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Year 2025, Volume: 10 Issue: 1, 110 - 119, 01.04.2025
https://doi.org/10.28978/nesciences.1633065

Abstract

References

  • AbdElgawad, H., Zinta, G., Hamed, B. A., Selim, S., Beemster, G., Hozzein, W. N., ... & Abuelsoud, W. (2020). Maize roots and shoots show distinct profiles of oxidative stress and antioxidant defense under heavy metal toxicity. Environmental Pollution, 258, 113705. https://doi.org/10.1016/j.envpol.2019.113705
  • Al-Amin, A., Parvin, F., Chakraborty, J., & Kim, Y. I. (2021). Cyanobacteria mediated heavy metal removal: a review on mechanism, biosynthesis, and removal capability. Environmental Technology Reviews, 10(1), 44-57. https://doi.org/10.1080/21622515.2020.1869323
  • Ali, M. A., Fahad, S., Haider, I., Ahmed, N., Ahmad, S., Hussain, S., & Arshad, M. (2019). Oxidative stress and antioxidant defense in plants exposed to metal/metalloid toxicity. Reactive oxygen, nitrogen and sulfur species in plants: production, metabolism, signaling and defense mechanisms, 353-370. https://doi.org/10.1002/9781119468677.ch15
  • Al-Jashaami, S. H. K., Almudhafar, S. M., & Almayahi, B. A. (2024). The Impact of Climatic Characteristics on Increasing Soil Salinity in Manathira District Center. Natural and Engineering Sciences, 9(2), 426-440. https://doi.org/10.28978/nesciences.1574447
  • Allinson, G., Laurenson, L. J., Pistone, G., Stagnitti, F., & Jones, P. L. (2000). Effects of dietary copper on the Australian freshwater crayfish Cherax destructor. Ecotoxicology and Environmental Safety, 46(1), 117-123. https://doi.org/10.1006/eesa.1999.1863
  • Almeida, M. J., Moura, G., Pinheiro, T., Machado, J., & Coimbra, J. (1998). Modifications in Crassostrea gigas shell composition exposed to high concentrations of lead. Aquatic toxicology, 40(4), 323-334. https://doi.org/10.1016/S0166-445X(97)00062-3
  • Asghari, M. (2019). Pollution haven effect and water quality. International Academic Journal of Economics, 6(1), 91–109. https://doi.org/10.9756/IAJE/V6I1/1910007
  • Beauchamp, C., & Fridovich, I. (1971). Superoxide dismutase: improved assays and an assay applicable to acrylamide gels. Analytical biochemistry, 44(1), 276-287. https://doi.org/10.1016/0003-2697(71)90370-8 Brinkhurst, R. O., & Jamieson, B. G. (1971). Aquatic Oligochaeta of the world.
  • Bruns, E., Rombke, J., Scheffeczyk, A., & Sporlein, J. (2000). Bioaccumulation of lindane and hexachlorobenzene by Enchytraeus luxuriosus and Enchytraeus albidus. In Proceedings of the 8th International Symposium on Aquatic Oligochaeta (pp. 18-22). Bilbao, Spain.
  • Chapman, P. M. (2001). The implications of hormesis to ecotoxicology and ecological risk assessment. Human & Experimental Toxicology, 20(10), 499-505. https://doi.org/10.1191/096032701718120337
  • Chapman, P. M. (2018). Death by mud: amphipod sediment toxicity tests. In Microscale Testing in Aquatic Toxicology (pp. 451-463). CRC Press.
  • Chapman, P. M., & Brinkhurst, R. O. (1984). Lethal and sublethal tolerances of aquatic oligochaetes with reference to their use as a biotic index of pollution. In Aquatic Oligochaeta: Proceedings of the Second International Symposium on Aquatic Obligochaete Biology, held in Pallanza, Italy, September 21–24, 1982 (pp. 139-144). Springer Netherlands. https://doi.org/10.1007/978-94-009-6563-8_24
  • Chapman, P. M., & Wang, F. (2000). Issues in ecological risk assessment of inorganic metals and metalloids. Human and Ecological Risk Assessment, 6(6), 965-988. https://doi.org/10.1080/10807030091124392
  • Crayton, S. M., Wood, P. B., Brown, D. J., Millikin, A. R., McManus, T. J., Simpson, T. J., ... & Park, Y. L. (2020). Bioaccumulation of the pesticide imidacloprid in stream organisms and sublethal effects on salamanders. Global Ecology and Conservation, 24, e01292. https://doi.org/10.1016/j.gecco.2020.e01292
  • Didden, W., & Römbke, J. (2001). Enchytraeids as indicator organisms for chemical stress in terrestrial ecosystems. Ecotoxicology and environmental safety, 50(1), 25-43. https://doi.org/10.1006/eesa.2001.2075
  • Elssaidi, M. A., Mohamed, H. Y., & Mohamed, T. T. (2020). Bioaccumulation of lead and cadmium in wildlife, in Wadi Elshaty, Libya. Journal of Marine Sciences and Environmental Technologies, 6(2), A34–A41.
  • Falih, K. T. (2024). An assessment of soil metal contamination in oil fields utilizing petroleum contamination indices and GIS methods. International Academic Journal of Science and Engineering, 11(1), 265–276. https://doi.org/10.9756/IAJSE/V11I1/IAJSE1131
  • Frank, P. M., & Robertson, P. B. (1979). The influence of salinity on toxicity of cadmium and chromium to the blue crab, Callinectes sapidus. Bulletin of environmental Contamination and Toxicology, 21, 74-78. https://doi.org/10.1007/BF01685389
  • Gurer, H., & Ercal, N. (2000). Can antioxidants be beneficial in the treatment of lead poisoning? Free Radical Biology and Medicine, 29(10), 927-945. https://doi.org/10.1016/S0891-5849(00)00413-5
  • Jan, A. T., Azam, M., Siddiqui, K., Ali, A., Choi, I., & Haq, Q. M. R. (2015). Heavy metals and human health: mechanistic insight into toxicity and counter defense system of antioxidants. International journal of molecular sciences, 16(12), 29592-29630. https://doi.org/10.3390/ijms161226183
  • Jawad Hassan, M., Ali Raza, M., Ur Rehman, S., Ansar, M., Gitari, H., Khan, I., ... & Li, Z. (2020). Effect of cadmium toxicity on growth, oxidative damage, antioxidant defense system and cadmium accumulation in two sorghum cultivars. Plants, 9(11), 1575. https://doi.org/10.3390/plants9111575
  • Jawir, H. J. (1977). The effect of some pollutants on Limnodrilus hoffmeisteri (annelid worms: oligochaetes) (Master’s thesis). College of Science, University of Baghdad. (In Arabic)
  • Kevans, J., & Rasmussen, C. (2000). Whirling disease in Montana, USA: Linking parasites, oligochaetes, and fish. In Proceedings of the 8th International Symposium on Aquatic Oligochaeta (pp. 18–22). Bilbao, Spain.
  • Khatiri, K., Sheikh, A., Hesam, R., & Alikhani, N. (2019). The role of participation in preventing the water crisis. International Academic Journal of Innovative Research, 6(1), 47–52. https://doi.org/10.9756/IAJIR/V6I1/1910004
  • Klerks, P. L., & Bartholomew, P. R. (1991). Cadmium accumulation and detoxification in a Cd-resistant population of the oligochaete Limnodrilus hoffmeisteri. Aquatic Toxicology, 19(2), 97-112. https://doi.org/10.1016/0166-445X(91)90030-D
  • Kokhia, M., Lortkipanidze, M., Gorgadze, O., Kuchava, M., & Nebieridze, D. (2022). Earthworms (Oligochaeta: Lumbricidae) and heavy metals: content and bioaccumulation in the body.
  • Liu, J., Qu, W., & Kadiiska, M. B. (2009). Role of oxidative stress in cadmium toxicity and carcinogenesis. Toxicology and applied pharmacology, 238(3), 209-214.
  • Lucan-Bouché, M. L., Biagianti-Risbourg, S., Arsac, F., & Vernet, G. (1999). An original decontamination process developed by the aquatic oligochaete Tubifex tubifex exposed to copper and lead. Aquatic toxicology, 45(1), 9-17. https://doi.org/10.1016/S0166-445X(98)00091-5
  • Marr, J. C. A., Hansen, J. A., Meyer, J. S., Cacela, D., Podrabsky, T., Lipton, J., & Bergman, H. L. (1998). Toxicity of cobalt and copper to rainbow trout: application of a mechanistic model for predicting survival. Aquatic toxicology, 43(4), 225-238. https://doi.org/10.1016/S0166-445X(98)00061-7
  • Matović, V., Buha, A., Ðukić-Ćosić, D., & Bulat, Z. (2015). Insight into the oxidative stress induced by lead and/or cadmium in blood, liver and kidneys. Food and Chemical Toxicology, 78, 130-140. https://doi.org/10.1016/j.fct.2015.02.011
  • Nasrallehzadeh Saravi, H., Safari, R., Naderi, M. J., Makhough, A., Foong, S. Y., Baloei, M., ... & Razeghian, G. R. (2023). Spatial-temporal investigation of water quality and pollution of Sirvan River (Sanandaj-Kurdistan). International Journal of Aquatic Research and Environmental Studies, 3(2), 141-156. https://doi.org/10.70102/IJARES/V3I2/10
  • Obaid, Z. H. (2022, September). A Study of Some Aquatic Oligochaetes Community in Shatt Al-Hillah/Middle of Iraq. In IOP Conference Series: Earth and Environmental Science (Vol. 1088, No. 1, p. 012007). IOP Publishing. https://doi.org/10.1088/1755 1315/1088/1/012007
  • Patrick, L. (2006). Lead Toxicity, a review of the literature. Part I: Exposure, Evaluation, and treatment. Alternative medicine review, 11(1).
  • Rahman, S. U., Han, J. C., Zhou, Y., Ahmad, M., Li, B., Wang, Y., ... & Ahmad, I. (2024). Adaptation and remediation strategies of mangroves against heavy metal contamination in global coastal ecosystems: a review. Journal of Cleaner Production, 441, 140868. https://doi.org/10.1016/j.jclepro.2024.140868
  • Raza, A., Hussain, S., Javed, R., Hafeez, M. B., & Hasanuzzaman, M. (2021). Antioxidant defense systems and remediation of metal toxicity in plants. Approaches to the remediation of inorganic pollutants, 91-124. https://doi.org/10.1007/978-981-15-6221-1_6.
  • Roy, S., Naimuzzaman, M., & Rahman, F. (2023). Glutathione: A key frontier of heavy-metal detoxification and toleranc e in plants. Plant Trends, 1(1), 33-42.
  • Stephen Whitley, L. (1968). The resistance of tubificid worms to three common pollutants. Hydrobiologia, 32(1), 193-205. https://doi.org/10.1007/BF00179550
  • Sutariya, V., Wehrung, D., & Geldenhuys, J. W. (2012). Development and validation of a novel RP-HPLC method for the analysis of reduced glutathione. Journal of Chromatographic Science, 50, 271–276.
  • Tschuschke, S., Schmitt-Wrede, H. P., Greven, H., & Wunderlich, F. (2002). Cadmium Resistance Conferred to Yeast by a Non-metallothionein-encoding Gene of the EarthwormEnchytraeus. Journal of Biological Chemistry, 277(7), 5120-5125.
  • Valko, M., Rhodes, C. J. B., Moncol, J., Izakovic, M. M., & Mazur, M. (2006). Free radicals, metals and antioxidants in oxidative stress-induced cancer. Chemico-biological interactions, 160(1), 1-40. https://doi.org/10.1016/j.cbi.2005.12.009
  • Ziwei, M., & Han, L. L. (2023). Scientometric Review of Sustainable Land Use and Management Research. Aquatic Ecosystems and Environmental Frontiers, 1(1), 21-24.

Toxicity of Cobalt and Lead on Tubifex tubifex: Study on Lethal Effect and Changes in Antioxidants (Glutathione and Superoxide Dismutase)

Year 2025, Volume: 10 Issue: 1, 110 - 119, 01.04.2025
https://doi.org/10.28978/nesciences.1633065

Abstract

The study aimed to assess the lethal and sublethal toxicity effects of heavy metals, Cobalt (Co) and Lead (Pb), on Aquatic oligochaete Tubifex tubifex, which is an essential environmental indicator. Experiments indicated that the median lethal concentration (LC50) was 998.2 mg/L for Co and 207.5 mg/L for Pb after 48 h of exposure, reproducing the higher toxicity of Pb compared to Co. The study also detected the effect of exposure to sublethal concentrations (680 mg/L for Co and 95 mg/L for Pb) over 7 and 14 days. The results showed a significant reduction in the activity of antioxidants. For Cobalt, the activity of superoxide dismutase (SOD) decreased from 98 U/mg on day 7 to 73 U/mg on day 14, while the concentration of glutathione (GSH) decreased from 20 μg/mL to 13 μg/mL. Upon exposure to lead, SOD activity decreased from 95 U/mg on day 7 to 68 U/mg on day 14, and GSH concentration declined from 18 μg/ml to 8 μg/ml. These results highlight the crucial role of antioxidants in counteracting oxidative stress induced by heavy metals, making them real biomarkers for monitoring environmental pollution. The study highlights the serious need to develop sustainable environmental strategies to reduce the effect of these pollutants on aquatic ecosystems.

References

  • AbdElgawad, H., Zinta, G., Hamed, B. A., Selim, S., Beemster, G., Hozzein, W. N., ... & Abuelsoud, W. (2020). Maize roots and shoots show distinct profiles of oxidative stress and antioxidant defense under heavy metal toxicity. Environmental Pollution, 258, 113705. https://doi.org/10.1016/j.envpol.2019.113705
  • Al-Amin, A., Parvin, F., Chakraborty, J., & Kim, Y. I. (2021). Cyanobacteria mediated heavy metal removal: a review on mechanism, biosynthesis, and removal capability. Environmental Technology Reviews, 10(1), 44-57. https://doi.org/10.1080/21622515.2020.1869323
  • Ali, M. A., Fahad, S., Haider, I., Ahmed, N., Ahmad, S., Hussain, S., & Arshad, M. (2019). Oxidative stress and antioxidant defense in plants exposed to metal/metalloid toxicity. Reactive oxygen, nitrogen and sulfur species in plants: production, metabolism, signaling and defense mechanisms, 353-370. https://doi.org/10.1002/9781119468677.ch15
  • Al-Jashaami, S. H. K., Almudhafar, S. M., & Almayahi, B. A. (2024). The Impact of Climatic Characteristics on Increasing Soil Salinity in Manathira District Center. Natural and Engineering Sciences, 9(2), 426-440. https://doi.org/10.28978/nesciences.1574447
  • Allinson, G., Laurenson, L. J., Pistone, G., Stagnitti, F., & Jones, P. L. (2000). Effects of dietary copper on the Australian freshwater crayfish Cherax destructor. Ecotoxicology and Environmental Safety, 46(1), 117-123. https://doi.org/10.1006/eesa.1999.1863
  • Almeida, M. J., Moura, G., Pinheiro, T., Machado, J., & Coimbra, J. (1998). Modifications in Crassostrea gigas shell composition exposed to high concentrations of lead. Aquatic toxicology, 40(4), 323-334. https://doi.org/10.1016/S0166-445X(97)00062-3
  • Asghari, M. (2019). Pollution haven effect and water quality. International Academic Journal of Economics, 6(1), 91–109. https://doi.org/10.9756/IAJE/V6I1/1910007
  • Beauchamp, C., & Fridovich, I. (1971). Superoxide dismutase: improved assays and an assay applicable to acrylamide gels. Analytical biochemistry, 44(1), 276-287. https://doi.org/10.1016/0003-2697(71)90370-8 Brinkhurst, R. O., & Jamieson, B. G. (1971). Aquatic Oligochaeta of the world.
  • Bruns, E., Rombke, J., Scheffeczyk, A., & Sporlein, J. (2000). Bioaccumulation of lindane and hexachlorobenzene by Enchytraeus luxuriosus and Enchytraeus albidus. In Proceedings of the 8th International Symposium on Aquatic Oligochaeta (pp. 18-22). Bilbao, Spain.
  • Chapman, P. M. (2001). The implications of hormesis to ecotoxicology and ecological risk assessment. Human & Experimental Toxicology, 20(10), 499-505. https://doi.org/10.1191/096032701718120337
  • Chapman, P. M. (2018). Death by mud: amphipod sediment toxicity tests. In Microscale Testing in Aquatic Toxicology (pp. 451-463). CRC Press.
  • Chapman, P. M., & Brinkhurst, R. O. (1984). Lethal and sublethal tolerances of aquatic oligochaetes with reference to their use as a biotic index of pollution. In Aquatic Oligochaeta: Proceedings of the Second International Symposium on Aquatic Obligochaete Biology, held in Pallanza, Italy, September 21–24, 1982 (pp. 139-144). Springer Netherlands. https://doi.org/10.1007/978-94-009-6563-8_24
  • Chapman, P. M., & Wang, F. (2000). Issues in ecological risk assessment of inorganic metals and metalloids. Human and Ecological Risk Assessment, 6(6), 965-988. https://doi.org/10.1080/10807030091124392
  • Crayton, S. M., Wood, P. B., Brown, D. J., Millikin, A. R., McManus, T. J., Simpson, T. J., ... & Park, Y. L. (2020). Bioaccumulation of the pesticide imidacloprid in stream organisms and sublethal effects on salamanders. Global Ecology and Conservation, 24, e01292. https://doi.org/10.1016/j.gecco.2020.e01292
  • Didden, W., & Römbke, J. (2001). Enchytraeids as indicator organisms for chemical stress in terrestrial ecosystems. Ecotoxicology and environmental safety, 50(1), 25-43. https://doi.org/10.1006/eesa.2001.2075
  • Elssaidi, M. A., Mohamed, H. Y., & Mohamed, T. T. (2020). Bioaccumulation of lead and cadmium in wildlife, in Wadi Elshaty, Libya. Journal of Marine Sciences and Environmental Technologies, 6(2), A34–A41.
  • Falih, K. T. (2024). An assessment of soil metal contamination in oil fields utilizing petroleum contamination indices and GIS methods. International Academic Journal of Science and Engineering, 11(1), 265–276. https://doi.org/10.9756/IAJSE/V11I1/IAJSE1131
  • Frank, P. M., & Robertson, P. B. (1979). The influence of salinity on toxicity of cadmium and chromium to the blue crab, Callinectes sapidus. Bulletin of environmental Contamination and Toxicology, 21, 74-78. https://doi.org/10.1007/BF01685389
  • Gurer, H., & Ercal, N. (2000). Can antioxidants be beneficial in the treatment of lead poisoning? Free Radical Biology and Medicine, 29(10), 927-945. https://doi.org/10.1016/S0891-5849(00)00413-5
  • Jan, A. T., Azam, M., Siddiqui, K., Ali, A., Choi, I., & Haq, Q. M. R. (2015). Heavy metals and human health: mechanistic insight into toxicity and counter defense system of antioxidants. International journal of molecular sciences, 16(12), 29592-29630. https://doi.org/10.3390/ijms161226183
  • Jawad Hassan, M., Ali Raza, M., Ur Rehman, S., Ansar, M., Gitari, H., Khan, I., ... & Li, Z. (2020). Effect of cadmium toxicity on growth, oxidative damage, antioxidant defense system and cadmium accumulation in two sorghum cultivars. Plants, 9(11), 1575. https://doi.org/10.3390/plants9111575
  • Jawir, H. J. (1977). The effect of some pollutants on Limnodrilus hoffmeisteri (annelid worms: oligochaetes) (Master’s thesis). College of Science, University of Baghdad. (In Arabic)
  • Kevans, J., & Rasmussen, C. (2000). Whirling disease in Montana, USA: Linking parasites, oligochaetes, and fish. In Proceedings of the 8th International Symposium on Aquatic Oligochaeta (pp. 18–22). Bilbao, Spain.
  • Khatiri, K., Sheikh, A., Hesam, R., & Alikhani, N. (2019). The role of participation in preventing the water crisis. International Academic Journal of Innovative Research, 6(1), 47–52. https://doi.org/10.9756/IAJIR/V6I1/1910004
  • Klerks, P. L., & Bartholomew, P. R. (1991). Cadmium accumulation and detoxification in a Cd-resistant population of the oligochaete Limnodrilus hoffmeisteri. Aquatic Toxicology, 19(2), 97-112. https://doi.org/10.1016/0166-445X(91)90030-D
  • Kokhia, M., Lortkipanidze, M., Gorgadze, O., Kuchava, M., & Nebieridze, D. (2022). Earthworms (Oligochaeta: Lumbricidae) and heavy metals: content and bioaccumulation in the body.
  • Liu, J., Qu, W., & Kadiiska, M. B. (2009). Role of oxidative stress in cadmium toxicity and carcinogenesis. Toxicology and applied pharmacology, 238(3), 209-214.
  • Lucan-Bouché, M. L., Biagianti-Risbourg, S., Arsac, F., & Vernet, G. (1999). An original decontamination process developed by the aquatic oligochaete Tubifex tubifex exposed to copper and lead. Aquatic toxicology, 45(1), 9-17. https://doi.org/10.1016/S0166-445X(98)00091-5
  • Marr, J. C. A., Hansen, J. A., Meyer, J. S., Cacela, D., Podrabsky, T., Lipton, J., & Bergman, H. L. (1998). Toxicity of cobalt and copper to rainbow trout: application of a mechanistic model for predicting survival. Aquatic toxicology, 43(4), 225-238. https://doi.org/10.1016/S0166-445X(98)00061-7
  • Matović, V., Buha, A., Ðukić-Ćosić, D., & Bulat, Z. (2015). Insight into the oxidative stress induced by lead and/or cadmium in blood, liver and kidneys. Food and Chemical Toxicology, 78, 130-140. https://doi.org/10.1016/j.fct.2015.02.011
  • Nasrallehzadeh Saravi, H., Safari, R., Naderi, M. J., Makhough, A., Foong, S. Y., Baloei, M., ... & Razeghian, G. R. (2023). Spatial-temporal investigation of water quality and pollution of Sirvan River (Sanandaj-Kurdistan). International Journal of Aquatic Research and Environmental Studies, 3(2), 141-156. https://doi.org/10.70102/IJARES/V3I2/10
  • Obaid, Z. H. (2022, September). A Study of Some Aquatic Oligochaetes Community in Shatt Al-Hillah/Middle of Iraq. In IOP Conference Series: Earth and Environmental Science (Vol. 1088, No. 1, p. 012007). IOP Publishing. https://doi.org/10.1088/1755 1315/1088/1/012007
  • Patrick, L. (2006). Lead Toxicity, a review of the literature. Part I: Exposure, Evaluation, and treatment. Alternative medicine review, 11(1).
  • Rahman, S. U., Han, J. C., Zhou, Y., Ahmad, M., Li, B., Wang, Y., ... & Ahmad, I. (2024). Adaptation and remediation strategies of mangroves against heavy metal contamination in global coastal ecosystems: a review. Journal of Cleaner Production, 441, 140868. https://doi.org/10.1016/j.jclepro.2024.140868
  • Raza, A., Hussain, S., Javed, R., Hafeez, M. B., & Hasanuzzaman, M. (2021). Antioxidant defense systems and remediation of metal toxicity in plants. Approaches to the remediation of inorganic pollutants, 91-124. https://doi.org/10.1007/978-981-15-6221-1_6.
  • Roy, S., Naimuzzaman, M., & Rahman, F. (2023). Glutathione: A key frontier of heavy-metal detoxification and toleranc e in plants. Plant Trends, 1(1), 33-42.
  • Stephen Whitley, L. (1968). The resistance of tubificid worms to three common pollutants. Hydrobiologia, 32(1), 193-205. https://doi.org/10.1007/BF00179550
  • Sutariya, V., Wehrung, D., & Geldenhuys, J. W. (2012). Development and validation of a novel RP-HPLC method for the analysis of reduced glutathione. Journal of Chromatographic Science, 50, 271–276.
  • Tschuschke, S., Schmitt-Wrede, H. P., Greven, H., & Wunderlich, F. (2002). Cadmium Resistance Conferred to Yeast by a Non-metallothionein-encoding Gene of the EarthwormEnchytraeus. Journal of Biological Chemistry, 277(7), 5120-5125.
  • Valko, M., Rhodes, C. J. B., Moncol, J., Izakovic, M. M., & Mazur, M. (2006). Free radicals, metals and antioxidants in oxidative stress-induced cancer. Chemico-biological interactions, 160(1), 1-40. https://doi.org/10.1016/j.cbi.2005.12.009
  • Ziwei, M., & Han, L. L. (2023). Scientometric Review of Sustainable Land Use and Management Research. Aquatic Ecosystems and Environmental Frontiers, 1(1), 21-24.
There are 41 citations in total.

Details

Primary Language English
Subjects Freshwater Ecology
Journal Section Articles
Authors

Khansaa S. Farman 0000-0001-7550-7330

Israa Naser Ghulam This is me 0000-0002-2123-0396

Publication Date April 1, 2025
Submission Date February 4, 2025
Acceptance Date March 19, 2025
Published in Issue Year 2025 Volume: 10 Issue: 1

Cite

APA S. Farman, K., & Ghulam, I. N. (2025). Toxicity of Cobalt and Lead on Tubifex tubifex: Study on Lethal Effect and Changes in Antioxidants (Glutathione and Superoxide Dismutase). Natural and Engineering Sciences, 10(1), 110-119. https://doi.org/10.28978/nesciences.1633065

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