Sep 2026· Comparative Biochemistry and Physiology - Part D:Genomics and Proteomics· Vol 59, pp.
101850
· 0 citations
Medicine
TL;DR
Control electrical stimulation significantly enhanced mucus secretion under optimized parameters of 10 V and 15 cycles, resulting in a 3.59-fold increase in mucus-associated protein output and clear electrophoretic protein profiles.
Abstract
Fish skin mucus is a key defensive barrier, yet its secretion and regulation remain poorly characterized in Amur catfish (Silurus asotus). Here, controlled electrical stimulation significantly enhanced mucus secretion under optimized parameters of 10 V and 15 cycles, resulting in a 3.59-fold increase in mucus-associated protein output and clear electrophoretic protein profiles. Histological and ultrastructural analyses showed a more disordered distribution of mucous cells, greater morphological heterogeneity, reduced mean mucous-cell area, and fewer intracellular granular inclusions in stimulated fish than in unstimulated controls. Serum glucose increased significantly at 6 h after stimulation but returned by 24 h to a level not significantly different from that of the control group, indicating a transient acute physiological response. Comparative transcriptomic analysis between the 10 V_15 cycles stimulated group and the 0 V_15 cycles control group identified 650 differentially expressed genes (DEGs), enriched mainly in polysaccharide metabolism, glycogen biosynthesis, and protein ubiquitination. KEGG enrichment further implicated MAPK signaling and endoplasmic reticulum (ER) protein-processing pathways as potentially involved in mucin biosynthesis, folding, and exocytosis. RT-qPCR validation of selected DEGs involved in immunity, metabolism, and cellular regulatory processes showed a strong concordance with the RNA-seq results. Together, these findings provide a novel insight into electrically stimulated mucus secretion in Amur catfish and support controlled electrical stimulation as a practical approach for mucus collection.
Both gill and liver exhibited pronounced enrichment of lipid metabolism–related pathways—including steroid biosynthesis, fatty acid metabolism, glycerolipid metabolism, and fat digestion and absorption—accompanied by extensive upregulation of these genes, which are tightly associated with activation of the PPAR signaling pathway.
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Abstract The gills of teleost fish are multifunctional organs involved in respiration, osmoregulation, and immune defense, and are highly sensitive to environmental stressors. This study evaluated the histological and ultrastructural condition of the gill epithelium of common carp (Cyprinus carpio Linnaeus, 1758) inhabiting the middle reaches of the Ile River (Kazakhstan) under chronic anthropogenic pressure. Although hydrochemical parameters remained within permissible limits for fishery waters, all examined specimens (n = 10) exhibited pronounced structural alterations. Histological analysis revealed edema, epithelial hyperplasia, lamellar fusion, necrosis, and desquamation, indicating substantial impairment of gill integrity. Ultrastructural examination demonstrated advanced developmental stages of rodlet cells, mast cell degranulation, and increased activity of mucous and chloride cells, accompanied by mitochondrial alterations and autophagosome formation. Alongside destructive changes, moderate compensatory reactions were observed, reflecting tissue-level adaptation to prolonged environmental stress. These findings demonstrate that gill histopathology provides a sensitive tool for detecting sublethal effects of chronic anthropogenic impact, even when conventional hydrochemical indicators suggest acceptable water quality. The results support the use of cellular and tissue-level biomarkers in freshwater environmental monitoring programs.
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