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Comparative Analysis of Soil Microbial Biomass in Oluyole and New Garage Industrial Areas, Ibadan Metropolis, Nigeria

1Department of Biological Sciences, Lead City University, Ibadan. , Nigeria

2Department of Sustainability Studies, University of Ibadan, Ibadan, Nigeria, Nigeria

3Department of Biological Sciences, Lead City University, Ibadan., Nigeria

Received: 3 Mar 2026; Published: 23 Apr 2026.
Editor(s): Marcelinus Christwardana
Open Access Copyright (c) 2025 The Author(s). Published by Centre of Biomass and Renewable Energy (CBIORE)
Creative Commons License This work is licensed under a Creative Commons Attribution 4.0 International License.

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Abstract

Soil microbial biomass (SMB) serves as a critical biological indicator of soil health, particularly in industrial areas where contamination threatens ecosystem functions. This study assessed and compared SMB and physicochemical properties in soils from two major industrial estates (Oluyole and New Garage) in Ibadan Metropolis, Nigeria. Composite soil samples were analyzed for microbial biomass carbon, nitrogen, and phosphorus using chloroform fumigation-extraction, alongside key soil properties including organic carbon, pH, texture, and heavy metals. Results indicated no statistically significant differences (p < 0.05) in soil physicochemical or microbial biomass parameters between the two industrial sites. Microbial biomass carbon (MBC) values were generally higher in New Garage (0.07%) than in Oluyole (0.06%). Both locations exhibited sandy loam textures, moderately acidic pH, and heavy metal concentrations below regulatory thresholds. A strong positive correlation was observed between microbial biomass carbon and soil organic carbon, highlighting organic matter as a primary driver of microbial communities. However, extremely low microbial biomass phosphorus levels suggested potential phosphorus limitation in these soils. The findings reveal that despite industrial activity, the studied soils maintain comparable quality to regional non-industrial soils, with organic carbon content and soil texture being key determinants of microbial biomass. This study provides baseline data for monitoring soil health in rapidly industrializing tropical regions and underscores the importance of organic matter management to support microbial ecosystem services in industrial environments.

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Keywords: Soil microbial biomass; microbial biomass carbon; industrial soils; soil quality; soil fertility.

Article Metrics:

  1. Adebo, B. O., Aweto, A. O., & Ogedengbe, K. (2020). Assessment of soil quality under different agricultural land use systems: a case study of the Ibadan farm settlement. Int. J. Plant Soil Sci, 32(4), 89-104
  2. Adeniji, A., Huang, J., Li, S., Lu, X., & Guo, R. (2025). Hot viewpoint on how soil texture, soil nutrient availability, and root exudates interact to shape microbial dynamics and plant health. Plant and Soil, 511(1), 69-90
  3. Adeyemo, A. J., Ayorinde, A. S., Awodun, M. A., & Oyun, M. B. (2023). Nutrients status and soil microbial biomass C and N in charcoal production sites of derived savannah forest of southwestern Nigeria. Scientific African, 20, e01684
  4. Ahmad, W., Alharthy, R. D., Zubair, M., Ahmed, M., Hameed, A., & Rafique, S. (2021). Toxic and heavy metals contamination assessment in soil and water to evaluate human health risk. Scientific reports, 11(1), 17006
  5. Bastida, F., Eldridge, D. J., García, C., Kenny Png, G., Bardgett, R. D., & Delgado-Baquerizo, M. (2021). Soil microbial diversity–biomass relationships are driven by soil carbon content across global biomes. The ISME Journal, 15(7), 2081-2091
  6. Bray, R. H., & Kurtz, L. T. (1945). Determination of total, organic, and available forms of phosphorus in soils. Soil Science, 59(1), 39–45
  7. Bremner, J. M. (1960). Determination of nitrogen in soil by the Kjeldahl method. Journal of Agricultural Science, 55(1), 11–33
  8. Brookes, P. C., Landman, A., Pruden, G., & Jenkinson, D. S. (1985). Chloroform fumigation and the release of soil nitrogen: A rapid direct extraction method to measure microbial biomass nitrogen in soil. Soil Biology and Biochemistry, 17(6), 837–842
  9. Brookes, P. C., Powlson, D. S., & Jenkinson, D. S. (1982). Measurement of microbial biomass phosphorus in soil. Soil Biology and Biochemistry, 14(4), 319-329
  10. Chukwuma, O. U., Uchenna, O. M., Ogonna, U. S., & Chinedu, O. S. (2022). The effects of effluents’ discharge from some paint industries on soil’s physicochemical properties and bioattenuation of polluted soil. Industrial and Domestic Waste Management, 2(2), 46-60
  11. Cowie, A. 2020. Guidelines for Land Degradation Neutrality: A report prepared for the Scientific and Technical Advisory Panel of the Global Environment Facility, Washington D.C
  12. Dongre, R. S. (2021). Chromium & lead as soil pollutants: insights on toxicity profiles and their remediation. Journal of Advanced Biotechnology and Bioengineering, 9, 1-16
  13. Geisen, S., Wall, D. H., & van der Putten, W. H. (2019). Challenges and opportunities for soil biodiversity in the anthropocene. Current Biology, 29(19), R1036-R1044
  14. Ghisman, V., Muresan, A. C., Bogatu, N. L., Herbei, E. E., & Buruiana, D. L. (2025). Recent Advances in the Remediation of Degraded and Contaminated Soils: A Review of Sustainable and Applied Strategies. Agronomy, 15(8), 1920
  15. Gross, A., Lin, Y., Weber, P. K., Pett‐Ridge, J., & Silver, W. L. (2020). The role of soil redox conditions in microbial phosphorus cycling in humid tropical forests. Ecology, 101(2), e02928
  16. Guliyev, A., Islamzade, R., Suleymanova, P., Babayeva, T., Aliyeva, A., & Haciyeva, X. (2024). Impact of petroleum contamination on soil properties in Absheron Peninsula, Azerbaijan. Eurasian Journal of Soil Science, 13(4), 358-365
  17. Hou, D. (2023). Sustainable soil management for food security. Soil Use & Management, 39(1)
  18. Jenkinson, D. S. and Ladd, J. N. 1981. Microbial biomass in soil: measurement and turnover. in: Paul, E. A. and Ladd, J. N. (ed.) Soil biochemistry: Volume 5 New York Marcel Dekker, Inc.. pp. 415-471
  19. Kendzior, J., Warren Raffa, D., & Bogdanski, A. (2022). A review of the impacts of crop production on the soil microbiome. FAO, Rome. pp. 1-227. https://openknowledge.fao.org/server/api/core/bitstreams/367e75ca-590a-4409-b6ed-5e9ecd1a60f6/content
  20. Kodiya, M. A., Modu, M. A., Ishaq, K., Yusuf, Z., Wakili, A. Z., Dayyabu, N., Jibrin, N. A. & Babangida, M. U. (2025). Environmental pollution in Nigeria: Unlocking integrated strategies for environmental sustainability. African Journal of Environmental Sciences and Renewable Energy, 18(1), 30-50
  21. Lal, R., Monger, C., Nave, L., & Smith, P. (2021). The role of soil in regulation of climate. Philosophical Transactions of the Royal Society B, 376(1834), 20210084
  22. Li, S., Tang, S., Ju, X., Zhu, Z., Zhang, Y., Chen, H., & Jin, K. (2024). Soil acidification drives the negative effects of nitrogen enrichment on soil microbial biomass at the global scale. Plant and Soil, 503(1), 517-528
  23. Nachshon, U. (2020). Soil degradation processes: It’s time to take our head out of the sand. Geosciences, 11(1), 2
  24. Nyengere, J., Okamoto, Y., Funakawa, S., & Shinjo, H. (2023). Analysis of spatial heterogeneity of soil physicochemical properties in northern Malawi. Geoderma Regional, 35, e00733
  25. Ocheoibo, S. J., & Atuanya, E. I. (2024). Evaluation of microbial load and physicochemical characteristics of soils in electronic waste dumpsites of Oluku and Osasogie in Benin, Edo State and Alaba in Lagos State, Nigeria. Journal of Applied Sciences and Environmental Management, 28(3), 953-960
  26. Ogwu, M. C., Ahuekwe, E. F., Balogun, D., Kwarpo, Z., Shittu, K. A., & Izah, S. C. (2024). Methods for assessing soil physicochemical and biological properties. In Sustainable Soil Systems in Global South (pp. 49-82). Singapore: Springer Nature Singapore
  27. Okoyomon, O. O., Kadir, H. A., Zango, Z. U., Saidu, U., & Nura, S. A. (2021). Physicochemical composition and heavy metal determination of selected industrial effluents of Ibadan City, Nigeria. Open Journal of Environmental Research (ISSN: 2734-2085), 2(2), 58-66
  28. Ontman, R., Groffman, P. M., Driscoll, C. T., & Cheng, Z. (2023). Surprising relationships between soil pH and microbial biomass and activity in a northern hardwood forest. Biogeochemistry, 163(3), 265-277
  29. Owens, P. N. (2020). Soil erosion and sediment dynamics in the Anthropocene: a review of human impacts during a period of rapid global environmental change. Journal of Soils and Sediments, 20(12), 4115-4143
  30. Pedrinho, A., Mendes, L. W., de Araujo Pereira, A. P., Araujo, A. S. F., Vaishnav, A., Karpouzas, D. G., & Singh, B. K. (2024). Soil microbial diversity plays an important role in resisting and restoring degraded ecosystems. Plant and Soil, 500(1), 325-349
  31. Popoola, O. J., Ogundele, O. D., Ladapo, E. A., & Senbore, S. (2024). The impact of heavy metal contamination in soils on soil microbial communities and its potential health risks for humans. In Soil Microbiome in Green Technology Sustainability (pp. 351-375). Cham: Springer Nature Switzerland
  32. Ramadan, A. M., Abdu, N., Yusuf, A. A., Abdullahi, S. A., & Alhassan, A. B. (2025). Physicochemical properties and microbial biomass of carbon and nitrogen at the electronic waste disposal site in Alaba International Market, Lagos State, Nigeria. Dutse Journal of Pure and Applied Sciences, 11(3d), 150-158
  33. Rao D, Meng F, Yan X, Zhang M, Yao X, Kim KS, Zhao J, Qiu Q, Xie F and Zhang W (2021) Changes in Soil Microbial Activity, Bacterial Community Composition and Function in a Long-Term Continuous Soybean Cropping System After Corn Insertion and Fertilization. Front. Microbiol. 12:638326. doi: 10.3389/fmicb.2021.638326
  34. Rezaeian, M., Tohidi Moghadam, M., Kiaei, M. M., & Mahmuod Zadeh, H. (2020). The effect of heavy metals on the nutritional value of Alfalfa: comparison of nutrients and heavy metals of Alfalfa (Medicago sativa) in industrial and non-industrial areas. Toxicological research, 36(2), 183-193
  35. Rogiers, T., Claesen, J., Van Gompel, A., Vanhoudt, N., Mysara, M., Williamson, A., Leys, N., Van Houdt, R., Boon, N. & Mijnendonckx, K. (2021). Soil microbial community structure and functionality changes in response to long‐term metal and radionuclide pollution. Environmental microbiology, 23(3), 1670-1683
  36. Singh, J. S., & Gupta, V. K. (2018). Soil microbial biomass: A key soil driver in management of ecosystem functioning. Science of the Total Environment, 634, 497-500
  37. Smart, M. O., L. O. Asabia, A. E. Roberts, B. O. Okumodi, and O. H. Ibironke. "Heavy metal contamination and associated ecological risk on farms around Oluyole industrial area, Ibadan." Journal of Research in Forestry, Wildlife and Environment 15, no. 2 (2023): 121-128
  38. Solangi, F., Zhu, X., Solangi, K. A., Iqbal, R., Elshikh, M. S., Alarjani, K. M., & Elsalahy, H. H. (2024). Responses of soil enzymatic activities and microbial biomass phosphorus to improve nutrient accumulation abilities in leguminous species. Scientific Reports, 14(1), 11139
  39. Sukitprapanon, T. S., Jantamenchai, M., Tulaphitak, D., & Vityakon, P. (2020). Nutrient composition of diverse organic residues and their long-term effects on available nutrients in a tropical sandy soil. Heliyon, 6(11)
  40. Sun, X., Sun, M., Chao, Y., Shang, X., Wang, H., Pan, H., ... & Zhuge, Y. (2023). Effects of lead pollution on soil microbial community diversity and biomass and on invertase activity. Soil Ecology Letters, 5(1), 118-127
  41. Tefera, M. L., Carletti, A., Altea, L., Rizzu, M., Migheli, Q., & Seddaiu, G. (2024). Land degradation and the upper hand of sustainable agricultural intensification in sub-Saharan Africa-A systematic review. Journal of Agriculture and Rural Development in the Tropics and Subtropics (JARTS), 125(1), 63-83
  42. Truskewycz, A., Gundry, T. D., Khudur, L. S., Kolobaric, A., Taha, M., Aburto-Medina, A., Ball, A. S. & Shahsavari, E. (2019). Petroleum hydrocarbon contamination in terrestrial ecosystems—fate and microbial responses. Molecules, 24(18), 3400
  43. Vlek PLG; Khamzina A; Tamene L. (eds.). 2017. Land degradation and the Sustainable Development Goals: Threats and potential remedies. CIAT Publication No. 440. International Center for Tropical Agriculture (CIAT), Nairobi, Kenya. 67 p. Available at: http://hdl.handle.net/10568/81313
  44. Walkley, A., & Black, I. A. (1934). An examination of the Degtjareff method for determining soil organic matter. Soil Science, 37(1), 29–38
  45. Wan, W., Tan, J., Wang, Y., Qin, Y., He, H., Wu, H., Zuo, W. & He, D. (2020). Responses of the rhizosphere bacterial community in acidic crop soil to pH: Changes in diversity, composition, interaction, and function. Science of the Total Environment, 700, 134418
  46. Zhang, J., Huang, H., Liu, H., Wu, H., Zhang, Z., Wang, G., Xue, S., & Liu, G. (2023). Effects of Soil Microbiological Properties on the Fractional Distribution and Stability of Soil Organic Carbon under Different N Addition Treatments. Forests, 14(8), 1540. https://doi.org/10.3390/f14081540

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