Earthworm Activities in Two Contrasting Diets and Nutrient Content of the Cast Produced: It’s Efficiency in Comparativeness to Traditional Compost on a Deficient Loamy Sand Soil and Soybean Yield
Authors
Centre for Agricultural Innovation and Food Security, Chukwuemeka Odumegwu Ojukwu University (Nigeria)
Department of Crop Science and Horticulture, Nnamdi Azikiwe University, Awka (Nigeria)
Department of Soil Science Chukwuemeka Odumegwu Ojukwu University (Nigeria)
Department of Soil Science Chukwuemeka Odumegwu Ojukwu University (Nigeria)
Department of Crop Science and Horticulture Chukwuemeka Odumegwu Ojukwu University (Nigeria)
Department of Agricultural Economics and Extension Chukwuemeka Odumegwu Ojukwu University (Nigeria)
Article Information
DOI: 10.51584/IJRIAS.2026.11060205
Subject Category: Agriculture
Volume/Issue: 11/6 | Page No: 2646-2673
Publication Timeline
Submitted: 2026-06-17
Accepted: 2026-06-22
Published: 2026-07-09
Abstract
Earthworms have been found to be very efficient in biodegradation, nutrient release and recycling. Thus, in this study the comparative effectiveness of five composts in improving the productivity of degraded loamy sand soil was investigated for 2 years with detrimental effects in a greenhouse study. Traditional Bracharia compost (TBA); traditional Bracharia-Eupatorium compost (TBUA); worm worked Bracaharia compost (WBA) and worm worked Bacharia-Eupatorium compost (WBUA) and control (CO). The five (5) composts for the 2 years under study showed significant (P < 0.05) difference in most of the parameters studied with increased value in 2023-year planting relative to 2024-year study. Worm worked composts enriched the soil with nutrients and supported soybean growth and yield more than the traditional composts. The ranking of the soybean yield increase and residual effect in 2024 year planting respectively were; WBA > WBUA > TBUA > TBA and WBUA < TBUA < WBA < TBA < CO. Enhancement levels of plant nutrients and soil pH are evident that the composts studied have a high fertilizing value with good potentials for restoration of productivity of degraded loamy sand soil. The composts enriched soybean root and shoot with heavy metals but below their critical level for humans and animals health.
Keywords
Earthworm, fertility reclamation, food security, mineralogy, microbes, microbial biomass
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References
1. Adepetu JA. (1990). Paper Presented at National Workshop on Soil Testing Service for Efficient Fertilizer Use in Nigeria. Moor Plantation; Ibadan: 1990. Soil-Test data interpretation in soil-testing programme. Pp 22-24 [Google Scholar] [Crossref]
2. Ahemad M, Khan MS. (2012). Effect of fungicides on plant growth promoting activities of phosphate of phosphate solubilizing pseudomonas putida isolated from mustard (brassica compestris) rhizosphere. Chemosphere 86(9): 945 – 950 [Google Scholar] [Crossref]
3. Ahemad M, Malik A. (2011). Bioaccumulation of heavy metals by zinc resistant bacteria isolated from agricultural soils irrigated with waste water. Bacteriol. J. 2: 12-12 [Google Scholar] [Crossref]
4. Akhar MS, Chali B, Azam T. (2013). Bioremediation of arsenic and lead by plants and microbes from contaminated soil. Res. Plant Sci. 1: 68 – 73 [Google Scholar] [Crossref]
5. Alley MM, Vanlauwe B. (2009). The role of fertilizers in integrated plant nutrient management Paris. International Fertilizer Industry Association [Google Scholar] [Crossref]
6. Anderson JM, Ingram JSI. (1993). Tropical soil biology and fertility. A handbook of methods 2nd edition CABI Wallingford UK Pp 221 [Google Scholar] [Crossref]
7. Barea JM, Pozo JM, Azecon R, AzconAguilar C. (2013). Microbial interactions in the rhizosphere. In Bruijn FJ (ed) Molecular Microbial Ecology of the rhizosphere volume I Wiley Blackwell, Hoboken, Pp 29 – 44 [Google Scholar] [Crossref]
8. Besharat S, Nazemi AH, Sadraddini AA. (2010). Parametric modelling of root length density and root water uptake in unsaturated soil. Turk. J. Agric. For. 34(2010): 439 – 449 http://doi.org/10.3906/tar-0905-39 [Google Scholar] [Crossref]
9. Bhattacharyya SS, Ros GH, Furtak K, Iqbal HMN, Parra-Saldivar R. (2022). Soil carbon sequestration an interplay between soil microbial community and soil organic dynamics. J. Sc. Total Environ. 815. http://doi.org/10.1016/j.scitotenv.2022.152928 [Google Scholar] [Crossref]
10. Bhattacharya KK, Mukhopadhyay N, Mukherjee D, Das SK. (2000). Comparative efficiency of improved compost techniques. In: Jana BB, Banerjee RD, Guterstam B, Heeb J. (eds). Proceedings of international conference wastes recycling and resources management in developing world Spana Printing Works Kolkatta India Pp 219-224 [Google Scholar] [Crossref]
11. Brady NC. (1999). Nature and properties of soil, 12th edition Macmillan Co. New York USA, Pp 17 [Google Scholar] [Crossref]
12. Brahmaprakash GP, Pramod KS, Lavanya G, Sneha SN. (2017). Plant microbe interactions in agroecological perspectives. Springer Nature Singapore Pte Ltd Pp 177 – 210 [Google Scholar] [Crossref]
13. Bray RH, Kurtz LT. (1945). Determination of organic and available forms of phosphorous in soils. Soil Sci. 59: 39 – 45. [Google Scholar] [Crossref]
14. Brimecombe MJ, De Leji FAAM, Lynch JM. (2007). Rhizodeposition and microbial populations. In: Pinton R, Veramini Z, Nannipieri P. (eds). The rhizosphere biochemistry and organic substances on the soil plant interface. New York, USA Tayler and Francis Group. [Google Scholar] [Crossref]
15. Brown FO, Cotton RN. (2011). Application of biofertilizer into the control soils: A meta-analysis. J. Ecosyst. Environ. 144: 241252 http://doi.org/10.1016/j.agee.2011.08.020 [Google Scholar] [Crossref]
16. Coll MD. (2020). Construyendo materia orgánica en suelos degradados bajo clima semiárido mediante el uso de enmiendas orgánicas (Building organic matter in degraded soils under semiarid climate through the use of organic amendments). Ph. D. Thesis. University of Murcia. Murcia, España. 2020. [Google Scholar] [Crossref]
17. Collengnon C, Uroz S, Turpault MP, Frey-Klett P. (2011). Seasons differently impacts structure of mineral weathering bacterial communities in beach and spruce stands. Soil Biol. Biochem. 43: 2012 – 2022 [Google Scholar] [Crossref]
18. Collins HP, Cavigelli MA. (2003). Soil microbial community characteristics along elevational gradient in the Laguna mountains of southern California. Soil Biology and Biochemistry 35: 1027-1037 [Google Scholar] [Crossref]
19. Cooker C. (2006). Environmental remediation by composting. Bio Cycle 47(2): 18 – 23 [Google Scholar] [Crossref]
20. Dell’Agnola G, Nardi S. (1987). An overview of earthworm activities in the soil. On earthworm Lonvicini AM. Paghai, Omodco P. (eds), Selected symposia and monography UZI 2 Mucchi Modena, 1987: 103-112 [Google Scholar] [Crossref]
21. Diacono M, Montemurro F. (2010). Long-term effect of organic amendment on soil fertility. A review. Agronomy for Sustainable Development 30: 401-422 [Google Scholar] [Crossref]
22. Dozsa-Farkas K. (1978). Investigation on feeding preferences of enchytraeid species fridericia galba Opuscula Zoologica, 15:75-82 [Google Scholar] [Crossref]
23. Edmundo AH, Eduardo ME (2022). Soil management alters soil organic matter content affecting soil properties and agricultural sustainability in the Chilean Mediterranean environment Pp 126-148 In Reyes-Sánchez LB, Horn R, Costantini EAC. (eds.) 2022: Sustainable soil management as a key to preserving soil biodiversity and stopping its degradation. International Union of Soil Sciences (IUSS). Vienna, Austria. [Google Scholar] [Crossref]
24. Erhart E, Erhart W. (2010). Compost use in organic farming. In Lichtfouse E. (ed) Genetic engineering biofertilization soil quality and organic farming Pp 311 – 346 New York Springer Science. [Google Scholar] [Crossref]
25. Evaristo J, Jasecho S, McDonnell JJ. (2015). Global separation of plant transpiration from ground water and stream flow, Nature 525 (7567): 91-94 [Google Scholar] [Crossref]
26. Ferreras L, Gomez E, Toresani S, Firpo I, Rotondo R (2006). Effect of organic amendments on some physical, chemical and biological properties in a horticultural soil. Bioresource Technology 97: 635 – 640 [Google Scholar] [Crossref]
27. Follet RH, Murphy LS, Donahue RI. (1981). Fertilizers and soil amendments Prentice Hall Eagle wood Cliff Pp 393-422 [Google Scholar] [Crossref]
28. Foster KJ, Miklavcic SJ. (2016). Modelling root zone effects on preferred pathways for the passive transport of ions and water in plant roots, Front. Plant Sci. 7: 1-14 [Google Scholar] [Crossref]
29. Gadd GM. (2010). Metals, minerals and microbes geomicrobiology and bioremediation. Microbiology, 156: 609 – 643 [Google Scholar] [Crossref]
30. Grayston SJ, Wang S, Campbell CD, Edward AC. (1998). Selective influence of plant species on microbial diversity in the rhizosphere. Soil Biology and Biochemistry 30: 369-378 [Google Scholar] [Crossref]
31. Halvin JI, Beaton JD, Tisdale SL, Nelson WL. (2005). Soil fertility and Fertilizers 7th edn, Pearson Education, Inc. New Jersey, P. 254 – 262. [Google Scholar] [Crossref]
32. Haritha Devi S, Vijayalakshmi K, Pavana Jyotsna K, Shaheen SK, Jyothi K, Surekha Rani M. (2009). Comparative assessment in enzyme activities and microbial populations during normal and vermicomposting. J. Environ. Biol. 30: 1013-1017 [Google Scholar] [Crossref]
33. Hernandez T, Chocano C, Coll MD, Garcia C. (2018). Composts as alternative to inorganic fertilization for cereal crops. Environmental Science and Pollution Research 26: 35340-35352. [Google Scholar] [Crossref]
34. Hubbe MA, Nazhad M, Sanchez C. (2010). Composting as a way to convert cellulose biomass and organic waste into high value soil amendment. A review. Bio Resources 5(4): 2808 – 2854 [Google Scholar] [Crossref]
35. Kemper WD, Chepil WS. (1965). Size distribution of aggregation. In: Method of soil analysis part 2 Black, C.A. (ed). Am. Soc. Agron. Madison W.I. Pp 499-51. [Google Scholar] [Crossref]
36. Klute A. (1986). Water retention laboratory method Pp 635-662 In: Klute A (ed) methods of soil analysis part 1 physical and mineralogical methods, 2nd edition Agronomy Monography 9 American Society of Agronomy and Soil Science Society of America, Madison Wisconsin, USA. [Google Scholar] [Crossref]
37. Kooch Y, Jalilvand H. (2008). Earthworm as ecosystem engineers and the most important detritivors in forest soil. Pakistan J. Biol. Sci. 11(6): 819-825 [Google Scholar] [Crossref]
38. Laban P, Metternicht G, Davies J. (2018). Soil biodiversity and soil organic carbon: keeping drylands alive. Gland, Switzerland. 2018. [Google Scholar] [Crossref]
39. Landon JR. (eds.) (1991). Booker Tropical Soil Manual: A Handbook of Soil Survey and Agricultural Land Evaluation in Tropics and Subtropics. New York, USA, John Willey and Sons Inc., Third Avenue. [Google Scholar] [Crossref]
40. Leroy BLM, Bommele ML, Reheul D, Moens M, De Neve S. (2007). The application of vegetable, fruit and garden waste (VFG) compost in addition to cattle slurry in a silage maize monoculture: Effect on soil fauna and yield. European Journal of Soil Biology 43: 91 – 100 [Google Scholar] [Crossref]
41. Lugtenberg B. (2015). Life of microbes in the rhizosphere. In: Lugtenberg B (ed) Principles of plant microbe interactions. Springer Int. Publ. Switzerland, Heidelberg Pp 7-15 [Google Scholar] [Crossref]
42. Mapelli F, Marasco R, Balloi A, Rolli E, Cappitelli F, Danffonchio D, Borin S. (2012). Mineral-microbe interactions: biotechnological potential bio-weathering. J. Biotechnology. 157: 473 – 481 [Google Scholar] [Crossref]
43. Mazzarrino MJ, Scott L, Jimenez M. (1993). Dynamics of soil total C and N, microbial biomass and water-soluble C in tropical agroecosystems. Soil Biology and Biochemistry 25: 205-214 [Google Scholar] [Crossref]
44. Mba CC. (1983). Utilization of Eudrilus eugenae for disposal of cassava peel. In: J. E. Satchell (ed). Earthworm ecology, From Darwin to vermiculture Chapman and Hall London Pp 315-321 [Google Scholar] [Crossref]
45. Mba CC. (1996). Treated cassava peel vermicompost enhance earthworm activities and cowpea growth in field plots. Resource, Conservation and Recycling, 17: 219-226 [Google Scholar] [Crossref]
46. McDaniel M, Tiemann L, Grandy A. (2014). Does agricultural crop diversity enhance soil microbial biomass and organic matter dynamics? A meta-analysis. Ecological Applications, 24 (3): 560-570. [Google Scholar] [Crossref]
47. Mohammed A, Dikko AU, Audu M, Adeboye MKA. (2017). Effect of cowpea residue management and nitrogen application rates on soil organic carbon nitrogen and microbial properties in an Entisol of Sokoto Sudan Savanna zone of Nigeria. Nig. J. Soil Sci. 27: 186-199 [Google Scholar] [Crossref]
48. Mohee R. (2007). Waste management opportunities for rural communities composting as an effective waste management strategy for farm house holds and others, Rome. FAO of the United Nations [Google Scholar] [Crossref]
49. Mubarak AR, Rosenani AB, Anuar AR, Siti Zauyah D. (2003). Effect of incorporation of crop residues in humid tropics. 1. Yield and nutrient uptake. J. Plant Nut., 26: 1841 – 1858 [Google Scholar] [Crossref]
50. Muller L, Schindler U, Mirschel W, Shepherd TG, Ball BC, Helming K, Rogasik J, Eulenstein F, Wiggering H. (2010). Assessing the productivity function of soils. A review. Agronomy for Sustainable Development 30: 601 – 614 [Google Scholar] [Crossref]
51. Munnoli PM, Da Silva JAT, Saroj B. (2010). Dynamics of the soil earthworm plant relationship- A review. Dynamic Soil Dynamic Plant (Global Science Books) Pp 1-20 [Google Scholar] [Crossref]
52. Nester EW, Denise GA, Roberts Jr CE, Pearsall NN, Nester MT. (2001). Microbiology. A human perspectives 3rd edition New York, McGraw Hill [Google Scholar] [Crossref]
53. Nichols R. (1965). Studies on the major element deficiencies of the pigeon pea (Cajanus cajan) in sand culture II. The effect of major element deficiencies on nodulation, growth and mineral composition. Plant and Soil 22:112-126 http:/doi.org/10.1007/bf.01377693 [Google Scholar] [Crossref]
54. Nikol Skii NN. (1959). Practical soil science (Podivovedemic), Moscow, translated from Russia by Israel programme for scientific translations, Jerusalem, 1963. Distributed by old Boerne press 1-5 port pool lane London, ECL. UK. [Google Scholar] [Crossref]
55. Nkidi-Kizza PJW, Biggar HM, Selina JH, Genuchtem PJV, Davidson WJM, Nelson DR. (1984). The equivalence of two conceptual models for describing ion-exchange during transport through an aggravated oxisols. Water Res. 20: 1123-1130. [Google Scholar] [Crossref]
56. Nweke IA, Anene HO. (2019). Effect of maize/Bambara groundnut inter-crop on soil properties growth and yield parameter of the intercrop species Euro. J. Agric. Forest. Res, 7(1): 16-28 [Google Scholar] [Crossref]
57. Nweke IA, Chime EU. (2021). Moisture characteristics and soil chemical variations of a degraded soil treated with selected animal wastes Greener Journal of Agricultural Sciences, 11(1): 19-25 [Google Scholar] [Crossref]
58. Nweke IA, Emeh HO. (2013). The response of Bambara Groundnut (Vigna subtirranea (L.) verdc) to phosphate fertilizer levels in Igbariam south east Nigeria. Journal of Agriculture and Veterinary Science, 2(1): 28- 34. http://doi.org/10.97902380-0212834 [Google Scholar] [Crossref]
59. Nweke IA, Ijearu SI, Dambaba N. (2017a). Interactive effect of tillage and wood ash on heavy metal content of soil, castor shoot and seed. Journal of Advanced Engineering Research and Science (IJAERS) 4(11): 14-27 https://dx.doi.org/10.22161/ijaers.4.11.3 [Google Scholar] [Crossref]
60. Nweke IA, Ijearu SI. (2018). Effect of sawdust and straw material compost on yield of okra and physicochemical properties of Igbariam soil. Journal of Biological Sciences 2: 38-44 http://doi.org/10.31058/jbs.2018.22005 [Google Scholar] [Crossref]
61. Nweke IA, Ngonadi EN, Nworji MJ. (2021). Assessment of biodegradation and trace element content of three animal wastes. Elixir Aquaculture, 150 (2021) 55132-55133 [Google Scholar] [Crossref]
62. Nweke IA, Nkwonta I, Igwe AC, Anochie C, Okenmuo F. (2020a). Nutrient potential from vermicompost of two contrasting organic wastes using tropical earthworm and mosquito net as culture material. Journal of Biological Studies, 1(1): 1-7 [Google Scholar] [Crossref]
63. Nweke IA, Chime EU, Ogugua UO. (2020b). Evaluation of vegetable vermicompost on the chemical properties of two different soils Journal of Agricultural Policy 3(2): 1-6 [Google Scholar] [Crossref]
64. Nweke IA, Okenmuo FC, Igwe AC, Ngonadi EN, Maduekwe CC, Aniamalu JMI. (2022). The residual effect of different levels of rice mill ash on maize-soybean intercrop. World Journal of Advanced and Reviews, 15(01): 079–088, https://doi.org/10.30574/wjarr.2022.15.1.0527 [Google Scholar] [Crossref]
65. Nweke IA. (2013) Plant nutrient release composition in vermicompost as influenced by Eudrilus eugenae using different organic diets. Journal of Ecology and Natural Environment (JENE), 5 (11): 346-351. [Google Scholar] [Crossref]
66. Nweke, I. A. (2014), Effect of guinea grass compost on soil properties, growth and yield of maize. Indian Journal of Applied Research, 4(10): 10-13 [Google Scholar] [Crossref]
67. Nweke IA. (2016). Influence of different leguminous crop on the ultisol that had been continuously cropped to cassava/maize for over six years. Journal of Soil Science Environmental Management, 7(12): 222-229. http://doi.org/10.5897/JSSEM2016.0555 [Google Scholar] [Crossref]
68. Nweke IA. (2017). Effect of compost and earthworm production on soil properties, growth and dry matter yield of maize in crude oil degraded soil. Journal of Soil Science Environmental Management 8(1): 1-10. http://doi.org/10.5897/JSSEM2015.0546 [Google Scholar] [Crossref]
69. Nweke IA. (2018). Residual effect of organic waste amendment on soil productivity and crop yield. A Review. Greener Journal of Agricultural Sciences 8(9): 209-218 http://doi.org/10.15580/GJAS.2018.9.090618129 [Google Scholar] [Crossref]
70. Nweke IA, Ejinkonye C, Ogugua UO. (2019). Impact of Two Contrasting Vermicomposts on the Fertility Status of a Sandy Soil J. Biol. Phys. Math. 4(1): 34-38 [Google Scholar] [Crossref]
71. Nweke IA. (2019). Two years influence of composted crop residues on the productivity of typic Tropaqualf and maize yield. J. Biol. Phys. Math. 2(2): 68-76 [Google Scholar] [Crossref]
72. Nweke IA. Mbah CN, Ijearu SI. (2017b). Influence of tillage and wood ash on Zn and Fe content of soil, castor shoot and seed. Open Access Library Journal 4: e3306, http://doi.org/10.4236/oalib.1103306 [Google Scholar] [Crossref]
73. Oguntade OA, Adetunji MT, Azeez JO. (2017). Heavy metal accumulation in soils and subsequent uptake by Amaranthus (Amaranthus cruentus (L) irrigated with dye industrial effluent. Nig. J. Soil Sci. 27: 35-39 [Google Scholar] [Crossref]
74. Page KL, Dang Y, Dalal R (2020). The ability of conservation agriculture to conserve soil organic carbon and the subsequent impact on soil physical, chemical, and biological properties and yield. Frontiers in Sustainable Food Systems 4 (31): 1-17. [Google Scholar] [Crossref]
75. Pandey RBH, Bisht SPS, Kandpal B, Kaushal BR. (2006). Feeding and casting activities of the earthworm (Octalion tytaecum) and their effects on crop growth under laboratory conditions. Tropical Ecology 47(2): 291-294. [Google Scholar] [Crossref]
76. Parr JF, Papendick RI, Colacicco D. (1986). Recycling of organic wastes for a sustainable agriculture. Biological Agriculture and Horticulture 3: 115-130 [Google Scholar] [Crossref]
77. Parthasarathy K, Ranganathan LS. (1998). Press mud vermicast are hot spots of fungi and bacteria. Ecol. Environ. Cons. 481 – 86 [Google Scholar] [Crossref]
78. Pathma J, Sakthivel N. (2012). Microbial diversity of vermicompost bacteria that exhibit useful agricultural traits and waste management potential. Springer Plus, 26: 1 – 19 [Google Scholar] [Crossref]
79. Pierret A, Doussan C, Pages I. (2006). Spatio-temporal variation in axial conductance of primary and first order lateral roots of a maize crop as predicted by a model of the hydraulic architecture of root system. Plant Soil, 282: 117 – 126 [Google Scholar] [Crossref]
80. Qiao Y, Tang C, Han X, Miao S. (2007). Phosphorus deficiency delays the onset of nodule function in soybean. J. Plant Nutrition, 30(9): 1341-1353 https://doi.org/10.1080/01904160701555325 [Google Scholar] [Crossref]
81. Ready Hough T, Neher D, Angrews T. (2021). Organic amendments alter soil hydrology and belowground microbiome of tomato (Solanum lycopersicum). Microorganisms 9 (8): 1561. [Google Scholar] [Crossref]
82. Sainz MJ, Babonida-Castro MT, Vilario A. (1998). Growth, mineral nutrition and mycorrhizal colonization of red clover and cucumber plants grown in a soil amended with composted urban wastes. Plant Soil 205: 86-92 [Google Scholar] [Crossref]
83. Samaranayeke JWK, Wijekoon S. (2010). Effect of selected earthworms on soil fertility, plant growth and vermicompost. Tropical Agricultural Research and Extension 13(2): 33-40 [Google Scholar] [Crossref]
84. Selmants PC, Hart SC, Boyle SI, Stark JM. (2005). Red alder (Alnus rubra) alters community level soil microbial function in conifer forests of the Pacific Northwest, USA. Soil Biology and Biochemistry 37(2005): 1860-1868 [Google Scholar] [Crossref]
85. Scotti R, Pane C, Spaccini R, Palese AM, Piccolo A, Celano G, Zaccardelli M. (2016). On-farm compost: a useful tool to improve soil quality under intensive farming systems. Applied Soil Ecology 107: 13-23. [Google Scholar] [Crossref]
86. Steel GD, Torrie JH. (1980). Principles and procedures of statistics A biometrical approach 2ndedition McGraw Hill book Co. Inc. New York pp 633. [Google Scholar] [Crossref]
87. Stotzky G. (1965). Microbial respiration. In Black CA (ed) Method of soil analysis part 2 Am. Soc. Agron. Inc. Wisconsin [Google Scholar] [Crossref]
88. Sylvia DM, Fuhrmann JF, Hartel PG, Zuberes DA. (2005). Principles and application of soil microbiology, New Jersey Pearson Education Inc [Google Scholar] [Crossref]
89. Sulok, K. M. T., Ahmed, O. H., Khew, C. Y., Zehnder, J. A. M., Jalloh, M. B., Musah, A. A., Abdu, A. (2021). Chemical and biological characteristics of organic amendments produced from selected agrowastes with potential for sustaining soil health: a laboratory assessment. Sustainability 13 (9): 4919. [Google Scholar] [Crossref]
90. Sun A, Jiao X.Y, Chen Q, Wu A.L, Zheng Y, Lin YX, Hu HW. (2020). Microbial communities in the crop phyllosphere and root endosphere are more resistant than soil microbiota to fertilization. Soil Biology and Biochemistry 153: 108113. [Google Scholar] [Crossref]
91. Tedersoo L, Anslan S, Bahram M, Drenkhan R, Pritsch K, Buegger F, Padari A, Haghdoust N, Mikryukov V, Gohar D, Amiri R, Hiiesalu I, Lutter R, Rosenvald R, Rähn E, Adamson K, Drenkhan T, Tullus H, Jürimaa K, Sibul I, Otsing E, Põlme S, Metslaid M, Loit K, Agan A, Puusepp R, Varik I, Kõljalg U, Abarenkov K. (2020). Regional-scale in-depth analysis of soil fungal diversity reveals strong pH and plant species effects in Northern Europe. Frontiers in Microbiology 11: 2020.01953. [Google Scholar] [Crossref]
92. Theunissen J, Ndakidemi PA, Laubscher CP. (2010). Potentials of vermicompost produced from plant wastes on the growth and nutrient status in vegetable production. Int’l. J. Physical Sciences 5(13): 1964 – 1973 [Google Scholar] [Crossref]
93. Tinker PB, Barraclough PB. (2016). Root-soil interactions. Handbook Environ. Chem. 2:153-175 [Google Scholar] [Crossref]
94. Toutain F, Villemin G, Albrecht A. (1982). Ultrastructural study of biodegradation process II Enchytraeids leaf litter model. Pedobiologia, 23: 145-156 [Google Scholar] [Crossref]
95. United States Department of Agriculture (USDA) (1986). Agricultural Handbook No. 436SCA/USA Washington DC. USA, Pp 206 [Google Scholar] [Crossref]
96. Unagwu BO. (2019). Organic amendments applied to a degraded soil: short term effects on soil quality indicators. African Journal of Agricultural Research 14 (4): 218-225. [Google Scholar] [Crossref]
97. Waldrop MP, Balser TC, Firestone MK. (2000). Linking microbial community composition to function in a tropical soil. Soil Biology and Biochemistry 32: 1837-1846 [Google Scholar] [Crossref]
98. Walkley A, Black IA. (1934). An examination of the Degtjareff method for determining soil organic matter and the proposed modification of the chronic acid titration method. Soil Science 37: 29 – 38 [Google Scholar] [Crossref]
99. Welbaum G, Sturz AV, Dong Z, Nowak J. (2004). Fertilizing soil microorganism to improve productivity of agroecosystems. Crit. Rev. Plant Sci. 23: 175 – 193 [Google Scholar] [Crossref]
100. Wood PR. (1981). We don’t want soil maps just give us land capacity. The role of land capacity survey in Zambia. Soil Survey and Land Evaluation, 1(1): 2 – 5 [Google Scholar] [Crossref]
101. Yang T, Siddique KHM, Liu K. (2020). Cropping systems in agriculture and their impact on soil health-A [Google Scholar] [Crossref]
102. review. Global Ecology and Conservation 23: e01118. [Google Scholar] [Crossref]
103. Zia MS, Munsif M, Aslam M, Gill MA. (2012). Integrated use of organic manures and inorganic fertilizers for the cultivation of lowland rice in Pakistan. Soil Sci. Plant Nut, 38 (2): 331 – 338 [Google Scholar] [Crossref]
104. Zsolnay A, Gorlitz G. (1994). Water extractable OM in arable soils. Effect of drought and long-term fertilization. Soil Biol. Biochem. 26: 1257 – 1261 [Google Scholar] [Crossref]
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