Comparative Characterization of Swine Dung Vermicompost Using Two Earthworm Species
Abstract
Despite the increasing use of earthworms for swine dung management, limited information exists on the comparative functional group composition and heavy metal reduction in vermicomposts produced by Eisenia fetida and Eudrilus eugeniae. This study characterized vermicompost from swine dung produced by Eisenia fetida and Eudrilus eugeniae. Pre-composted swine dung was vermicomposted for three months using 200 mature earthworms per 10 kg of substrate, with three replicates per species in a completely randomized design. The vermicomposts were analyzed for physicochemical properties and functional groups using Fourier transform infrared spectroscopy (FTIR). FTIR revealed the presence of -CH₂, -CH₃, -COO-, -C-O, and -C-O-C functional groups, indicating enrichment in organic acids and aliphatic compounds. Pb and Cd concentrations decreased substantially, from 32.0 and 0.07 ppm in raw dung to 7.0 and 0.004 ppm for E. fetida, and 7.0 and 0.008 ppm for E. eugeniae, respectively. These results demonstrate effective heavy metal reduction and functional group enhancement, suggesting that the produced vermicomposts may be suitable for agricultural use, subject to regulatory standards.
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Aborisade, M. A., Long, H., Rong, H., Kumar, A., Cui, B., Oladeji, O. A., Okimiji, O. P., Oba, B. T., & Guo, D. (2026). Bio-Based Fertilizers from Waste: Nutrient Recovery, Soil Health, and Circular Economy Impacts. Toxics, 14(1), 90. https://doi.org/10.3390/TOXICS14010090
Bender, S. F., & van der Heijden, M. G. A. (2015). Soil biota enhance agricultural sustainability by improving crop yield, nutrient uptake and reducing nitrogen leaching losses. Journal of Applied Ecology, 52(1), 228–239. https://doi.org/10.1111/1365-2664.12351
Bhat, S. A., Singh, J., & Vig, A. P. (2015). Potential utilization of bagasse as feed material for earthworm Eisenia fetida and production of vermicompost. SpringerPlus, 4(1). https://doi.org/10.1186/S40064-014-0780-Y
Cheng, J., & Wong, M. (2002). Effects of earthworms on Zn fractionation in soils. Biology and Fertility of Soils, 36(1), 72–78. https://doi.org/10.1007/s00374-002-0507-z
Dadrasnia, A., de Bona Muñoz, I., Yáñez, E. H., Lamkaddam, I. U., Mora, M., Ponsá, S., Ahmed, M., Argelaguet, L. L., Williams, P. M., & Oatley-Radcliffe, D. L. (2021). Sustainable nutrient recovery from animal manure: A review of current best practice technology and the potential for freeze concentration. Journal of Cleaner Production, 315, 128106. https://doi.org/10.1016/j.jclepro.2021.128106
Derkacheva, O., & Sukhov, D. (2008). Investigation of Lignins by FTIR Spectroscopy. Macromolecular Symposia, 265(1), 61–68. https://doi.org/10.1002/masy.200850507
Dourmad, J. Y., Hassouna, M., Robin, P., Guingand, N., Meunier-Salaün, M. C., & Lebret, B. (2009). Influence of pig rearing system on animal performance and manure composition. Animal, 3(4), 606–616. https://doi.org/10.1017/S1751731108003601
Epstein, E. (2017). The science of composting. The Science of Composting, 1–487. https://doi.org/10.1201/9780203736005/SCIENCE-COMPOSTING-ELIOT-EPSTEIN/RIGHTS-AND-PERMISSIONS
Hay, M. B., & Myneni, S. C. B. (2007). Structural environments of carboxyl groups in natural organic molecules from terrestrial systems. Part 1: Infrared spectroscopy. Geochimica et Cosmochimica Acta, 71(14), 3518–3532. https://doi.org/10.1016/j.gca.2007.03.038
He, X., Lu, H., Wu, C., & Xu, R. (2022). Effects of inorganic alkalis and organic anions in biochars on acidic paddy soil resistance to acidification. Journal of Soils and Sediments, 22(4), 1201–1213. https://doi.org/10.1007/s11368-022-03152-9
Jones, J. B. Jr. (1999). Soil analysis handbook of reference methods. (Edward A. Hanlon, Gordon V. Johnson, J. J. Benton Jones, Yash P. Kalra, Robert O. Miller, Parviz N. Soltanpour, M. Ray Tucker, Darryl D. Warnke, & Maurice Watson, Eds.; 1999 Edition, Vol. 1). CRC Press LLC.
Koul, B., Yakoob, M., & Shah, M. P. (2022). Agricultural waste management strategies for environmental sustainability. Environmental Research, 206, 112285. https://doi.org/10.1016/j.envres.2021.112285
Leporino, M., Bonini, P., Cardarelli, M., Rouphael, Y., & Colla, G. (2025). Biochelate as an eco-friendly alternative to synthetic chelate for micronutrients supply in tomato grown under alkaline conditions: A multi-omics approach. Scientia Horticulturae, 346, 114166. https://doi.org/10.1016/j.scienta.2025.114166
Lucchetta, M., Romano, A., Alzate Zuluaga, M. Y., Fornasier, F., Monterisi, S., Pii, Y., Marcuzzo, P., Lovat, L., & Gaiotti, F. (2023). Compost application boosts soil restoration in highly disturbed hillslope vineyard. Frontiers in Plant Science, 14, 1289288. https://doi.org/10.3389/FPLS.2023.1289288/XML
Machete, J. B., & Chabo, R. G. (2020). A Review of piggery manure management: generally, across western, Asian and African countries. Botswana Journal of Agriculture and Applied Sciences, 14(1), 17–27. https://researchhub.buan.ac.bw/handle/13049/28
Maffia, A., Marra, F., Canino, F., Battaglia, S., Mallamaci, C., Oliva, M., & Muscolo, A. (2024). Humic Substances from Waste-Based Fertilizers for Improved Soil Fertility. Agronomy, 14(11), 2657. https://doi.org/10.3390/agronomy14112657
Maffia, A., Oliva, M., Marra, F., Mallamaci, C., Nardi, S., & Muscolo, A. (2025). Humic Substances: Bridging Ecology and Agriculture for a Greener Future. Agronomy, 15(2), 410. https://doi.org/10.3390/agronomy15020410
Matiz-Villamil, A., Méndez-Carranza, K. J., Pascagaza-Pulido, A. F., Rendón-Rendón, T., Noriega-Noriega, J., & Pulido-Villamarín, A. (2023). Trends in the management of organic swine farm waste by composting: A systematic review. Heliyon, 9(8), e18208. https://doi.org/10.1016/j.heliyon.2023.e18208
Mengqi, Z., Shi, A., Ajmal, M., Ye, L., & Awais, M. (2023). Comprehensive review on agricultural waste utilization and high-temperature fermentation and composting. Biomass Conversion and Biorefinery, 13(7), 5445–5468. https://doi.org/10.1007/s13399-021-01438-5
Mesgar, M., Voroney, R. P., Lo, A., Ardakani, O. H., & Gillespie, A. W. (2024). Chemical composition and thermal stability of topsoil organic carbon: Influence of cropping system and tillage practices. European Journal of Soil Science, 75(1). https://doi.org/10.1111/ejss.13459
Mupambwa, H. A., & Mnkeni, P. N. S. (2018). Optimizing the vermicomposting of organic wastes amended with inorganic materials for production of nutrient-rich organic fertilizers: a review. Environmental Science and Pollution Research, 25(11), 10577–10595. https://doi.org/10.1007/s11356-018-1328-4
Nattassha, R., Handayati, Y., Simatupang, T. M., & Siallagan, M. (2020). Understanding circular economy implementation in the agri-food supply chain: the case of an Indonesian organic fertiliser producer. Agriculture and Food Security, 9(1), 10-. https://doi.org/10.1186/S40066-020-00264-8/FIGURES/4
Nelson, D. W., & Sommers, L. E. (1982). Total Carbon, Organic Carbon, and Organic Matter. 539–579. https://doi.org/10.2134/AGRONMONOGR9.2.2ED.C29
Nelson, D. W., & Sommers, L. E. (2018). Total Carbon, Organic Carbon, and Organic Matter. Methods of Soil Analysis, Part 3: Chemical Methods, 961–1010. https://doi.org/10.2136/SSSABOOKSER5.3.C34
Nikonenko, N. A., Buslov, D. K., Sushko, N. I., & Zhbankov, R. G. (2000). Investigation of stretching vibrations of glycosidic linkages in disaccharides and polysaccarides with use of IR spectra deconvolution. Biopolymers, 57(4), 257–262. https://doi.org/10.1002/1097-0282(2000)57:4<257::AID-BIP7>3.0.CO;2-3
Osunde, O. M., Atere, C. T., Adesanwo, O. O., Taiwo, L. B., & Olayinka, A. (2024). FTIR Characterization of Bioactive Functional Groups Present in Crude Extract of Mycoherbicides Produced from Consortium Culture of Rhizosphere Fungal Isolates. Communications in Soil Science and Plant Analysis, 55(19), 2858–2867. https://doi.org/10.1080/00103624.2024.2378969
Oyege, I., & Balaji Bhaskar, M. S. (2023). Effects of Vermicompost on Soil and Plant Health and Promoting Sustainable Agriculture. Soil Systems, 7(4), 101. https://doi.org/10.3390/soilsystems7040101
Pang, T., Wang, G., Sun, H., Sui, W., & Si, C. (2021). Lignin fractionation: Effective strategy to reduce molecule weight dependent heterogeneity for upgraded lignin valorization. Industrial Crops and Products, 165, 113442. https://doi.org/10.1016/j.indcrop.2021.113442
Paramisparam, P., Ahmed, O. H., Omar, L., Ch’ng, H. Y., Johan, P. D., & Hamidi, N. H. (2021). Co-Application of Charcoal and Wood Ash to Improve Potassium Availability in Tropical Mineral Acid Soils. Agronomy, 11(10), 2081. https://doi.org/10.3390/agronomy11102081
Pathma, J., & Sakthivel, N. (2012). Microbial diversity of vermicompost bacteria that exhibit useful agricultural traits and waste management potential. SpringerPlus, 1(1), 26. https://doi.org/10.1186/2193-1801-1-26
Poornima, S., Dadi, M., Subash, S., Manikandan, S., Karthik, V., Deena, S. R., Balachandar, R., Kumaran, S. K. N., & Subbaiya, R. (2024). Review on advances in toxic pollutants remediation by solid waste composting and vermicomposting. Scientific African, 23, e02100. https://doi.org/10.1016/j.sciaf.2024.e02100
Purakayastha, T. J., Kumari, S., & Pathak, H. (2015). Characterisation, stability, and microbial effects of four biochars produced from crop residues. Geoderma, 239–240, 293–303. https://doi.org/10.1016/j.geoderma.2014.11.009
Safdar, H., Amin, A., Shafiq, Y., Ali, A., Yasin, R., Shoukat, A., Hussan, M. U., & Sarwar, M. I. (2019). A review: Impact of salinity on plant growth. . Nat. Sci, , 17(1), 34–40.
Sharma, U. C., Datta, M., & Sharma, V. (2025). Chemistry, Microbiology, and Behaviour of Acid Soils (pp. 121–322). https://doi.org/10.1007/978-3-031-76357-1_3
Shrestha, B. M., Singh, B. R., Forte, C., & Certini, G. (2015). Long‐term effects of tillage, nutrient application and crop rotation on soil organic matter quality assessed by NMR spectroscopy. Soil Use and Management, 31(3), 358–366. https://doi.org/10.1111/sum.12198
Sims JR, & Haby VA. (1972). Colorimetric determination of soil organic matter . Journal: Soil Science , 112(2), 137–141.
Singh, J., Singh, S., Vig, A. P., Arvinder Kaur, Singh, J., Singh, S., Vig, A. P., & Arvinder Kaur. (2018). Environmental Influence of Soil toward Effective Vermicomposting. Earthworms - The Ecological Engineers of Soil. https://doi.org/10.5772/INTECHOPEN.75127
Smidt, E., & Meissl, K. (2007). The applicability of Fourier transform infrared (FT-IR) spectroscopy in waste management. Waste Management, 27(2), 268–276. https://doi.org/10.1016/j.wasman.2006.01.016
Suthar, S. (2009). Bioremediation of Agricultural Wastes through Vermicomposting. Bioremediation Journal, 13(1), 21–28. https://doi.org/10.1080/10889860802690513
Thomas, G. W. (1996). Soil pH and soil acidity. Methods of soil analysis: part 3 chemical methods, 5, 475-490.
Uhuegbue, P. O., Stein, M., Kalbitz, K., & Schaller, J. (2024). Silicon effects on soil phosphorus availability: results obtained depend on the method used. Frontiers in Environmental Science, 12. https://doi.org/10.3389/fenvs.2024.1461477
Usmani, Z., Kumar, V., & Mritunjay, S. K. (2017). Vermicomposting of coal fly ash using epigeic and epi-endogeic earthworm species: nutrient dynamics and metal remediation. RSC Advances, 7(9), 4876–4890. https://doi.org/10.1039/C6RA27329G
Velasco-Muñoz, J. F., Aznar-Sánchez, J. A., López-Felices, B., & Román-Sánchez, I. M. (2022). Circular economy in agriculture. An analysis of the state of research based on the life cycle. Sustainable Production and Consumption, 34, 257–270. https://doi.org/10.1016/J.SPC.2022.09.017
Wiercigroch, E., Szafraniec, E., Czamara, K., Pacia, M. Z., Majzner, K., Kochan, K., Kaczor, A., Baranska, M., & Malek, K. (2017). Raman and infrared spectroscopy of carbohydrates: A review. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 185, 317–335. https://doi.org/10.1016/j.saa.2017.05.045
Zhou, L., Yuan, L., Zhao, B., Li, Y., & Lin, Z. (2019). Structural characteristics of humic acids derived from Chinese weathered coal under different oxidizing conditions. PLOS ONE, 14(5), e0217469. https://doi.org/10.1371/JOURNAL.PONE.0217469
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