. Biogeochemistry 5:71–97. doi:10.1007/BF02180318.
  • Bell, C. W., S. Asao, F. Calderon, B. Wolk, and M. D. Wallenstein. 2015. Plant nitrogen uptake drives rhizosphere bacterial community assembly during plant growth. Soil Biology and Biochemistry 85:170–82. doi:10.1016/j.soilbio.2015.03.006.
  • Bhattacharyya, R., S. Chandra, R. D. Singh, S. Kundu, A. Srivastva, and H. GUPTA. 2007. Long-term farmyard manure application effects on properties of a silty clay loam soil under irrigated wheat–soybean rotation. Soil and Tillage Research 94:386–96. doi:10.1016/j.still.2006.08.014.
  • Biswas, D. R., and G. Narayanasamy. 2006. Rock phosphate enriched compost: An approach to improve low-grade Indian rock phosphate. Bioresource Technology 97:2243–51. doi:10.1016/j.biortech.2006.02.004.
  • Blanco-Canqui, H., and A. J. Schlegel. 2013. Implications of inorganic fertilizer application of irrigated corn on soil properties: Lessons learned after 50 years. Journal of Environmental Quality 42: 861–71. PMID: 23673954. doi:10.2134/jeq2012.0451.
  • Bremner, J. M., and L. A. Douglas. 1971. Inhibition of urease activity in soils. Soil Biology and Biochemistry 3:297–307. doi:10.1016/0038-0717(71)90039-3.
  • Buntha, P., K. Borin, T. R. Preston, and B. Ogle. 2008. Effect of Taro (Colocasia esculenta) leaf silage as replacement for fish meal on feed intake and growth performance of crossbred pigs. Livestock Research for Rural Development. Volume 20, Supplement. Accessed September 2, 2011.
  • Carpenter-Boggs, L., A. D. Kennedy, and J. P. Reganold. 2000. Organic and biodynamic management: Effects on soil biology. Soil Science Society of America Journal 64:1651–59. doi:10.2136/sssaj2000.6451651x.
  • Casida, L. E., D. A. Klein, and R. Santoro. 1964. Soil dehydrogenase activity. Soil Science 98:371–76. doi:10.1097/00010694-196412000-00004.
  • Doran, J. W., M. Sarrantonio, and M. A. Liebig. 1996. Soil health and sustainability. Advances in Agronomy 56 (1–54):60178–79. doi:10.1016/S0065-2113(08).
  • Fageria, V. D. 2001. Nutrient interactions in crop plants. Journal of Plant Nutrition 24 (8):1269–90. doi:10.1081/PLN-100106981.
  • Fageria, N. K. 2012. Role of soil organic matter in maintaining sustainability of cropping systems. Communications in Soil Science and Plant Analysis 43 (16):2063–113. doi:10.1080/00103624.2012.697234.
  • FAO. 2021. Food and Agriculture Organization of the United Nations statistical year. Rome, Italy: FAO.
  • Geng, Y., G. Cao, L. Wang, S. Wang, and J. H. Bhadha. 2019. Effects of equal chemical fertilizer substitutions with organic manure on yield, dry matter, and nitrogen uptake of spring maize and soil nitrogen distribution. PLoS One 14 (7):e0219512. doi:10.1371/journal.pone.0219512.
  • Green, V. A., D. E. Stott, and M. A. Diack. 2006. Assay for fluorescein diacetate hydrolytic activity: Optimization for soil samples. Soil Biology and Biochemistry 38:693–701. doi:10.1016/j.soilbio.2005.06.020.
  • Holík, L., I. Hlisnikovský, R. Honzík, J. Trögl, H. Burdová, and J. Popelka. 2019. Soil microbial communities and enzyme activities after long-term application of inorganic and organic fertilizers at different depths of the soil profile. Sustainability 11:3251. doi:10.3390/su11123251.
  • Jackson, M. L. 1973. Soil chemical analysis. New Delhi: Prentice Hall of India Pvt. Ltd. Pp. 485.
  • Kannan, R. L., M. Dhivya, D. Abinaya, R. Lekshmi Krishna, and S. Krishnakumar. 2013. Effect of integrated nutrient management on soil fertility and productivity in maize. Bulletin of Environment, Pharmacology and Life Sciences 2 (8):61–67.
  • Kirtikar, K. R., and B. D. Basu. 1994. Indian Medicinal Plants. (Vol. 4, 2nd Edn.) Dehra Dun Publisher Ltd, India, pp 26092610.26092610.
  • Kolambe, B. N., K. G. Patel, A. R. Kaswala, V. S. Patel, and K. D. Desai. 2013. Organic management affects growth, yield, quality and soil properties in elephant foot yam. Journal of Root Crops 39 (1):62–66.
  • Kumari, R., M. Kundu, A. Das, R. Rakshit, S. Sahay, S. Sengupta, and M. Feza Ahmad. 2019. Long-term integrated nutrient management improves carbon stock and fruit yield in a subtropical mango (Mangifera indica L.) Orchard. Journal of Soil Science and Plant Nutrition 20:725–37. doi:10.1007/s42729-019-00160-6.
  • Laxminarayana, K., K. Susan John, A. Mukherjee, and C. S. Ravindran. 2015. Long-term effect of lime, mycorrhiza, and inorganic and organic sources on soil fertility, yield, and proximate composition of sweet potato in Alfisols of Eastern India. Communications in Soil Science and Plant Analysis 46 (5):605–18. doi:10.1080/00103624.2014.1003647.
  • Laxminarayana, K. 2017. Effect of mycorrhiza, organic sources, lime, secondary and micro-nutrients on soil microbial activities and yield performance of Yam Bean (Pachyrhizus erosus L.) in Alfisols. Communications in Soil Science and Plant Analysis 48 (2):186–200. doi:10.1080/00103624.2016.1254232.
  • Laxminarayana, K. 2020. Bio-chemical constituents, value addition and alternative uses of colocasia (Colocasia esculenta L.). Acta Scientific Agriculture 4 (3):1–11. doi:10.31080/ASAG.2020.04.0819.
  • Martin, H., F. Beat, M. Jochen, M. Paul, and W. Franco. 2015. Distinct soil microbial diversity under long-term organic and conventional farming. The ISME Journal 9:1177–94. doi:10.1038/ismej.2014.210.
  • Moorthy, S. N., and G. Padmaja. 2002. A rapid titrimetric method for the determination of starch content of cassava tubers. Journal of Root Crops 28 (1):30–37.
  • Murmu, K., D. K. Swain, and B. C. Ghosh. 2013. Comparative assessment of conventional and organic nutrient management on crop growth and yield and soil fertility in tomato-sweet corn production system. Australian Journal of Crop Science 7 (11):1617–26.
  • Nath, D. J., B. Ozah, R. Baruah, R. C. Barooah, and D. K. Borah. 2011. Effect of integrated nutrient management on soil enzymes, microbial biomass carbon and bacterial populations under rice (Oryza sativa) wheat (Triticum aestivum) sequence. Indian Journal of Agricultural Sciences 81 (12):1143–48.
  • Niba, L. L. 2003. Processing effects on susceptibility of starch to digestion in some dietary starch sources. International Journal of Food Sciences and Nutrition 54 (1):97–109. doi:10.1080/0963748031000042038.
  • Nizamuddin, M., M. Masud, K. Farooq, and S. Riaz. 2003. Response of potato crop to various levels of NPK. Asian Journal of Plant Sciences 2:149–51. doi:10.3923/ajps.2003.149.151.
  • Pletri, J. C. A., and P. C. Brokes. 2008. Relationships between soil pH and microbial properties in a UK arable soil. Soil Biology and Biochemistry 40 (7):1856–61. doi:10.1016/j.soilbio.2008.03.020.
  • Savci, S. 2012. An agricultural pollutant: Chemical fertilizer. International Journal of Environmental Science and Development 3:77–80.
  • Selim, M. M. 2020. Introduction to the integrated nutrient management strategies and their contribution to yield and soil properties. International Journal of Agronomy 2020:1–14. doi:10.1155/2020/2821678.
  • Shang, L., L. Wan, X. Zhou, S. Li, X. Li, and T. Bhadauria. 2020. Effects of organic fertilizer on soil nutrient status, enzyme activity, and bacterial community diversity in Leymus chinensis steppe in inner Mongolia, China. PLoS ONE 15 (10):e0240559. doi:10.1371/journal.pone.0240559.
  • Shen, J. P., L. M. Zhang, J. F. Guo, J. L. Ray, and J. Z. He. 2010. Impact of long-term fertilizer application practices on the abundance and composition of soil bacterial communities in Northeast China. Applied Soil Ecology 46:119–24. doi:10.1016/j.apsoil.2010.06.015.
  • Singh, G., T. S. Marwaha, and D. Kumar. 2009. Effect of resource-conserving techniques on soil microbiological parameters under long-term maize (Zea mays) – Wheat (Triticum aestivum) crop rotation. Indian Journal of Agricultural Sciences 79 (2):94–100.
  • Singh, H., A. Verma, M. W. Ansari, and A. Shukla. 2014. Physiological response of rice (Oryza sativa L.) genotypes to elevated nitrogen applied under field conditions. Plant Signal Behaviour 9: e29015. PMID: 25763485. doi:10.4161/psb.29015.
  • Sreelatha, T., A. S. Raju, and A. P. Raju. 2006. Effect of different doses of farm yard manure and poultry manure and their interaction with fertilizer nitrogen on yield and nutrient uptake in mesta-rice cropping system. Journal of Crop Research 34:41–47.
  • Sukamoto, L. A. 2003. Development of early maturing and leaf blight resistant cocoyam (Colocasia esculenta (L.) Schott) with improved taste. South Africa: Proceedings of a final research coordination meeting organized by the joint FAO/IAEA division of nuclear techniques in food and agriculture and held in Pretoria. pp.19-23.
  • Tabatabai, M. A., and J. M. Bremner. 1969. Use of p-nitrophenyl phosphate for assay of soil phosphatase activity. Soil Biology and Biochemistry 1:301–07. doi:10.1016/0038-0717(69)90012-1.
  • Tao, R., S. A. Wakelin, Y. Liang, and G. Chu. 2017. Response of ammonia oxidizing archaea and bacteria in calcareous soil to mineral and organic fertilizer application and their relative contribution to nitrification. Soil Biology and Biochemistry 114:20–30. doi:10.1016/j.soilbio.2017.06.027.
  • Tian, W., L. Wang, Y. Li, K. M. Zhuang, G. Li, J. B. Zhang, X. J. Xiao, and Y. G. Xi. 2015. Responses of microbial activity, abundance, and community in wheat soil after three years of heavy fertilization with manure-based compost and inorganic nitrogen. Agriculture, Ecosystems & Environment 213:219–27. doi:10.1016/j.agee.2015.08.009.
  • Varalakshmi, C. A. Srinivasamurthy, and S. Bhaskar. 2005. Effect of integrated use of organic manures and inorganic fertilizers on organic carbon, available N, P and K in sustaining productivity of groundnut-finger millet cropping system. Journal of the Indian Society of Soil Science 53:315–18.
  • Vaughan, D., and R. E. Malcolm. 1985. Influence of humic substances on growth and physiological process. In Soil organic matter and biological activity, ed. D. Vaughan and R. E. Malcolm, 37–75. Dordrecht: Kluwer Academic.
  • Vourlitis, G. L., G. Zorba, S. C. Pasquini, and R. Mustard. 2007. Chronic nitrogen deposition enhances nitrogen mineralization potential of semiarid shrubland soils. Soil Science Society of America Journal 71 (3):836–42. doi:10.2136/sssaj2006.0339.
  • Wang, J., R. Li, H. Zhang, G. Wei, and Z. Li. 2020. Beneficial bacteria activate nutrients and promote wheat growth under conditions of reduced fertilizer application. BMC Microbiology 20:38. doi:10.1186/s12866-020-1708-z.
  • Wei, M., G. Hu, H. Wang, E. Bai, Y. Lou, A. Zhang, and Y. Zhuge. 2017. 35 years of manure and chemical fertilizer application alters soil microbial community composition in a Fluvo-aquic soil in Northern China. European Journal of Soil Biology 82:27–34. doi:10.1016/j.ejsobi.2017.08.002.
  • Wu, L., Y. Jiang, F. Zhao, X. He, H. Liu, and K. Yu. 2020. Increased organic fertilizer application and reduced chemical fertilizer application affect the soil properties and bacterial communities of grape rhizosphere soil. Scientific Reports 10:9568. doi:10.1038/s41598-020-66648-9.
  • Zelles, L., I. Scheunert, and K. Kreutzer. 1987. Effect of artificial irrigation, acid precipitation and liming on the microbial activity in soil of a spruce forest. Biology and Fertility of Soils 4:137–43. doi:10.1007/BF00256987.
  • Zhang, Y. L., Q. R. Shen, and C. Y. Cao. 1998. Effects of organic manure on soil organic phosphorus functions and their bioavailability. Journal of Nanjing Agricultural University 21 (3):59–63.

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