
Intestinal epithelium of juvenile dourado Salminus brasiliensis (Cuvier, 1816) fed diet with lyophilized bovine colostrum
2014; Wiley; Volume: 47; Issue: 2 Linguagem: Inglês
10.1111/are.12515
ISSN1365-2109
AutoresThaline Maira Pachelli da Cruz, Débora Botéquio Moretti, Wiolene Montanari Nordi, José Eurico Possebon Cyrino, Raul Machado-Neto,
Tópico(s)Reproductive biology and impacts on aquatic species
ResumoAquaculture ResearchVolume 47, Issue 2 p. 561-569 Original Article Intestinal epithelium of juvenile dourado Salminus brasiliensis (Cuvier, 1816) fed diet with lyophilized bovine colostrum Thaline Maira Pachelli da Cruz, Thaline Maira Pachelli da Cruz Departamento de Zootecnia, Universidade de São Paulo, Piracicaba, São Paulo, BrazilSearch for more papers by this authorDebora Botequio Moretti, Debora Botequio Moretti Departamento de Zootecnia, Universidade de São Paulo, Piracicaba, São Paulo, BrazilSearch for more papers by this authorWiolene Montanari Nordi, Wiolene Montanari Nordi Departamento de Zootecnia, Universidade de São Paulo, Piracicaba, São Paulo, BrazilSearch for more papers by this authorJose Eurico Possebon Cyrino, Jose Eurico Possebon Cyrino Departamento de Zootecnia, Universidade de São Paulo, Piracicaba, São Paulo, BrazilSearch for more papers by this authorRaul Machado-Neto, Corresponding Author Raul Machado-Neto Departamento de Zootecnia, Universidade de São Paulo, Piracicaba, São Paulo, BrazilCorrespondence: R Machado-Neto, Laboratorio de Anatomia e Fisiologia Animal, Departmento de Zootecnia, Universidade de São Paulo, Avenida Pádua Dias, 11, 13418-900 Piracicaba, São Paulo, Brazil. E-mail: [email protected]Search for more papers by this author Thaline Maira Pachelli da Cruz, Thaline Maira Pachelli da Cruz Departamento de Zootecnia, Universidade de São Paulo, Piracicaba, São Paulo, BrazilSearch for more papers by this authorDebora Botequio Moretti, Debora Botequio Moretti Departamento de Zootecnia, Universidade de São Paulo, Piracicaba, São Paulo, BrazilSearch for more papers by this authorWiolene Montanari Nordi, Wiolene Montanari Nordi Departamento de Zootecnia, Universidade de São Paulo, Piracicaba, São Paulo, BrazilSearch for more papers by this authorJose Eurico Possebon Cyrino, Jose Eurico Possebon Cyrino Departamento de Zootecnia, Universidade de São Paulo, Piracicaba, São Paulo, BrazilSearch for more papers by this authorRaul Machado-Neto, Corresponding Author Raul Machado-Neto Departamento de Zootecnia, Universidade de São Paulo, Piracicaba, São Paulo, BrazilCorrespondence: R Machado-Neto, Laboratorio de Anatomia e Fisiologia Animal, Departmento de Zootecnia, Universidade de São Paulo, Avenida Pádua Dias, 11, 13418-900 Piracicaba, São Paulo, Brazil. E-mail: [email protected]Search for more papers by this author First published: 12 July 2014 https://doi.org/10.1111/are.12515Citations: 8Read the full textAboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Abstract The aim of this study was to evaluate the effect of lyophilized bovine colostrum (LBC) used as partial source of dietary protein on the histological characteristics of the intestinal epithelium of juvenile dourado Salminus brasiliensis. Juveniles were fed diets containing 0%, 10% or 20% of LBC inclusion for either 30 or 60 days. For the histological study, the intestine was divided into three segments, S1, S2 and posterior intestine. In the S1 segment, interaction between treatment and period was observed in the number of goblet cells containing sialomucin, effect of treatment in the total number of goblet cells and effect of period in the number of goblet cells containing sulphomucins (P < 0.05). In the S2 segment, effect of period was observed in the number of goblet cells containing acid, neutral and total mucins, sialomucins and the partial volume of the absorptive mucosa (Vv) (P < 0.05). In the posterior intestine, effect of period was observed in the thickness of muscle layer and number of goblet cells containing sialomucins and sulphomucins (P < 0.05). Considering the aspects studied, the presence of 0%, 10% or 20% of LBC in the diet did not significantly influence the enteric histological characteristics of juvenile dourado during the period of the study. References Abreu V.J.S., Cardoso A.L., Pena H.F.J., Gennari S.M., Sinhorini I. & Damy S.B. (2003) Evaluation of the efficacy of hyperimmune bovine colostrum on Cryptosporidium parvum experimental infection of rodents. Brazilian Journal of Veterinary Research and Animal Science 40, 191– 198. AOAC (2000) Official Methods of Analysis, ( 17th edn). Association of Official Analytical Chemists, Gaithersburg, MD. Arellano J.M., Storch V. & Sarasquete C. (2001) Histological and histochemical observations in the stomach of the Senegal sole, Solea senegalensis. Histology and Histopathology 16, 511– 521. Asanka Gunasekara R.A.Y.S., Casteleyn C., Bossier P. & Broeck W.V. (2012) Comparative stereological study of the digestive tract of Artemia Franciscana nauplii fed yeast differing in cell wall composition. Aquaculture 324–325, 64– 69. Baddeley A., Gundersen H.J.G. & Cruz-Orive L.M. (1986) Estimation of surface area from vertical sections. Journal of Microscopy 42, 259– 276. Bessi R., Pauletti P., D'Arce R.D. & Machado Neto R. (2002) Colostral antibodies absorption in calves. II. Distal small intestine study. Brazilian Journal of Animal Science 31, 2325– 2331. Blum J.W. & Hammon H. (2000) Colostrum effects on the gastrointestinal tract, and on nutritional, endocrine and metabolic parameters in metabolic calves. Livestock Production Science 66, 151– 159. Borghesi R., Dairiki J.K. & Cyrino J.E.P. (2009) Apparent digestibility coefficients of selected feed ingredients for dourado Salminus brasiliensis. Aquaculture Nutrition 15, 453– 458. Bosi G., Shinn A.P., Giari L., Simoni E., Pironi F. & Dezfuli B.S. (2005) Changes in the neuromodulators of the diffuse endocrine system alimentary canal of farmed rainbow trout, Oncorynchus mykiss (Walbaum), naturally infected with Eubothrium crasum (Cestoda). Journal of Fish Disease 28, 703– 711. Cao X.J. & Wang W.M. (2009) Histology and mucin histochemistry of the digestive tract of yellow catfish Pelteobagrus fulvidraco. Journal of Veterinary Medicine Anatomy Histology and Embriology 38, 254– 261. Castro N., Capote J., Álvarez S. & Arguello A. (2005) Effects of lyophilized colostrum and different colostrum feeding regimens on passive transfer of immunoglobulin G in majorera goat kids. Journal of Dairy Science 88, 3650– 3654. Cruz A.L., Pedretti A.C.E. & Fernandez M.N. (2009) Stereologycal estimation of the surface area and oxygen diffusing capacity of the respiratory stomach of the air-breathing armoured catfish Pterygoplichthys anistisi (Teleostei: Loricariidae). Journal of Morphology 270, 601– 614. Dairiki J.K. (2009). Exigência em aminoácidos e farelo de soja na nutrição de juvenis de dourado (Cuvier, 1816), 138 pp. Tese de doutorado. Universidade de São Paulo, Piracicaba, São Pauloy. Delashoub M., Pousty I. & Banan Khojasteh S.S. (2010) Histology of big head carp (Hypophthalmichthys nobilis). Global Veterinaria 5, 302– 306. Deplancke B. & Gaskins E.R. (2001) Microbial modulation of innate defence: goblet cells and the intestinal mucus layer. American Journal of Clinical Nutrition 73, 1131– 1141. Emerson L.S., Greever Walker M. & Witthames P.R. (1990) A stereological method for estimating fish fecundity. Journal of Fish Biology 36, 721– 730. Glencross B.D., Both M. & Allan G.L. (2007) A feed is only as good as its ingredients – a review of ingredient evaluation strategies for aquaculture feeds. Aquaculture Nutrition 13, 17– 34. Hernández D.R., Pérez Gianeselli M. & Domitrovic H.A. (2009) Morphology, histology and histochemistry of the digestive system of south American catfish (Rhandia quelen). International Journal of Morphology 27, 105– 111. Kleessen B., Hartman L. & Blaut M. (2003) Fructans in the diet cause alterations of intestinal mucosal architecture, released mucins and mucosa-associated. British Journal of Nutrition 89, 597– 603. Lima A.L., Pauletti P., Susin I. & Machado-Neto R. (2009) Fluctuation of serum variables in goats and comparative study of antibody absorption in newborn kids using cattle and goat colostrum. Brazilian Journal of Animal Science 38, 2211– 2217. Machado-Neto R., Pontin M.C.F., Nordi W.M., Lima A.L. & Moretti D.B. (2013) Goblet cell mucin distribution in the small intestine of newborn goat kids fed lyophilized bovine colostrum. Livestock Science 157, 125– 131. Makino L.C. (2010) Estrutura, ultraestrutura e histoquímica do aparelho digestório do Prochilodus lineatus. Análise da diversidade da microbiota intestinal de Prochilodus lineatus e Pterygoplichthys anisitsi, 111 pp. Dissertação de mestrado. Universidade Estadual Paulista, Centro de aquicultura da UNESP, Jaboticabal, São Paulo. Marchetti L., Capacchietti M., Sabbieti M.G., Accili D., Materazzi G. & Menghi G. (2006) Histology and carbohydrate histochemistry of the alimentary canal in the rainbow trout Oncorynchus mykiss. Journal of Fish Biology 68, 1808– 1821. Moretti D.B., Kindlein L., Pauletti P. & Machado-Neto R. (2010) IgG absorption by Santa Ines lambs fed Holstein bovine colostrum or Santa Ines ovine colostrum. Animal 4, 933– 937. Moretti D.B., Nordi W.M., Lima A.L., Pauletti P. & Machado-Neto R. (2013) Enterocyte IgG uptake in the small intestine of goat kids during the period of passive immunity acquisition. Small Ruminant Research 114, 182– 187. Nakatami K., Agostinho A.A. & Baumgartner G. (2001) Ovos e larvas de peixes de água doce: desenvolvimento e manual de identificação. UEM, Maringá, Paraná. Nordi W.M., Moretti D.B., Lima A.L., Pauletti P., Susin I. & Machado-Neto R. (2013) Intestinal histology of newborn goat kids fed lyophilized bovine colostrum. Czech Journal of Animal Science 58, 232– 241. Ostazewska T., Dabrowski K., Kwasek K., Verri T., Kamaszewski M., Sliwinski J. & Napora-Rutkowski L. (2011) Effects of various diet formulation (experimental and commercial) on the morphology of the liver and intestine of rainbow trout (Oncorhynchus mykiss) juveniles. Aquaculture Research 42, 1796– 1806. Pandey N.N., Dar A.A., Mondal D.B. & Nagaraja L. (2011) Bovine colostrum: a veterinary nutraceutical. Journal of Veterinary Medicine and Animal Health 3, 31– 35. Pauletti P., Kindlein L., Bagaldo A.R., Rodrigues A.P.O., Delgado E.F., Cyrino J.E.P. & Machado-Neto R. (2007) Growth performance and muscle protein, RNA and DNA content in juveniles of Pseudoplatystoma fasciatum (Teleostei, Pimelodidae) fed lyophilized bovine colostrum. Journal of Dairy Science 90, 89. Pedini V., Scooco P., Radaelli G., Fagioli O. & Ceccarelli P. (2001) Carbohydrate histochemistry of the alimentary canal of the shi drum, Umbrina cirrosa L. Anatomia, Histologia, Embryologia 30, 345– 349. Pirarat N., Pinpimai K., Endo M., Katagiri T., Ponpornpisit A., Chansue N. & Maita M. (2011) Modulation of intestinal morphology and immunity in nile tilapia (Oreochromis niloticus) by lactobacillus rhamnosus CG. Research in Veterinary Science 9, 92– 97. Rocha E., Monteiro R.A.F., Oliveira M.H. & Silva M.W. (2001) The hepatocytes of the brown trout (Salmo truta f. fario): a quantitative study using design-based stereology. Histology Histopathology 16, 423– 437. Rodrigues S.S. & Menin E. (2008) Anatomia do tubo digestivo de Salminus brasiliensis (Cuvier, 1817) (Pisces, Characidae, Salmininae). Biotemas 21, 65– 75. Rodrigues A.P.O., Pauletti P., Kindlein L., Cyrino J.E.P., Delgado E.F. & Machado-Neto R. (2009) Intestinal morphology and histology of the striped catfish Pseudoplatystoma fasciatum (Linnaeus, 1766) fed dry diets. Aquaculture Nutrition 15, 559– 563. Rodrigues A.P.O., Pauletti P., Kindlein L., Cyrino J.E.P., Delgado E.F. & Machado-Neto R. (2010) Intestinal histomorphology in Pseudoplatystoma fasciatum fed bovine colostrum as source of protein and bioactive peptides. Scientia Agricola 67, 524– 530. SAS Institute Inc. (1999) SAS Procedures Guide, Version 8, SAS Institute Inc: Cary, NC. Tibbets I.R. (1997) The distribution and function of mucous cells and their secretions in the alimentary tract of Arrhamphus sclerolepis krefftii. Journal of Fish Biology 50, 809– 820. Torrecillas S., Makol A., Betancour M.B., Montero D., Caballero M.J., Sweetman J. & Izquierdo M. (2013) Enhanced intestinal epithelial barrier health status on European sea bass (Dicentrarchus labrax) fed mannan oligossacharides. Fish and Shellfish Immunology 34, 1485– 1495. Van Ginneken C., Van Meir F. & Weyns A. (2002) Stereological characteristics of pig small intestine during normal development. Digestive Diseases and Sciences 47, 868– 878. Weingartner M. & Zaniboni E.F. (2010) Biologia e cultivo do dourado. In: Espécies nativas para a piscicultura no Brasil, (ed. by B. Baldisseroto & L.C. Gomes), pp. 245– 282. UFSM publishing, Santa Maria, Rio Grande do Sul. Wilson J.M. & Castro L.F.C. (2011) Morphology diversity of the gastrointestinal tract in fishes. In: Fish Physiology: The Multifunctional Gut of Fish, (ed. by A.P. Farrell & C.J. Brauner), pp. 2– 56. Elsevier Inc, Oxford. Wu X.Y., Liu Y.J., Tian L.X., Mai K.-S. & Yang H.-J. (2006) Apparent digestibility coefficients of selected feed ingredients for Yellowfin Seabream, Sparus latus. Journal of the World Aquaculture Society 37, 237– 245. Zeng L.Q., Li F.J., Li X.M., Cao Z.D., Fu S.J. & Zhang Y.G. (2012) The effects of starvation on digestive tract function and structure in juvenile southern catfish (Silurus meriodionalis Chen). Comparative Biochemistry and Physiology – A Molecular and Integrative Physiology 162, 200– 211. Citing Literature Volume47, Issue2February 2016Pages 561-569 ReferencesRelatedInformation
Referência(s)