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:: Volume 7, Issue 1 (2021) ::
Sustainable Aquaculture. Health. Management. J. 2021, 7(1): 10-20 Back to browse issues page
Research Article: Comparative histomorphology of epidermis of head and caudal peduncle in Otolithes ruber, Huso huso and Pangasius hypophthalmus fish
M Mohamed , R Abdi * , M. T Ronagh , M. A Salari - Ali Abadi , Z Basir
Abstract:   (2716 Views)
Three species of fish including, macroscopic scaled fish  as Otolithes ruber, microscopic scaled sturgeon as Huso huso and free scaled cat fish as  Pangasius hypophthalmus were prepared and specimen of dorsal of head and caudal peduncle were carried out. Routine procedures of tissues preparation followed and paraffin sections stained with (H&E) and (PAS). Results showed, epidermis formed non keratinized stratified squamous epithelium with epidermis, lymphocytes, goblet cells, taste bud and club cells. The epidermis thickness of the head skin was higher than that of the caudal peduncle, as demonstrated by image analysis using light microscopy. Goblet cells were along the superficial cells layers and their distributions were varied. In histomorphometric studies by PAS staining the highest number of these cells were seen in head of O. ruber and the lowest were seen in the caudal peduncle of P. hypophthalmus. Most of them were seen from the middle to surface layer of the epidermis. Club cells, with large nucleus, mostly evident in the deep and middle layer of the epidermis, being the largest cells within the epithelium. The highest numbers of these cells (61.8 ± 2.16) were found in head region of P. hypophthalmus. Taste buds as a sensory organ were not seen in caudal peduncle of O. ruber and H. huso. Based on the results of this study, epidermis had similarities in cell type and differences in their numbers that could be justified by the presence or absence of scales.
Keywords: Histomorphology, Skin, Otolithes ruber, Huso huso, Pangasius hypophthalmus
Full-Text [PDF 891 kb]   (909 Downloads)    
Type of Study: Original research papers | Subject: Aquaculture and Health management
Received: 2021/03/26 | Accepted: 2021/08/11 | Published: 2021/08/14
References
1. Abdi, R., Sheibani, M.T., Adibmoradi, M. and Sharifpour, I., 2007. Histological study of liver and pancreas in adult Otolithes ruber in Bushehr, Iran. Iranian Scientific Fisheries Journal, 15(4), 87-96. (In Persian)
2. Al-Banaw, A., Kenngott, R., Al-Hassan, J.M., Mehana, N. and Sinowatz, F., 2009. Histochemical analysis of glycoconjugates in the skin of a catfish (Arius Tenuispinis, Day). Anatomy Histology Embryology, 39, 42-50. [DOI:10.1111/j.1439-0264.2009.00977.x] [PMID]
3. Amiripour, L., Abdi, R., Movahedinia, A. and Sahraian, M.R., 2015. Study of Liver and Intestine Tissue Structure in Orange Spotted Grouper (Epinephelus coioides) During Larval Development. Journal of Oceanography, 6(23), 87-92.
4. Barbosa, A., Magalhaes, E.J. and Hoffmann, A., 2010. Conspecific and heterospecific alarm substance induces behavioral responses in piau fish Leporinus piau. Acta Ichthyology, 13, 119-126. [DOI:10.1007/s10211-010-0081-6]
5. Basir, Z. and Peyghan, R., 2019. Immunohistochemical and ultrastructural study of the effect of different salinities on gill chloride cells of Cyprinus carpio. Iranian Journal of Fisheries Science, 28 (5), 131-141.
6. Basir, Z. and Abdi, R., 2016. Histological study of WBC and hematological indices of spotted catshark Chiloscyllium punctatum in Persian Gulf during the cold season. Journal of Marine Science and Technology, 14(4), 15-21.
7. Basir, Z., Hassan, M., Mahabadi, M.K., Mesbah, M. and Abdi, R., 2015. Histomorphometric and Histochemistry of Mucous Secreting Cells in Different Parts of Skin in Shabut (Barbusgrypus, Heckel 1843). Journal of Applied Environmental and Biological Sciences, 5(10S), 80-85.
8. Ceballos-Francisco, D., Cordero, H., Guardiola, F.A., Cuest, A. and Esteban, M.A., 2017. Healing and mucosal immunity in the skin of experimentally wounded gilthead seabream (Sparus aurata L). Fish & shellfish immunology, 71, 210-219. [DOI:10.1016/j.fsi.2017.10.017] [PMID]
9. Cordero, H., Brinchmann, M.F., Cuesta, A., Meseguer, J. and Esteban, M.A., 2015. Skin mucus proteome map of European sea bass (Dicentrarchus labrax). Proteomics, 15, 4007-4020. [DOI:10.1002/pmic.201500120] [PMID]
10. Cordero, H., Ceballos-Francisco, D., Cuesta, A. and Esteban, M.A., 2017. Dorso-ventral skin characterization of the farmed fish gilthead seabream (Sparus aurata). PLoS ONE, 12(6), e0180438. [DOI:10.1371/journal.pone.0180438] [PMID] [PMCID]
11. Guardiola, F.A., Cuesta, A., Abellan, E., Meseguer, J. and Esteban M.A., 2014. Comparative analysis of the humoral immunity of skin mucus from several marine teleost fish. Fish & shellfish immunology, 40, 24-31. [DOI:10.1016/j.fsi.2014.06.018] [PMID]
12. Guardiola, F.A., Cuesta, A., Arizcun, M., Meseguer, J. and Esteban, M.A., 2014. Comparative skin mucus and serum humoral defence mechanisms in the teleost gilthead seabream (Sparus aurata). Fish & shellfish immunology, 36, 545-551. [DOI:10.1016/j.fsi.2014.01.001] [PMID]
13. Halbgewachs, C.F., Marchan, T.A., Kusch, R.C., Chivers, D.P., 2009. Epidermal club cells and the innate immune system of minnows. Biological Journal of the Linnean Society, 98, 891-897. [DOI:10.1111/j.1095-8312.2009.01328.x]
14. Jensen, L.B., 2015. Effect of temperature and diet on wound healing in Atlantic salmon (Salmo salar L.). Fish Physiology and Biochemistry, 41, 1527-1543. [DOI:10.1007/s10695-015-0105-2] [PMID]
15. Jung, J.A. and Tonn, W.M., 2011. Alarm substances elicit limited population - level responses in fathead minnow. Ecology of Freshwater Fish, 20, 220-230. [DOI:10.1111/j.1600-0633.2010.00481.x]
16. Karlsen, C., Ytteborg, E., Timmerhaus, G., 2018. Atlantic salmon skin barrier functions gradually enhance after seawater transfer. Scientific Reports, 8, 95-101. [DOI:10.1038/s41598-018-27818-y] [PMID] [PMCID]
17. Kim, C.H., Park, M.K., Kang, E.J., 2008. Minute tuber- cles on the skin surface of larvae in the Korean endemic bit- terling, Rhodeus Pseudosericeus. Journak of Applied Ichthyology, 24, 269-275. [DOI:10.1111/j.1439-0426.2007.01030.x]
18. Lei, F.Z., Jiang, J.P., Li, C., Xie, F., 2012. Histological observation of skinfrom three species of Megophryinae. Chinese Journal of Zoology, 47(3),20-7, 2012.
19. Li, X.J., Peng, X.L. and Qiao, Z.G., 2010. Studies on the types,distribution andsecretion of mucous cells in the skin and gill of Silurus asotu. Journal of Shanghai Ocean University, 19(6), 751-5.
20. Lin, X., Zhang, W.N., Lin, S.G., Jiang, D.P. and Wang, S.K., 2008. Type anddistribution of mucous cells in skin, gills and digestive tracts of Anguilla anguilla. Fujian Journal of Agricultural Sciences, 1, 39-43.
21. Liu, Y., Xiao, Q., Yang, S., Zhao, L., Fu, H., Du, J., Du, Z., Yan, T. and Wu, H., 2017. Characterization of hematopoiesis in Dabry's sturgeon (Acipenser dabryanus). Aquaculture and Fishery Sciences, 2(6), 262-8. [DOI:10.1016/j.aaf.2017.10.007]
22. Moradkhani, A., Abdi, R., Salari-Ali Abadi, M.A., Nabavi, S. and Basir, Z., 2020. Quantification and description of gut-associated lymphoid tissue in, shabbout, Arabibarbus grypus (actinopterygii: cypriniformes: cyprinidae), in warm and cold season. Acta Ichthyologica et Piscatoria, 50(4), 423-432. [DOI:10.3750/AIEP/02910]
23. Naderi, S., Abdi, R., Navabi, M.B., Movahedinia, A., 2014. Distribution Pattern of Main Mucus Secretory Cells in Different Parts of Epiderm in Epinephelus coioides. International Journal of Scientific Engineering and Technology, 3(5), 630-633.
24. Park, J.Y., Oh, M.K, Kang, E.J., Kim, C.H. and Beon, M.S., 2010. On the vascularization and structure of the skin of a Korean bullhead Pseudobagrus brevicorpus (Bagridae, Teleostei) based on its entire body and appendages. Journal of Applied Ichthyology, 26, 64-70. [DOI:10.1111/j.1439-0426.2009.01354.x]
25. Raj, V.S., Fournier, G., Rakus, K., Ronsmans, M., Ouyang, P., Michel, B., Delforges, C., Costes, B., Farnir, F., Leroy, B., Wattiez, R., Melard, C., Mast, J., Lieffrig, F. and Vanderplasschen, A., 2011. Skin mucus of Cyprinus carpio inhibits cyprinid herpesvirus 3 binding to epidermal cells. Veterinary Resaerch, 42, 92-1001. [DOI:10.1186/1297-9716-42-92] [PMID] [PMCID]
26. Regueira, E., Davila, C. and Hermida, G.N., 2016. Morphological changes in skinglands during development in Rhinella arenarum (Anura: Bufonidae). Anatomical Record, 299(1), 141-56. [DOI:10.1002/ar.23284] [PMID]
27. Richardson, R., 2013. Adult zebrafish as a model system for cutaneous wound healing research. Journal of Investigative Dermatology, 133, 1655-1665. [DOI:10.1038/jid.2013.16] [PMID] [PMCID]
28. Richardson, R. 2013. Re-epithelialization of cutaneous wounds in adult zebrafish combines mechanisms of wound closure in embryonic and adult mammals. Development, 143, 2077-2088.
29. Savari, S., Safahieh, A., Archangi, B., Savari, A. and Abdi, R., 2016. Evaluation of acetylcholinesterase transcript level as a biomarker of methylmercury in orange spotted grouper (Epinephelus coioides) brain. Iranian Journal of Fisheries Sciences, 15(2), 898-912.
30. Stabell, O.B. and Vegusdal, A., 2010. Socializing makes thick-skinned individuals: on the density of epidermal alarm substance cells in cyprinid fish, the crucian carp (Carassius carassius). Journal of Comparative Physiology A, 196, 639-647. [DOI:10.1007/s00359-010-0550-4] [PMID]
31. Sveen, L.R., 2016. Impact of fish density and specific water flow on skin properties in Atlantic salmon (Salmo salar L.) post-smolts. Aquaculture, 464, 629-637. [DOI:10.1016/j.aquaculture.2016.08.012]
32. Sveen, L.R., Timmerhaus, G. and Krasnov, A., 2019. Wound healing in post-smolt Atlantic salmon (Salmo salar L.). Scientific Report, 9, 35-45. [DOI:10.1038/s41598-019-39080-x] [PMID] [PMCID]
33. Wang, X., Jing, H., Li, J., Ma, Q., Liu, K. and Song, Z., 2016. Development of 26SNP markers in dabry's sturgeon (Acipenser dabryanus) based on high-throughput sequencing. Conservation Genetics Resources, 9(2), 234-240. [DOI:10.1007/s12686-016-0651-7]
34. Webb, A.E. and Kimelman, D., 2008. Analysis of early epidermal development in Zebrafish. Methods in Molecular Biology, 289, 137-146. [DOI:10.1385/1-59259-830-7:137] [PMID]
35. Zhou, B., Lu, J., Xu, F., Chen, X. and Ye, H., 2014. Effects of temperature on oxygen consumption rate of Dabry's sturgeon juvenile. Journal of Agriculture Science, 27(5), 2236-9.



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Mohamed M, Abdi R, Ronagh M T, Salari - Ali Abadi M A, Basir Z. Research Article: Comparative histomorphology of epidermis of head and caudal peduncle in Otolithes ruber, Huso huso and Pangasius hypophthalmus fish. Sustainable Aquaculture. Health. Management. J. 2021; 7 (1) :10-20
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