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2025 | 62 | 106-118

Article title

Investigating the Effectiveness of Aquatic Plant Species as Bioindicators for Detecting Petroleum Hydrocarbon Pollution in the Marsh Ecosystems of Ogoniland, Niger Delta, Nigeria

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Languages of publication

EN

Abstracts

EN
The Niger Delta region, particularly Ogoniland, has faced extensive environmental pollution due to petroleum activities, raising concerns about the contamination of aquatic ecosystems. This study aimed to investigate the levels of Total Petroleum Hydrocarbons (TPHs), Polycyclic Aromatic Hydrocarbons (PAHs), and n-Alkanes in four aquatic plant species Eichhornia crassipes, Phragmites karka, Typha domingensis, and Nymphaea lotus from Ogoniland and evaluate their potential as bioindicators for petroleum contamination. Samples of these aquatic plants were collected from the polluted area and analyzed using Soxhlet extraction for TPHs, spectrofluorometry for total petroleum hydrocarbon quantification, and gas chromatography for PAHs and n-Alkanes. The results revealed that Eichhornia crassipes accumulated the highest concentration of TPHs at 18.7 ± 1.2 µg/g dry weight, followed by Typha domingensis (18.1 ± 1.2 µg/g), Phragmites karka (17.5 ± 1.1 µg/g), and Nymphaea lotus (15.8 ± 1.0 µg/g). Similarly, Eichhornia crassipes also showed the highest PAH levels at 112.5 ± 8.4 ng/g, whereas Nymphaea lotus had the lowest PAH concentration at 101.2 ± 7.5 ng/g. The study found a predominance of high molecular weight PAHs and identified a biogenic origin for most n-Alkanes, with Phragmites karka reflecting some anthropogenic influences. These findings suggest that Eichhornia crassipes is the most effective bioindicator for petroleum contamination among the studied species, highlighting the value of aquatic plants in environmental monitoring. Future research should focus on the long-term effects of petroleum pollutants on these plants and assess how seasonal variations might influence contaminant levels.

Year

Volume

62

Pages

106-118

Physical description

Contributors

  • Department of Genetics and Biotechnology, Faculty of Biological Science, University of Calabar, Calabar, Nigeria
  • Department of Fisheries and Aquaculture, Faculty of Agriculture, University of Calabar, Calabar, Nigeria
  • Department of Genetics and Biotechnology, Faculty of Biological Science, University of Calabar, Calabar, Nigeria
  • Department of Genetics and Biotechnology, Faculty of Biological Science, University of Calabar, Calabar, Nigeria
  • Department of Science Laboratory Technology, Faculty of Biological Sciences, University of Calabar, Calabar, Nigeria
  • Department of Genetics and Biotechnology, Faculty of Biological Science, University of Calabar, Calabar, Nigeria
  • Department of Genetics and Biotechnology, Faculty of Biological Science, University of Calabar, Calabar, Nigeria

References

  • [1] Awogbemi, O., Eze, P., & Okeke, J. (2024). Effects of petroleum hydrocarbons on aquatic plant physiology in the Niger Delta. Environmental Toxicology Research, 11(2), 134-146
  • [2] Ekpo, P. B., Ekpo, I. P., Ifon, H. T., & Uren, S. E. (2021). Assessing the impact of water quality disturbances on plankton dynamics in Great Kwa River, Nigeria; implications for ecological health and biodiversity. International Journal of Applied Sciences, 14, 149-155
  • [3] Ekpo, P. B., Ekpo, I. P., Ifon, H. T., & Edet, A. R. (2021). Ecological indices of zooplankton communities in the Great Kwa River, Nigeria (Special Edition). International Journal of Applied Sciences, 14, 156-162
  • [4] Ekpo, P. B., & Ubi, G. M. (2022). Phytoremediation potentials and hyperaccumulation of heavy metals by Moringa oleifera and profiling of hydrocarbon-utilizing microbes on crude oil-polluted soils of Niger Delta. International Journal of Applied Sciences, 15, 1-6
  • [5] Ekpo, P. B., & Okey, F. O. (2020). Assessment of heavy metals in leachates from Lemna dumpsite in Calabar Municipality of Cross River State. Journal of Nigeria Environment Society, 13(1), 105-125
  • [6] Ekpo, P. B., Ekpo, I. P., Ikongshul, A. A., Idung, J. U., Ekerette, E. E., Reagan, B. A., Edu, N. E., Ogbe, H. O., & Eyo, V. E. (2024). Evaluating Citrus limon and Carica papaya seed extracts in coagulation-flocculation for improved water quality: Implications for treatment plants. Global Journal of Pure and Applied Sciences, 30, 1118-0579
  • [7] Ekpo, P. B., Etangetuk, N. A., Agu, R. C., Chinyere, O. A., Nwachukwu, A. A., Nkang, N. A., & Ekpo, I. P. (2023). An assessment of the effect of pollution on zooplanktons in Calabar Great Kwa River, Nigeria. Journal of Advances in Biology & Biotechnology, 26(3), 11-16
  • [8] Eze, P., Ogunyemi, E., & Afuwape, O. (2023). Hydrocarbon bioaccumulation and source diagnostics in aquatic plants from the Niger Delta wetlands. Journal of Environmental Monitoring, 25(4), 201-214
  • [9] Ibanga, I., & Okoro, N. (2023). Petroleum pollution and ecosystem health in the Niger Delta region. African Journal of Environmental Science, 17(1), 55-67
  • [10] Ikegwuonu, S., & Eze, P. (2022). Polycyclic aromatic hydrocarbons in sediment and water of Ogoniland creeks. Nigerian Journal of Toxicology, 8(3), 89-100
  • [11] Ogunyemi, E., & Afuwape, O. (2022). Species-specific bioaccumulation of hydrocarbons in aquatic macrophytes from oil-polluted wetlands. Ecotoxicology Reports, 9, 102-114
  • [12] Okeke, J., Eze, P., & Ogundare, T. (2023). Monitoring petroleum hydrocarbon contamination through Eichhornia crassipes in Nigerian wetlands. Environmental Science Letters, 36(1), 72-81
  • [13] Okogbue, C., & Ijoma, G. (2021). Integrated approaches to monitoring petroleum hydrocarbon contamination in Niger Delta aquatic ecosystems. Journal of Environmental Protection, 12(7), 478-494
  • [14] Ogundare, T., & Nwankwo, M. (2021). Bioaccumulation of petroleum hydrocarbons in aquatic biota downstream oil exploration sites. International Journal of Pollution Studies, 14(2), 117-126
  • [15] Sánchez, R., Méndez, L., & García, A. (2021). Biomonitoring of petroleum hydrocarbons using aquatic macrophytes in South American wetlands. Wetlands Ecology and Management, 29(3), 341-353
  • [16] Zhang, Y., & Li, H. (2024). Diagnostic hydrocarbon markers in aquatic plants for environmental pollution assessment. Environmental Chemistry, 21(1), 44-58

Document Type

article

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YADDA identifier

bwmeta1.element.psjd-4f6a48d0-9005-496c-9ea2-1ab5786d303a
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