Kinetics of BTX Removal by Rhodococcus Erythropolis in a Slurry Bioreactor
DOI:
https://doi.org/10.53696/venn.v5i2.421Abstract
Benzene, toluene, and xylene (BTX) contamination arising from oil-drilling operations constitutes a persistent environmental challenge, necessitating the development of robust bioremediation strategies underpinned by kinetic evaluation. This study systematically investigated the kinetics of BTX removal by Rhodococcus erythropolis in a slurry-phase bioreactor employing soil sourced from the PPEJ oil-drilling site in Tuban, Indonesia, with particular emphasis on the influence of inoculum concentration on the k₀ and the Kₘ. Batch experiments were conducted at inoculum loadings of 12,5%, 15%, and 17,5% (v/v), with periodic monitoring of dissolved-phase BTX concentrations and BOD. Analytical methodologies encompassed gas chromatography–mass spectrometry (GC–MS) for the quantification of BTX and intermediate metabolites, BOD assessment, and kinetic modeling to estimate k₀ and Kₘ values. The results demonstrated that incremental increases in inoculum concentration consistently elevated the k₀, thereby expediting BTX removal in reactors with higher biomass. However, a concomitant decline in specific activity per unit biomass was observed at the highest inoculum level, attributable to mass-transfer limitations—specifically, restricted diffusion of oxygen and substrate into microbial flocs—and heterogeneity in enzyme induction. The estimated Kₘ values exhibited variability across inoculum concentrations, indicating that substrate affinity is modulated by reactor physical parameters and microbial enzymatic adaptation. These findings underscore the necessity of optimizing inoculum concentration in concert with operational parameters such as dissolved oxygen control, agitation intensity, and structured kinetic assays to ensure that enhancements in k₀ are translated into effective per-cell degradation and complete mineralization of BTX contaminants in soils impacted by oil-drilling activities.
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References
Afordoanyi, D. M., Akosah, Y. A., Shnakhova, L., & Saparmyradov, K. (2024). Biotechnological Key Genes of the Rhodococcus erythropolis MGMM8 Genome : Genes for Bioremediation , Antibiotics , Plant Protection , and Growth Stimulation.
Al-obaidi, S. A., Srivastava, P., Webster, G., Weightman, A. J., & Sapsford, D. (2024). Iron Oxide-Bearing Wastes as Media for Supporting Biodegradation of BTEX. MInerals. https://doi.org/https://doi.org/10.3390/min14121231
Carvalho, C. C. C. R. De, & Fatal, V. (2007). Adaptation of Rhodococcus erythropolis cells to high concentrations of toluene. 1423–1430. https://doi.org/10.1007/s00253-007-1103-9
Chen, T., Wu, Y., Wang, J., & Philippe, C. F. (2022). Assessing the Biodegradation of BTEX and Stress Response in a Bio-Permeable Reactive Barrier Using Compound-Specific Isotope Analysis. International Journal of Environmental Research and Public Health. https://doi.org/https://doi.org/10.3390/ijerph19148800
Enouy, R. W., Walton, K. M., Malton, I. I., Sra, K. S., Sihota, N. N., Daniels, E. J., & Unger, A. J. A. (2022). Mathematical Biology A mechanistic derivation of the Monod bioreaction equation for a limiting nutrient. Journal of Mathematical Biology, 84(7), 1–30. https://doi.org/10.1007/s00285-022-01760-0
Gates, E., & Marlar, J. T. (1968). Graphical Analysis of Batch Culture Data Using the Monod Expressions. 40(11). https://doi.org/http://www.jstor.org/stable/25036175?origin=JSTOR-pdf
Ibrahim, S., Khalil, K. A., Nabilah, K., Zahri, M., Gomez-fuentes, C., Convey, P., Zulkharnain, A., Sabri, S., Alias, S. A., Gonz, G., & Ahmad, S. A. (2020). Biosurfactant Production and Growth Kinetics Studies of the Waste Canola Oil-Degrading Bacterium.
Krivoruchko, A., Kuyukina, M., Peshkur, T., Cunningham, C. J., & Ivshina, I. (2023). Rhodococcus Strains from the Specialized Collection of Alkanotrophs for Biodegradation of Aromatic Compounds.
Kuyukina, M. S., & Ivshina, I. B. (2019). Bioremediation of Contaminated Environments Using Rhodococcus. https://doi.org/https://sci-hub.st/10.1007/978-3-030-11461-9_9
Mahdinia, E., Cekmecelioglu, D., & Demirci, A. (2019). Bioreactor Scale-Up. https://doi.org/10.1007/978-3-030-16230-6
Malhautier, L., Quijano, G., Avezac, M., Rocher, J., Fanlo, J., Malhautier, L., Quijano, G., Avezac, M., Rocher, J., & Kinetic, J. F. (2022). Kinetic characterization of toluene biodegradation by Rhodo coccus erythropolis : Towards a rationale for microflora enhancement in bioreactors devoted to air treatment. https://doi.org/https://hal.science/hal-02914241v1
Maurya, A. C., Bhattacharya, A., & Khare, S. K. (2023). Biodegradation of terephthalic acid using Rhodococcus erythropolis MTCC 3951 : Insights into the degradation process , applications in wastewater treatment and polyhydroxyalkanoate production. Environmental Science and Pollution Research, 0123456789. https://doi.org/10.1007/s11356-023-30054-1
Methods, S. (2023). 5210 Biochemical Oxygen Demand ( BOD ). https://doi.org/10.2105/SMWW.2882.102
Nayyeri, H., Ghanavati, H., Mazaheri, H., & Joshaghani, A. H. (2022). Simultaneous biodegradation of BTX by isolated degrading bacterial strains in a newly designed modulated bio-scrubber assisted to airlift parallel bioreactors. Journal of Environmental Health Science and Engineering, 11–27. https://doi.org/doi.org/10.1007/s40201-021-00726-6
Ole, M. A. N., & Juliastuti, S. R. (2023). BIODEGRADASI XYLENE DARI LAHAN TERCEMAR MINYAK BUMI. Jurnal Teknologi Kimia Mineral, 2, 26–30. https://doi.org/https://doi.org/10.61844/jtkm.v2i1.455
Wei, X., Wang, H., Li, R., Liu, S., Zuo, H., Hu, Q., Zhuang, X., & Bai, Z. (2026). Molecular Insights into Rhodococcus sp . A17 : Physiological Adaptations and Degradation Characteristics for Organic Contamination at Alkaline pH. Life, 1–15.
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Copyright (c) 2026 Maria Assumpta Nogo Ole, Dian Ranggina, Harun Pampang, Zakiyah Darajat

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