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Profiling the Physiological Roles in Fish Primary Cell Culture

Overview
Journal Biology (Basel)
Publisher MDPI
Specialty Biology
Date 2023 Dec 22
PMID 38132280
Authors
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Abstract

Fish primary cell culture has emerged as a valuable tool for investigating the physiological roles and responses of various cell types found in fish species. This review aims to provide an overview of the advancements and applications of fish primary cell culture techniques, focusing on the profiling of physiological roles exhibited by fish cells in vitro. Fish primary cell culture involves the isolation and cultivation of cells directly derived from fish tissues, maintaining their functional characteristics and enabling researchers to study their behavior and responses under controlled conditions. Over the years, significant progress has been made in optimizing the culture conditions, establishing standardized protocols, and improving the characterization techniques for fish primary cell cultures. The review highlights the diverse cell types that have been successfully cultured from different fish species, including gonad cells, pituitary cells, muscle cells, hepatocytes, kidney and immune cells, adipocyte cells and myeloid cells, brain cells, primary fin cells, gill cells, and other cells. Each cell type exhibits distinct physiological functions, contributing to vital processes such as metabolism, tissue regeneration, immune response, and toxin metabolism. Furthermore, this paper explores the pivotal role of fish primary cell culture in elucidating the mechanisms underlying various physiological processes. Researchers have utilized fish primary cell cultures to study the effects of environmental factors, toxins, pathogens, and pharmaceutical compounds on cellular functions, providing valuable insights into fish health, disease pathogenesis, and drug development. The paper also discusses the application of fish primary cell cultures in aquaculture research, particularly in investigating fish growth, nutrition, reproduction, and stress responses. By mimicking the in vivo conditions in vitro, primary cell culture has proven instrumental in identifying key factors influencing fish health and performance, thereby contributing to the development of sustainable aquaculture practices.

Citing Articles

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PMID: 39063147 PMC: 11277064. DOI: 10.3390/ijms25147905.

References
1.
Tse W, Chow S, Wong C . The cloning of eel osmotic stress transcription factor and the regulation of its expression in primary gill cell culture. J Exp Biol. 2008; 211(Pt 12):1964-8. DOI: 10.1242/jeb.017368. View

2.
Hodgkinson J, Fibke C, Belosevic M . Recombinant IL-4/13A and IL-4/13B induce arginase activity and down-regulate nitric oxide response of primary goldfish (Carassius auratus L.) macrophages. Dev Comp Immunol. 2016; 67:377-384. DOI: 10.1016/j.dci.2016.08.014. View

3.
Wang X, Wang K, Nie P, Chen X, Ao J . Establishment and characterization of a head kidney cell line from large yellow croaker Pseudosciaena crocea. J Fish Biol. 2014; 84(5):1551-61. DOI: 10.1111/jfb.12386. View

4.
Goswami M, Yashwanth B, Trudeau V, Lakra W . Role and relevance of fish cell lines in advanced in vitro research. Mol Biol Rep. 2022; 49(3):2393-2411. PMC: 8747882. DOI: 10.1007/s11033-021-06997-4. View

5.
Derakhshesh N, Movahedinia A, Salamat N, Hashemitabar M, Bayati V . Using a liver cell culture from Epinephelus coioides as a model to evaluate the nonylphenol-induced oxidative stress. Mar Pollut Bull. 2017; 122(1-2):243-252. DOI: 10.1016/j.marpolbul.2017.06.049. View