Published April 29, 2019 | Version v1
Journal article Open

Changes in digestive enzymes activities during the initial ontogeny of wolf cichlid, Parachromis dovii (Perciformes: Cichlidae)

Description

Frías-Quintana, Carlos Alfonso, Álvarez-González, Carlos Alfonso, Guerrero-Zárate, Rocío, Valverde-Chavarría, Silvia, Ulloa-Rojas, Juan B. (2019): Changes in digestive enzymes activities during the initial ontogeny of wolf cichlid, Parachromis dovii (Perciformes: Cichlidae). Neotropical Ichthyology 17 (1): 1-11, DOI: 10.1590/1982-0224-20180161

Files

source.pdf

Files (1.8 MB)

Name Size Download all
md5:739eec3b799ba54a2a0033b467f5cc3c
1.8 MB Preview Download

Linked records

Additional details

Identifiers

LSID
urn:lsid:plazi.org:pub:FF9EEC3BFF9BA54A2A00FFB4FFF5CC3C
URL
http://publication.plazi.org/id/FF9EEC3BFF9BA54A2A00FFB4FFF5CC3C

References

  • Alvarez-Gonzalez CA, Moyano-Lopez FJ, Civera-Cerecedo R, Carrasco-Chavez V, Ortiz-Galindo JL, Nolasco-Soria H, Tovar-Ramirez D, Dumas S. Development of digestive enzyme activity in larvae of spotted sand bass Paralabrax maculatofasciatus II: electrophoretic analysis. Fish Physiol Biochem [serial on the Internet]. 2010; 36(1):29-37. Available from: https://doi.org/10.1007/s10695-008-9276-4
  • Anson ML. The estimation of pepsin, trypsin, papain, and cathepsin with hemoglobin. J Gen Physiol [serial on the Internet]. 1938; 22(1):79-89. Available from:https://www.ncbi.nlm.nih.gov/ pmc/articles/PMC2213732/
  • Baglole CJ, Goff GP, Wright GM. Distribution and ontogeny of digestive enzymes in larval yellowtail and winter flounder. J Fish Biol [serial on the Internet]. 1998; 53(4):767-84. Available from: https://doi.org/10.1111/j.1095-8649.1998.tb01831.x
  • Balon EK. Reflections on some decisive events in the early life of fishes.Trans Am Fish Soc [serial on the Internet]. 1984; 113(2):178-85. Available from: https://doi.org/10.1577/1548- 8659(1984)113<178:ROSDEI>2.0.CO;2
  • Barrera A RE, Paz G CE. Control de alevines de tilapia (Oreochromis niloticus) (Perciforme: Cichlidae) usando guapote lagunero (Parachromis dovii) (Perciforme: Cichlidae) en los estanques de la Universidad Earth. [PhD thesis] Guacimo, Costa Rica: Universidad Earth; 2006.
  • Bergmeyer HU. Phosphatases. In: Bergmeyer HU, editor. Methods of enzymatic analysis. 2nd edition, Vol 2. New York: Academic Press: 1974.
  • Bradford MM. A rapid and sensitive method for the quantization of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem [serial on the Internet]. 1976; 72(1-2):248-25. Available from: https://doi. org/10.1016/0003-2697(76)90527-3
  • Cahu C, Ronnestad I, Grangier V, Zambonino-Infante JL. Expression and activities of pancreatic enzymes in developing sea bass larvae (Dicentrarchus labrax) in relation to intact and hydrolyzed dietary protein; involvement of cholecystokinin. Aquaculture [serial on the Internet]. 2004; 238(1-4):295-308. Available from: https://doi.org/10.1016/j. aquaculture.2004.04.013
  • Cara JB, Moyano FJ, Cardenas S, Fernandez-Diaz C, Yufera M. Assessment of digestive enzyme activities during larval development of white bream (Diplodus sargus). J Fish Biol [serial on the Internet]. 2003; 63(1):48-58. Available from: https://doi.org/10.1046/j.1095-8649.2003.00120.x
  • Chen BN, Qin JG, Kumar MS, Hutchinson WG, Clarke SM. Ontogenetic development of digestive enzymes in yellowtail kingfish Seriola lalandi larvae. Aquaculture [serial on the Internet]. 2006; 260(1-4):264-71. Available from: https://doi. org/10.1016/j.aquaculture.2006.06.021
  • Chong AS, Hashim R, Lee LC, Ali AB. Characterization of protease activity in developing discus Symphysodon aequifasciatus larva. Aquac Res [serial on the Internet]. 2002; 33(9):663-72. Available from: https://doi.org/10.1046/j.1365- 2109.2002.00702.x
  • Comabella Y, Mendoza R, Aguilera C, Carrillo O, Hurtado A, Garcia-Galano T. Digestive enzyme activity during early larval development of the cuban gar Atractosteus tristoechus. Fish Physiol Biochem [serial on the Internet]. 2006; 32:147-57. Available from: https://doi.org/10.1007/s10695-006-0007-4
  • Cui K, Cheng D, Ma Z, Qin JG, Jiang S, Sun D, Ma S. Ontogenetic development of digestive enzymes in larval and juvenile crimson snapper Lutjanus erythopterus (Bloch 1790). Aquac Res [serial on the Internet].2017; 48(8):4533-44. Available from: https://doi.org/10.1111/are.13278
  • Del Mar EG, Largman C, Brodrick J, Geokas M. A sensitive new substrate for chymotrypsin. Anal Biochem [serial on the Internet]. 1979; 99(2):316-20. Available from: https://doi. org/10.1016/S0003-2697(79)80013-5
  • Erlanger BF, Kokowsky N, Cohen W.The preparation and properties of two new chromogenic substrates of trypsin. Arch Biochem Biophys [serial on the Internet]. 1961; 95(2):271-78. Available from: https://doi.org/10.1016/0003-9861(61)90145-X
  • Essed Z, Fernandez I, Alarcon FJ, Moyano FJ. Caracterizacion de la actividad proteasa digestiva de atun rojo Thunnus thynnus (Linnaeus, 1758). Bol Inst Esp Ocean. 2002; 18(1-4):99-107.
  • Evans RP, Parrish CC, Zhu P, Brown JA, Davis PJ. Changes in phospholipase A2 activity and lipid content during early development of Atlantic halibut (Hippoglossus hippoglossus). Mar Biol [serial on the Internet]. 1998; 130(3):369-76. Available from: https://doi.org/10.1007/s002270050257
  • Folk JE, Schirmer EW. The porcine pancreatic carboxypeptidase A system. I. Three forms of the active enzyme. J Biol Chem. 1963; 238(12):3884-94.
  • Garcia-Carreno FL, Dimes LE, Haard NF. Substrate-gel electrophoresis for composition and molecular weight of proteinases or proteinaceous proteinase inhibitors. Anal Biochem [serial on the Internet]. 1993; 214(1):65-69. Available from: https://doi.org/10.1006/abio.1993.1457
  • Gawlicka A, Teh SJ, Hung SSO, Hinton DE, de la Noue J. Histological and histochemical changes in the digestive tract of white sturgeon larvae during ontogeny. Fish Physiol Biochem [serial on the Internet]. 1995; 14(5):357-71. Available from: https://doi.org/10.1007/BF00003374
  • Guerrera MC, De Pasquale F, Muglia U, Caruso G. Digestive enzymatic activity during ontogenetic development in Zebrafish (Danio rerio). J Exp Zool [serial on the Internet]. 2015; 324(8):699-706. Available from: https://doi.org/10.1002/ jez.b.22658
  • Guo H, Li J, Ma Z, Zhang J, Zhen P, Cheng D. Ontogenetic development of digestive enzymes in orange-spotted grouper (Epinephelus coloides, Hamilton, 1822) larvae. Isr J Aquac [serial on the Internet]. 2016; 68:1-12. Available from: http:// hdl.handle.net/10524/54962
  • Hakim Y, Rowland SJ, Guy JA, Mifsud C, Uni Z, Harpaz S. Effects of genetic strain and holding facility on the characteristics of alkaline phosphatase and brush border enzymes in silver perch (Bidyanus bidyanus). Aquac Res [serial on the Internet]. 2007; 38:361-72. Available from: https://doi.org/10.1111/j.1365- 2109.2007.01674.x
  • Hamza N, Mhetli M, Kestemont P. Effects of weaning age and diets on ontogeny of digestive activities and structures of pikeperch (Sander lucioperca) larvae. Fish Physiol Biochem [serial on the Internet]. 2007; 33(2):121-33. Available from: https://doi. org/10.1007/s10695-006-9123-4
  • Hazel JR, Prosser CL. Molecular mechanisms of temperature compensation in poikilotherms. Physiol Rev [serial on the Internet]. 1974; 54(3):620-77. Available from: https://doi. org/10.1152/physrev.1974.54.3.620
  • Hernandez R. Crecimiento de Cichlasoma dovii (Gunther, 1864) (PISCES: Cichlidae) en jaulas a diferentes densidades, alimentado con una dieta formulada. [monograph]. Heredia, Costa Rica: Escuela de Ciencias Biologicas, Universidad Nacional; 1992.
  • Igbokwe EC, Downe AER. Electrophoretic and histochemical comparison of three strains of Aedes aegypti. Comp Biochem Physiol B [serial on the Internet]. 1978; 60(2):131-36.Available from: https://doi.org/10.1016/0305-0491(78)90117-7
  • Jia YD, Meng Z, Liu XF, Gao CR, Niu HX, Lei JL. Activities of phosphatase in eggs and ovarian fluids and its correlation with the fertilization rate during the reproductive cycle of turbot (Scophthalmus maximus). Haiyang Yu Huzhao. 2013; 44(6):1530-35.
  • Jimenez-Martinez LD, Alvarez-Gonzalez CA, Tovar-Ramirez D, Gaxiola G, Sanchez-ZamoraA,Moyano FJ,Alarcon FJ,Marquez- Couturier G, Gisbert E, Contreras-Sanchez WM, Perales-Garcia N, Arias-Rodriguez L, Indy JR, Paramo-Delgadillo S, Palomino- Albarran IG. Digestive enzyme activities during early ontogeny in Common snook (Centropomus undecimalis). Fish Physiol Biochem [serial on the Internet]. 2012; 38(2):441-54. Available from: https://doi.org/10.1007/s10695-011-9525-9
  • Kendall AW, Ahlstrom EH, Moser HG. Early life history stages of fishes and their characters. In: Moser HG, Richards WJ, Cohen DM, Fahay MP, Kendall AW Jr., Richardson SL, editors. Ontogeny and systematics of fishes. Lawrense: Allen Press; 1984. p.11-24.
  • Khosravi-Bakhtiarvandi N, Abedian-Kenari AM. Changes of digestive enzymes activity in Caspian Kutum (Rutilus frisii kutum) during larval developmental stages. Iran J Fish Sci [serial on the Internet]. 2015; 14(1):158-75. Available from: http://aquaticcommons.org/id/eprint/22764
  • Kolkovski S. Digestive enzymes in fish larvae and juvenilesimplications and applications to formulated diets. Aquaculture [serial on the Internet]. 2001; 200(1-2):181-201. Available from: https://doi.org/10.1016/S0044-8486(01)00700-1
  • Kumar S, Garcia-Carreno FI, Chakrabarti R, Toro MAN, Cordova- Murueta JD. Digestive proteases of three carps Catla catla, Labeo rohita and Hypophthalmichthys molitrix: partial characterization and protein hydrolysis efficiency. Aquac Nutr [serial on the Internet]. 2007; 13(5):381-88. Available from: https://doi.org/10.1111/j.1365-2095.2007.00488.x
  • Laemmli UK. Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature [serial on the Internet]. 1970; 227:680-85. Available from: https://doi. org/10.1038/227680a0
  • Lazo JP, Mendoza R, Holt GJ, Aguilera C, Arnold CR. Characterization of digestive enzymes during larval development of red drum (Sciaenops ocellatus). Aquaculture [serial on the Internet]. 2007; 265(1-4):194-205. Available from: https://doi.org/10.1016/j.aquaculture.2007.01.043
  • Lopez-Lopez S, Nolasco H, Vega-Villasante F. Characterization of digestive gland esterase-lipase activity of juvenile redclaw crayfish Cherax quadricarinatus. Comp Biochem Physiol B [serial on the Internet]. 2008; 135(2):337-47. Available from: https://doi.org/10.1016/S1096-4959(03)00087-3
  • Lopez-Ramirez G, Cuenca-Soria CA, Alvarez-Gonzalez CA, Tovar- Ramirez D, Ortiz-Galindo JL, Perales-Garcia N, Marquez- Couturier G, Arias-Rodriguez L, Indy JR, Contreras-Sanchez WM, Gisbert E, Moyano FJ. Development of digestive enzymes in larvae of Mayan cichlid Cichlasoma urophthalmus. Fish Physiol Biochem [serial on the Internet]. 2011; 37(1):197-208. Available from: https://doi.org/10.1007/s10695-010-9431-6
  • Luna-Figueroa J, Figueroa-Torres J. Reproduccion y crecimiento en cautiverio de la mojarra criolla Cichlasoma istlanum (Pisces: Cichlidae). Rev AquaTIC. 2000; 10:1-13.
  • Ma Z, Zheng P, Guo H, Zhang N, Wang L, Jiang S, Qin JG, Zhang D. Effect of weaning time on the performance of Trachinotus ovatus (Linnaeus 1758) larvae. Aquac Nutr [serial on the Internet]. 2015; 21(5):670-78. Available from: https://doi. org/10.1111/anu.12183
  • Maroux S, Louvard D, Barath J. The aminopeptidase from hogintestinal brush border. Acta Biochem Biophysiol [serial on the Internet]. 1973; 321(1):282-95. Available from: https://doi. org/10.1016/0005-2744(73)90083-1
  • Mata-Sotres JA, Moyano FJ, Martinez-Rodriguez G, Yufera M. Daily rhythms of digestive enzyme activity and gene expression in gilthead seabream (Sparus aurata) during ontogeny. Comp Biochem Physiol A [serial on the Internet]. 2016; 197:43-51. Available from:https://doi.org/10.1016/j.cbpa.2016.03.010
  • Mitra A, Mukhopadhayay PK, Homechaudhuri S. Profile of digestive enzymes activity during early development of Featherback Chitala chitala (Hamilton, 1822). Procc Zool Soc [serial on the Internet]. 2017; 70(2):141-49. Available from: https://doi.org/10.1007/s12595-016-0169-8
  • Moguel-Hernandez I, Pena R, Nolasco-Soria H, Duma S, Zavala- Leal I. Development of digestive enzyme activity in spotted rose snapper, Lutjanus guttatus (Steindachner, 1869) larvae. Fish Physiol Biochem [serial on the Internet]. 2014; 40(3):839-48. Available from: https://doi.org/10.1007/s10695-013-9890-7
  • Moyano FJ. Bioquimica digestiva en especies acuicultivadas: aplicaciones en nutricion. In: Cruz SE, Ricque MR, Tapia SM, Nieto LMG, Villarreal CDA, Puello CAC, Garcia OA, editors. Avances en Nutricion Acuicola VIII. Nuevo Leon, Monterrey: VIII Symposium International de Nutricion Acuicola, Universidad Autonoma de Nuevo Leon; 2006. p.396-409.
  • Moyano FJ, Diaz M, Alarcon FJ, Sarasquete MC. Characterization of digestive enzyme activity during larval development of gilthead seabream (Sparus aurata). Fish Physiol Biochem [serial on the Internet]. 1996; 15(2):121-30. Available from: https://doi.org/10.1007/BF01875591
  • Nazemroaya S, Yazdanparast R, Nematollahi MA, Farahmand H, Mirzadeh Q. Ontogenetic development of digestive enzymes in Sobaity sea bream Sparidentex hasta larvae under culture condition. Aquaculture [serial on the Internet]. 2015; 448(1):545-51. Available from: https://doi.org/10.1016/j. aquaculture.2015.06.038
  • Nonell JG, Rojas JU. Growth and feed utilization of wolf cichlid (Cichlasoma dovii) larvae fed Artemia nauplii. Rev Biol Trop. 1995; 43(1-3):277-82.
  • Pena R, Dumas S, Contreras-Olguin M. Organogenesis of the digestive system in Pacific red snapper (Lutjanus peru) larvae. Aquac Res [serial on the Internet]. 2017; 48(4):1561-75. Available from: https://doi.org/10.1111/are.12991
  • Pujante IM, Diaz-Lopez M, Mancera JM, Moyano FJ. Characterization of digestive enzymes protease and alpha- amylase activities in the thick-lipped grey mullet (Chelon labrosus, Risso 1827). Aquac Res [serial on the Internet]. 2017; 48(2):367-76. Available from:https://doi.org/10.1111/ are.13038
  • Quiros-Orlich JR, Valverde Chavarria S, Ulloa Rojas JB. The proteolytic digestive activity and grow during ontogeny of Parachromis dovii larvae (Pisces: Cichlidae) using two feeding protocols. Fish Physiol Biochem [serial on the Internet]. 2014; 40(4):1253-61. Available from: https://doi.org/10.1007/ s10695-014-9920-0
  • Ribeiro L, Zambonino-Infante JL, Cahu C, Dinis MT. Development of digestive enzymes in larvae of Solea senegalensis Kaup, 1858. Aquaculture [serial on the Internet]. 1999; 170(1- 4):465-73. Available from: https://doi.org/10.1016/S0044- 8486(99)00180-5
  • Ribeiro L, Zambonino-Infante JL, Cahu C, Dinis MT. Digestive enzymes profile of Solea senegalensis post larvae fed Artemia and a compound diet. Fish Physiol Biochem [serial on the Internet]. 2002; 27(1-2):61-69. Available from: https://doi. org/10.1023/B:FISH.0000021817.98363.47
  • Robyt JF, Whelan WJ. The a-amylases. In: Radley JA, editor. Starch and its derivates. 4th edition. London: Chapman and Hall; 1968. p.430-476.
  • Saenz-de Rodriganez M, de Ona C, Alarcon FJ, Martinez MI, Diaz M, Moyano FJ. Crecimiento y enzimas digestivas de larvas de Solea senegalensis Kaup, 1858 alimentadas con piensos comerciales. Bol Inst Espanol Ocean. 2005; 21(1-4):105-13.
  • Santos JF, Soares KLS, Assis CRD, Guerra CAM, Lemos D, Carvalho Junior LB, Bezerra RS. Digestive enzyme activity in the intestine of Nile tilapia (Oreochromis niloticus L.) under pond and cage farming systems. Fish Physiol Biochem [serial on the Internet]. 2016; 42(5):1259-74. Available from:https:// doi.org/10.1007/s10695-016-0215-5
  • Sharma P, Akhtar MS, Singh AK, Das P, Sarma D. Histomorphological changes in digestive tract of golden mahseer (Tor putitora) during different developmental stages. Fish Physiol Biochem [serial on the Internet].2016; 42(6):1681- 98. Available from:https://doi.org/10.1007/s10695-016-0249-8
  • Sharpe PJH, DeMichele DW. Reaction kinetics of poikilotherm development. J Theor Biol [serial on the Internet]. 1977; 64(4):649-70. Available from: https://doi.org/10.1016/0022- 5193(77)90265-X
  • Shen F, Li C, Teng T, Chen Y, Guo J, Zhu C, Ling Q. Ontogenetic development of digestive tract and digestive enzymatic activities in Squaliobarbus curriculus larvae. Aquac Res [serial on the Internet]. 2018; 49(9):3158-66. Available from: https:// doi.org/10.1111/are.13779
  • Song Z, Wang J, Qiao H, Li P, Zhang L, Xia B. Ontogenetic changes in digestive enzyme activities and the amino acid profile of starry flounder Platichthys stellatus. Chinese J Ocean Limnol [serial on the Internet]. 2016; 34(5):1013-24. Available from: https://doi.org/10.1007/s00343-016-5031-3
  • Suzer C, Saka S, Firat K. Effects of illumination on early life development and digestive enzyme activities in common Pandora Pagellus erythrinus L. larvae. Aquaculture [serial on the Internet]. 2006; 260(1-4):86-93. Available from:https://doi. org/10.1016/j.aquaculture.2006.06.025
  • Tengjaroenkul B, Smith BJ, Smith SA, Chatreewongsin U. Ontogenic development of the intestinal enzymes of cultured Nile tilapia, (Oreochromis niloticus L). Aquaculture [serial on the Internet]. 2002; 211(1-4):241-51. Available from: https:// doi.org/10.1016/S0044-8486(01)00888-2
  • Toledo-Solis FJ, Uscanga-Martinez A, Guerrero-Zarate R, Marquez-Couturier G, Martinez-Garcia R, Camarillo-Coop S, Perales-Garcia N, Rodriguez-Valencia W, Gomez-Gomez MA, Alvarez-Gonzalez CA. Changes on digestive enzymes during initial ontogeny in the three-spot cichlid Cichlasoma trimaculatum. Fish Physiol Biochem [serial on the Internet]. 2015; 41(1):267-79. Available from:https://doi.org/10.1007/ s10695-014-0023-8
  • Tong X, Yang X, Bao C, Tang X, Wang J, Zhou Y, Tang M. Ontogeny of the digestive enzymes, thyroid hormones and cortisol in developing embryos and yolk-sac larvae of turbot (Scophthalmus maximus L.). Aquaculture [serial on the Internet]. 2017; 479:704-11. Available from: https://doi. org/10.1016/j.aquaculture.2017.07.004
  • Trevino L, Alvarez-Gonzalez CA, Perales-Garcia N,Arevalo-Galan L, Uscanga-Martinez A, Marquez-Couturier G, Fernandez I, Gisbert E. A histological study of the organogenesis of the digestive system in bay snook Petenia splendida Gunter, 1862 from hatching to the juvenile stage. J Applied Ichthyol [serial on the Internet]. 2011; 27(1):73-82. Available from: https://doi. org/10.1111/j.1439-0426.2010.01608.x
  • Uscanga-Martinez A, Moyano FJ, Alvarez-Gonzalez CA. Assessment of enzymatic efficiency on protein digestion in the tilapia Oreochromis niloticus. Fish Physiol Biochem [serial on the Internet]. 2010; 36(4):1079-85. Available from: https://doi. org/10.1007/s10695-010-9385-8
  • Uscanga-Martinez A, Perales-Garcia N, Alvarez-Gonzalez CA, Moyano FJ, Tovar-Ramirez D, Gisbert E, Marquez-Couturier G, Contreras-Sanchez W, Arias-Rodriguez L, Indy JR. Changes in digestive enzyme activity during initial ontogeny of bay snook Petenia splendida. Fish Physiol Biochem [serial on the Internet]. 2011; 37(3):667-80. Available from: https:// doi.org/10.1007/s10695-011-9467-2
  • Valverde-Chavarria S, Alvarez-Gonzalez CA, Ulloa-Rojas JB, Frias-Quintana CA, Guerrero-Zarate R, Quiros-Orlich JR, Brais-Medina M, Calvo-Elizondo E, Alvarado-Guzman L. Ontogenia del sistema digestivo del guapote lagunero Parachromis dovii durante el periodo larval y seleccion de ingredientes para su alimentacion. In: Cruz-Suarez LE, Ricque- Marie D, Tapia-Salazar M, Nieto-Lopez MG, Villarreal- Cavazos DA, Gamboa-Delgado J, Alvarez-Gonzalez CA, editors. Contribuciones recientes en alimentacion y nutricion acuicola. Monterrey, Nuevo Leon, Mexico: XII Simposium Internacional de Nutricion Acuicola, Universidad Autonoma de Nuevo Leon; 2013. p.318-53.
  • Versaw WK, Cuppett SL, Winters DD, Williams LE. An improved colorimetric assay for bacterial lipase in nonfat dry milk. J Food Sci [serial on the Internet]. 1989; 54(6):1557-58. Available from:https://doi.org/10.1111/j.1365-2621.1989.tb05159.x
  • Walter HE. Proteinases: methods with hemoglobin, casein and azocoll as substrates. In: Bergmeyern HU, editor. Methods of enzymatic analysis. Vol.V. Germany:Verlag Chemic Weinham; 1984. p.270-274.
  • Xiao-Qiang G, Liu ZF, Guan CT, Huang B, Lei JL, Li J, Guo ZL, Wang YH, Hong L. Developmental changes in digestive enzyme activity in American shad, Alosa sapidissima, during early ontogeny. Fish Physiol Biochem [serial on the Internet]. 2017; 43(2):397-409.
  • Zambonino-Infante JL, Cahu C. Development and response to a diet change of some digestive enzymes in sea bass (Dicentrarchus labrax) larvae. Fish Physiol Biochem [serial on the Internet]. 1994; 12(5):399-408. Available from: https://doi.org/10.1007/ BF00004304
  • Zambonino-Infante JL, Cahu CL. Ontogeny of the gastrointestinal tract of marine fish larvae. Comp Biochem Physiol C [serial on the Internet]. 2001; 130(4):477-87. Available from:https://doi. org/10.1016/S1532-0456(01)00274-5
  • Zambonino-Infante JL, Cahu CL. Dietary modulation of some digestive enzymes and metabolic processes in developing marine fish: applications to diet formulation. Aquaculture [serial on the Internet]. 2007; 268(1-4):98-105. Available from: https://doi.org/10.1016/j.aquaculture.2007.04.032
  • Zhao ZX, Song CY, Xie J, Ge XP, Liu B, Xia SL, Yang S, Wang Q, Zhu SH. Effects of fish meal replacement by soybean peptide on growth performance, digestive enzyme activities, and immune responses of yellow catfish Pelteobagrus fulvidraco. Fish Sci [serial on the Internet]. 2016; 82(4):665-73. Available from: https://doi.org/10.1007/s12562-016-0996-6