The Effect of Eyestalk Ablation on Several Immunologic Variables in Litopenaeus vannamei
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Eyestalk ablation inflicted upon crustacean is generally performed in captivity to induce ovarian maturation. However, ablation is a hurtful action that may impose physiological stress and even affects survival. The immunologic repercussions of the ablation have not been well understood and thus this study aims to analyze the effect of ablation on immunologic variables through comparing the ablated Litopenaeus vannamei with those of unablated shrimps (control). Unilateral left eyestalk ablation was inflicted on shrimp samples. Shrimp immune responses were observed based on the Total Haemocyte Count (THC), Differential Haemocyte Count (DHC) composing of hyaline cell (HC) counts and granular cell (GC) counts, glucose and uric acid levels, along with the weight gains of shrimps. Observed parametres were taken twice from 10 shrimps for each of the observed and control samples (i.e., on 6 h and 5 d elapsed time). The results show that the ablated shrimps group, after 6 h elapsed time, experienced significant decrease in THC (3.12 ± 0.75 x 106 cells ml-1), but recovered after 5 days (3.89 ± 0.96 x 106 cells ml-1) and were not significantly different from the control (5.16 ± 2.20 x 106 cells ml-1). Meanwhile, glucose level show significant decrease over 6 h and 5 d post ablation (108 and 93 mg dL-1, respectively) compared to the resulting responses from the control (35-36 mg dL-1). Differences in DHC for all cell types as well as uric acid in hemolymph were not significant between the observed and the control samples. Moreover, the ablated treatment did not affect the growth of vannamei after 5 d post ablation. The results revealed that changes occur on the physiological and immune parameters of shrimps due to the eye ablation treatment as shown by the decrease in the THC and glucose levels, especially within the early moments post treatment. However, at the end of the observation (5 d post ablation), shrimps exhibit signs of recovery from stress indicated by an increase in THC close to normal.
Ackefors, H., 2009. The evolution of a worldwide shrimp industry. World Aquaculture, pp. 46-55. https://www.was.org/magazine/ArticleContent.aspx?Id=592
Adams, S.M., 1990. Status and biological indicator for evaluating the effects of stress on fish. biological indicator of stress in fish. In: Adams, S.M. (ed.) American Fisheries Symposium, pp. 1- 8.
Adisuwirjo, Sutrisno, D., dan Setyawati, S.J.A., 2001. Dasar Fisiologi Ternak. Fakultas Peternakan. Universitas Jenderal Soedirman. Purwokerto.
Alwi, I., 2012. Kriteria empirik dalam menentukan ukuran sampel pada pengujian hipotesis statistika dan analisis butir. Jurnal Formatif, 2(2), pp. 140-148. http://dx.doi.org/10.30998/formatif.v2i2.95
Arifin, Y., Supriyono, E. dan Widanarni., 2014. Total hemosit, glukosa, dan survival rate udang mantis Harpiosquilla raphide pasca transportasi dengan dua sistem yang berbeda. J. Kelautan Nasional, 9(2), pp. 1-9. https://doi.org/10.15578/jkn.v9i2.6207
Babu, D., Ravuru, J.N. and Mude., 2014. Effect of density on growth and production of Litopenaeus vannamei of brackish water culture system in summer season with artificial diet in Prakasam District, India. American International Journal of Research in Formal, Applied, & Natural Sciences, 5(1), pp. 10-13.
Barrett, F.M. and Friend, W.G., 1996. Studies on the uric acid concentration in the hemolymph of fifth-instar larvae of Rhodnius Prolixus (stal) during growth and metamorphosis. Journal of Insect Physiology, 12, pp. 1-7. https://doi.org/10.1016/0022-1910(66)90059-X
Bislimi, K., Behluli, A., Halili, J., Mazreku, I., Osmanil, F. and Halili, F., 2013. Comparative analysis of some biochemical parameters in hemolymph of garden snail Helix pomatia of the Kastriot and Ferizaj Regions, Kosovo. Int. J. of Engineering and Applied Sciences, 4(6), pp. 11-18.
Blaxhall, P.C. and Daisley, K.W., 1973. Routine haematological methods for use with fish blood. Journal Fish Biology, 5, pp. 577-581. https://doi.org/10.1111/j.1095-8649.1973.tb04510.x
Buchanan, K.L., 2000. Stress and the evolution of condition-dependent signals. Trends in Ecology and Evolution, 15, pp. 156-160. https://doi.org/10.1016/S0169-5347(99)01812-1
Caldari-Torres, C., Banta-Long, W., Bruss, A., Choi, E., Fiegel, H. Jollis, M.S., Ly, S. and Viswanathan, S., 2018. Hemolymph glucose levels as a measure of crayfish stress: a methodology using a human glucometer. The FASEB Journal, 32(1), lb224. https://www.fasebj.org/doi/abs/10.1096/fasebj.2018.32.1_supplement.lb224
Chai, Y.M., Zhu, Q., Yu, S.S., Zhao, X.F., Wang, J.X., 2012. A novel protein with a fibrinogen-like domain involved in the innate immune response of Marsupenaeus japonicus. Fish and Shellfish Immunology, 32(2), pp. 307-315. https://doi.org/ 10.1016/j.fsi.2011.11.020
Chakraborty, S. and Ghosh, U., 2014. In vivo immunological changes occurring at different time intervals in white spot syndrome virus infected shrimp, treated with anti-WSSV drug derived from marine plants. International Journal of Basic and Applied Virology, 3(1), pp. 01-15. https://doi.org/10.5829/idosi.ijbav.2014.3.1.81254
Cheng S.Y., W.C. Lee, L.W. Shieh, J.C. Chen., 2004. Increased production and excretion of urea in the kuruma shrimp (Marsupenaeus japonicus) exposed to combined environments of increased ammonia and nitrite. Archives of Environmental Contamination and Toxicology, 47, pp. 352–362. https://doi.org/ 10.1007/s00244-004-3190-2
Cobo, M.L., 2013. Intensification of white shrimp Litopenaeus vannamei (Boone) larviculture. Ph.D. Thesis, Ghent University, Belgium. http://hdl.handle.net/1854/LU-3172967
Cui, Y., Ren, X., Li, J., Zhai, Q., Feng, Y., Xu, Y. and Ma, L., 2017. Effects of ammonia-N stress on metabolic and immune function via the neuroendocrine system in Litopenaeus vannamei. Fish and Shellfish Immunology, 64, pp. 270-275. https://doi.org/ 10.1016/j.fsi.2017.03.028
Cuzon, G. and Lawrence, A., 2004. Nutrition of Litopenaeus vannamei reared in tanks or in ponds. Aquaculture. 235(1), pp. 513-551. https://doi.org/ 10.1016/j.aquaculture.2003.12.022
Djai, S., Supriyono, E., Nirmala, K., and Adiyana, K., 2017. Total hemocyte count and hemolymph glucose concentration response of spiny lobster Panulirus homarus on ratio of shelter. Jurnal Ilmu dan Teknologi Kelautan Tropis, 9(1), pp. 125-133. https://doi.org/10.29244/jitkt.v9i1.17923
Flegel, T.W., Lightner, D.V., Lo, C.F. and Owens, L., 2008. Shrimp disease control: Past, present and future, pp. 355-378. In: Bondad-Reantaso, M.G., Mohan, C.V., Crumlish, M. and Subasinghe, R.P. (eds.). Diseases in Asian Aquaculture VI. Fish Health Section, Asian Fisheries Society, Manila, Philippines. pp 505. http://www.fhs-afs.net/daa_vi_files/27.pdf
Gulec, A.K. and Aksu, O., 2012. Effects of handling on physiological profiles in Turkish crayfish Astacus leptodactylus. World J. of Fish and Marine Sciences, 4(6), pp. 684-688. https://doi.org/10.5829/idosi.wjfms.2012.04.06.65103
Harper, C. and Wolf, J.C., 2009. Morphologic effects of the stress response in fish. ILAR Journal, 50(4), pp. 387-396. https://doi.org/10.1093/ilar.50.4.387
Hartinah., 2012. Respon fisiologi juvenil udang windu, Penaeus monodon, Fabricius, pada bobot dan dnsitas pemeliharaan yang berbeda. Disertasi. Pascasarjana Universitas Hasanuddin, Makassar.
Hastuti, S., Mokoginta, I., Dana, D. dan Sutardi, T., 2004. Resistensi terhadap stres dan respons imunitas ikan gurami (Osphronemus gouramy, Lac.) yang diberi pakan mengandung kromium-ragi. Jurnal Ilmu-Ilmu Perairan dan Perikanan Indonesia, 11(1), pp. 15-21. https://journal.ipb.ac.id/index.php/jippi/article/view/7045/5442
Hongstrand, C., 1998. Comparison physiology, endocrinology (Chapter H). Syllabus. pp. 17.
Hosamani N., Pamuru R.R. and Pamanji, S.R., 2016. Natural and induced (eyestalk ablation) molt cycle in freshwater rice field crab Oziothelphusa senex senex. Journal of Aquaculture Research & Development, 7, pp. 424-427. https://doi.org/10.4172/2155-9546.1000424
Ikhwanuddin, M., Adnan, M., Mohamad S. and Abol-Munafi, A.B., 2019. Effect of eyestalk ablation on the ovarian maturation stages of blue swimming crab, Portunus pelagicus. Asian Journal of Biological Sciences, 12, pp. 437-441. https://doi.org/10.3923/ajbs.2019.437.441
Iwanaga, S. and Lee, B.L., 2005. Recent advances in the innate immunity of invertebrate animals. BMB Reports, 38(2), pp. 128–150. https://doi.org/10.5483/BMBRep.2005.38.2.128
Johansson, M.W. , Keyser, P., Sritunyalucksana, K., and Soderhall, K., 2000. Crustacean hemocytes and haematopoiesis. Aquaculture, 191(1-3), pp. 45–52. https://doi.org/10.1016/S0044-8486(00)00418-X
Jussila, J., 1997. Physiological responses of astacid crayfishes (Crustacea: Dekapoda) to condition of intensive culture. Kuopio University Publication Natural and Eviromental Sciences, p.67.
Kamaruding, N.A., Ismail, N. and Ikhwanuddin, M., 2018. Physiological effect of eyestalk ablation on nutrient utilization and plasma protein expression in the female giant freshwater prawn (Macrobrachium rosenbergii) during different molting cycles. Journal of Shellfish Research, 37(5), pp, 1–8. https://doi.org/10.2983/035.037.0500
Lee, W.C. and Cheng S.Y., 2003. Hemolymph ammonia, urea and uric acid levels and nitrogenous excretion of Marsupenaeus japonicas at different salinity levels. J. Exp. Mar. Biol. Ecol. 288, pp. 39–49. https://doi.org/ 10.1016/S0022-0981(02)00597-X
Liu, S., Zheng, S-C., Li, Y.L., Li, J. and Liu H.P., 2020. Hemocyte-mediated phagocytosis in crustaceans. Frontiers in Immunology, 11:268. https://doi.org/10.3389/fimmu.2020.00268
Lorenzon, S., Giulianini, P.G., Libralato, S., Martinis, M. and Ferrero, E.A., 2008. Stress effect of different transport sistems on the physiological profiles of the crab cancer Pangurus. Journal of Aquaculture, 278, pp. 156-163. https://doi.org/10.1016/j.aquaculture.2008.03.011
Lugert, V., Thaller, G., Tetens, J., Schulz, C. and Krieter, J., 2014. A review on fish growth calculation: multiple functions in fish production and their specific application. Reviews in Aquaculture, 6, pp. 1–13. https://doi.org/10.1111/raq.12071
Magaña-Gallegos, E., Bautista-Bautista, M., González-Zuñiga, L.M., Arevalo, M., Cuzon, G. and Gaxiola, G., 2018. Does unilateral eyestalk ablation affect the quality of the larvae of the pink shrimp Farfantepenaeus brasiliensis (Letreille, 1817) (Decapoda: Dendrobranchiata: Penaeidae)? Journal of Crustacean Biology, 38(4), pp. 401–406. https://doi.org/10.1093/jcbiol/ruy043
Martin, G.G. and Graves, L.B., 1985. Structure and classification of shrimp hemocytes. Journal of Morphology, 185, pp. 339-348. https://doi.org/ 10.1002/jmor.1051850306
Martínez, R., Carpio, Y., Arenal, A., Lugo, J.M., Morales, R., Martín, L., Rodríguez, R. F., Acosta, J., Morales, A., Duconge, J. and Estrada, M.P., 2017. Significant improvement of shrimp growth performance by growth hormone-releasing peptide-6 immersion treatments. Aquaculture Research, pp. 1–14. https://doi.org/10.1111/are.13286
Matozzo, V. and Marin, M.G., 2010. First cytochemical study of hemocytes from the crab Carcinus aestuarii (Crustacea, Decapoda). European journal of histochemistry, 54(1), p. e9. https://dx.doi.org/10.4081%2Fejh.2010.e9
Mulyadi, Nur, I. and Iba, W., 2020. Efficacy of seaweed (Sargassum sp.) extract to prevent vibriosis in white shrimp (Litopenaeus vannamei) juvenile. International Journal of Zoological Research, 16(1), pp. 1-11. https://doi.org/10.3923/ijzr.2020.1.11
Nur, I., Santi and Agus Kurnia, A., 2019. Efficacy of guava (Psidium guajava) leaves extract to prevent vibriosis in white shrimp (Litopenaeus vannamei). Research Journal of Medicinal Plants, 13, pp. 136-144. https://doi.org/10.3923/rjmp.2019.136.144
Pillai, B.R., Sahoo, L., Sahu, S., Vijayakumar, S.M. and Sahu, S., 2010. Effect of unilateral ablation on ovarian maturation and occurance of berried female in Macrobrachium rosenbergii (de Man). Indian Journal of Fisheries, 57, pp. 77-80.
Ponnuchamy, R., Ravichandra Reddy, S. and Shakuntala, K., 1981. Effects of eyestalk ablation on growth and food conversion efficiency of the freshwater prawn Macrobrachium lanchesteri (de Man). Hydrobiologia 77, pp. 77–80. https://doi.org/10.1007/BF00006391
Robi, M. and Erlangga., 2014. Pengaruh ablasi mata terhadap kecepatan kematangan gonad kepiting bakau (Sylla serrata) betina. Acta Aquatica, 1(1), pp. 14-19. https://doi.org/10.29103/aa.v1i1.292
Sequeira, T., Tavares, D., and Arala-Chaves, M., 1996. Evidence for circulating hemocyte proliferation in the shrimp Penaeus japonicus. Developmental & Comparative Immunology, 20(2), pp. 97-104. https://doi.org/10.1016/0145-305x(96)00001-8
Sung, H.H., Hwang, S.F., and Tasi, F.M., 2000. Responses of giant freshwater prawn (Macrobrachium rosenbergii) to challenge by two strains of Aeromonas spp. Journal of Invertebrate Pathology, 76, pp. 278–84. https://doi.org/ 10.1006/jipa.2000.4981
Tsing, A., Arcier, J.M. and Brehelin, M., 1989. Hemocytes of penaeid and palaemonid shrimps: morphology cytochemistry and hernograms. Journal of Invertebrate Pathology, 53, pp. 64-77.
Utari, A.G., Irianti, N. and Mugiyono, S., 2013. Total protein plasma and blood glucose level in manila ducks fed with different protein and metabolic energy. Jurnal Ilmiah Peternakan, 1(3), pp. 1037-1042.
Van de Braak, C.B.T., Botterblom, M.H.A., Taverne, N., van Muiswinkel W.B., Rombout J.H.W.M., and van der Knaap, W.P.W., 2002. The roles of haemocytes and the lymphoid organ in the clearance of injected Vibrio bacteria in Penaeus monodon shrimp. Fish and Shellfish Immunology, 13(4), pp. 293-309. https://doi.org/10.1006/fsim.2002.0409
Van Wyk, P. and Scarpa, J., 1999. Water quality and management. p.128-138. In: Farming marine shrimp in recirculating freshwater systems. Van Wyk, P. et al., (eds). Florida Department of Agriculture and Consumer Services, Tallahassee, FL, USA.
Xu, L., Pan, L., Zhang, X., and Wei, C., 2019. Effects of crustacean hyperglycemic hormone (CHH) on regulation of hemocyte intracellular signaling pathways and phagocytosis in white shrimp Litopenaeus vannamei. Fish and Shellfish Immunology, 93, pp. 559-566. https://doi.org/10.1016/j.fsi.2019.07.051
Zarain-Herzberg, M., Campa-Cordava, A.I. and Cavalli, R.O., 2010. Advances in intensifying the cultivation of the shrimp Litopenaeus vannamei in seawater floating cages. Aquaculture. 300, pp. 87-92. https://doi.org/10.1016/j.aquaculture.2009.12.016
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