Contribution to the Assessment of Heavy Metal Contamination in Fish and Shrimp from the Continental and Marine Areas of Cameroon
- 1 Department of Zoology, Faculty of Science, University of Bamenda, Bambili, Cameroon
- 2 Department of Aquatic Ecosystems Management, Institute of Fisheries and Aquatic Sciences, University of Douala, Douala, Cameroon
- 3 Laboratory of Hydrobiology and Environment, Department of Animal Biology and Physiology, Faculty of Science, University of Yaoundé 1, Yaoundé, Cameroon
- 4 Department of Aquatic Ecosystems Management, Institute of Fisheries and Aquatic Sciences, University of Douala, Douala, Cameroon
- 5 Department of Oceanography, Institute of Fisheries and Aquatic Sciences, University of Douala, Douala, Cameroon
- 6 Department of Aquatic Ecosystems Management, Institute of Fisheries and Aquatic Sciences, University of Douala, Douala, Cameroon
- 7 International Centre of Environment Studies and Research for Development (ICERD), Yaoundé, Cameroon
- 8 Medical Analysis and Application Laboratory, Higher Institute of Health Science, Technician and Management of Garoua (ISSTSM), Garoua, Cameroon
Abstract
Heavy metals occur naturally in the environment. However, human activities such as industry, agriculture, and mining are responsible for a significant increase in their concentrations in ecosystems, including waterways and marine environments. This study aims to assess heavy metal contamination in fish and shrimp from Cameroon’s continental and marine areas. Fish were sampled in situ in the Wouri, Nkam, and Dibamba rivers. The shrimp were collected from local fishermen at the landing sites in Youpwé and Kribi. Water samples for laboratory analysis of trace metals were collected upstream in the rivers using 1,000 mL polyethylene bottles and then analyzed in the laboratory using standard methods. The trace metal content was measured using mass spectrometry. The results for water show that the highest average concentrations of zinc (5.325 mg/L) are observed at Youpwé, while the Nkam station has the highest average mercury concentration (7 mg/L). The sediments of Kribi have high concentrations of lead (10.39 mg/kg), those of Dibamba have high concentrations of cadmium (119.7 mg/kg) and nickel (0.6182 mg/kg), those in Youpwé have high concentrations of zinc (7.7 mg/kg), and those in Wouri have high concentrations of mercury (166.2 mg/kg). The most abundant traces of heavy metals in the two fish species ( Oreochromis niloticus and C hrysichthys nigrodigitatus ) were lead and cadmium, particularly at the Wouri and Dibamba sites, with values exceeding the permitted limits (0.01 µg/g). However, in the Kribi area, there is contamination (CF > 1) of the shrimp species Penaeus notialis by lead and high contamination (CF > 6) of all shrimp species by mercury. The fish species Oreochromis niloticus bioaccumulates zinc in the Dibamba River, and the shrimp species Penaeus notialis bioaccumulates lead in Kribi (BCF > 1). The study found that the concentrations of trace metals in the water exceed the WHO guidelines for the ecological status of surface water. The water at urban stations (Wouri and Dibamba) shows very high levels of cadmium, lead, and mercury contamination, which could be due to the presence of various industries. Sediments at all stations are extremely polluted with mercury, while only sediments at the Wouri and Dibamba stations are extremely polluted with cadmium.
- Katemo Manda, B., Colinet, G., André, L., Chocha Manda, A., Marquet, J.P. and Micha, J.C. (2010) Evaluation de la contamination de la chaîne trophique par les éléments traces (Cu, Co, Zn, Pb, Cd, U, V et As) dans le bassin de la Lufira supérieure (Katanga/RD Congo). Tropicultura , 28, 246-252.
- Keumean, K., Bamba, S., Soro, G., Soro, N., Metongo, B. and Biemi, J. (2013) Concen-tration en métaux lourds des sédiments de l’estuaire du fleuve Comoé à Grand-Bassam (Sud-Est de la Côte d’Ivoire). Journal of Applied Biosciences , 61, 4530-4539. https://doi.org/10.4314/jab.v61i0.85599
- Kayalato, B., Mbofung, C., Tchatchueng, J. and Ahmed, A. (2014) Contribution à l’évaluation de la contamination par les métaux lourds de trois espèces de poissons, des sédiments et des eaux du Lac Tchad. International Journal of Biological and Chem ical Sciences , 8, 468-480. https://doi.org/10.4314/ijbcs.v8i2.7
- Oliva-Teles, A. and Gonçalves, P. (2001) Partial Replacement of Fishmeal by Brewers Yeast ( Saccaromyces cerevisae ) in Diets for Sea Bass ( Dicentrarchus labrax ) Juveniles. Aquaculture , 202, 269-278. https://doi.org/10.1016/s0044-8486(01)00777-3
- Byber, K., Lison, D., Verougstraete, V., Dressel, H. and Hotz, P. (2016) Cadmium or Cadmium Compounds and Chronic Kidney Disease in Workers and the General Population: A Systematic Review. Critical Reviews in Toxicology , 46, 191-240. https://doi.org/10.3109/10408444.2015.1076375
- Xiao, X., Fahl, K. and Stein, R. (2013) Biomarker Distributions in Surface Sediments from the Kara and Laptev Seas (Arctic Ocean): Indicators for Organic-Carbon Sources and Sea-Ice Coverage. Quaternary Science Reviews , 79, 40-52. https://doi.org/10.1016/j.quascirev.2012.11.028
- MacFarlane, G.R. and Burchett, M.D. (2000) Cellular Distribution of Copper, Lead and Zinc in the Grey Mangrove, Avicennia marina (Forsk.) Vierh. Aquatic Botany , 68, 45-59. https://doi.org/10.1016/s0304-3770(00)00105-4
- Censi, P., Spoto, S.E., Saiano, F., Sprovieri, M., Mazzola, S., Nardone, G., et al . (2006) Heavy Metals in Coastal Water Systems. A Case Study from the Northwestern Gulf of Thailand. Chemosphere , 64, 1167-1176. https://doi.org/10.1016/j.chemosphere.2005.11.008
- Ngeve, M.N., Leermakers, M., Elskens, M. and Kochzius, M. (2015) Assessment of Trace Metal Pollution in Sediments and Intertidal Fauna at the Coast of Cameroon. Environmental Monitoring and Assessment , 187, Article No. 337. https://doi.org/10.1007/s10661-015-4574-7
- Sabouang, J.F., Mbongko, R.N. and Mohamadou, L.L. (2022) Mineral Uptake of Heavy Metals by Some Marine Organisms along the Limbe Coastline in Cameroon and Health Risk Assessment. Journal of Geoscience and Environment Protection , 10, 106-120. https://doi.org/10.4236/gep.2022.106007