Evaluating the toxicological effects of water-borne iron on hematological and oxidative stress biomarkers in Osteobrama belangeri (Valenciennes, 1844) fingerling

Iron is essential for fish, but elevated water-borne iron can cause toxicity and impair aquaculture productivity. This study evaluated the acute and sub-lethal effects of FeSO4·7H2O on Osteobrama belangeri fingerlings. The 96 h LC50 was estimated at 45.30 ± 0.99 mg L−1. Based on this value, we exposed fish to 1/16th (T1), 1/8th (T2), and 1/4th (T3) of the LC50, along with a control, for 96 h. Blood, serum, and tissue samples were collected at 24, 48, 72, and 96 h to assess hematological, biochemical, and oxidative stress responses. Iron exposure significantly (p < 0.05) increased hemoglobin concentration, hematocrit, erythrocyte and leukocyte counts, and levels of glucose, and lipid peroxidation, while significantly decreasing total protein, albumin, globulin, albumin–globulin ratio, as well as superoxide dismutase, and catalase activities. These alterations indicate physiological stress and oxidative damage in the liver, gill, and kidney. The integrated biomarker response further confirmed oxidative parameters as sensitive indicators of iron toxicity. These findings provide insights into iron tolerance in O. belangeri and support improved iron management in aquaculture. Further chronic and field studies are warranted to establish safe environmental limits.

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Publication Details

Journal
Critical Insights in Aquaculture
Published
2026-09-29
DOI
https://doi.org/10.1080/29932181.2026.2732754
Primary Topic
Environmental Toxicology and Ecotoxicology
Type
article
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article

Evaluating the toxicological effects of water-borne iron on hematological and oxidative stress biomarkers in Osteobrama belangeri (Valenciennes, 1844) fingerling

Arpit Acharya, Pramod Kumar Pandey, Tanmoy Gon Choudhury, Soibam Khogen Singh et al.
Critical Insights in Aquaculture
Environmental Toxicology and Ecotoxicology
article

Evaluating the toxicological effects of water-borne iron on hematological and oxidative stress biomarkers in Osteobrama belangeri (Valenciennes, 1844) fingerling

Arpit Acharya, Pramod Kumar Pandey, Tanmoy Gon Choudhury, Soibam Khogen Singh, Songhita Paul
article en

Abstract

Iron is essential for fish, but elevated water-borne iron can cause toxicity and impair aquaculture productivity. This study evaluated the acute and sub-lethal effects of FeSO4·7H2O on Osteobrama belangeri fingerlings. The 96 h LC50 was estimated at 45.30 ± 0.99 mg L−1. Based on this value, we exposed fish to 1/16th (T1), 1/8th (T2), and 1/4th (T3) of the LC50, along with a control, for 96 h. Blood, serum, and tissue samples were collected at 24, 48, 72, and 96 h to assess hematological, biochemical, and oxidative stress responses. Iron exposure significantly (p < 0.05) increased hemoglobin concentration, hematocrit, erythrocyte and leukocyte counts, and levels of glucose, and lipid peroxidation, while significantly decreasing total protein, albumin, globulin, albumin–globulin ratio, as well as superoxide dismutase, and catalase activities. These alterations indicate physiological stress and oxidative damage in the liver, gill, and kidney. The integrated biomarker response further confirmed oxidative parameters as sensitive indicators of iron toxicity. These findings provide insights into iron tolerance in O. belangeri and support improved iron management in aquaculture. Further chronic and field studies are warranted to establish safe environmental limits.

Critical Insights in AquacultureVol. 2(1)
Odisha University of Agriculture and Technology (IN), ICAR Research Complex for NEH Region (IN), Rani Lakshmi Bai Central Agricultural University, Jhansi (IN), Central Agricultural University (IN)
Openalex Percentile: Top 12%
Environmental Toxicology and Ecotoxicology
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Evaluating the toxicological effects of water-borne iron on hematological and oxidative stress biomarkers in Osteobrama belangeri (Valenciennes, 1844) fingerling — Arpit Acharya, Pramod Kumar Pandey, et al. · Critical Insights in Aquaculture (2026) | TGRS Research Map | TGRS