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Effect of soybean meal replacement with corn gluten meal on the survival, biochemical and metabolic responses, and disease resistance of Pacific white shrimp (Litopenaeus vannamei)


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Adamidou S., Nengas I., Henry M., Ioakei Midoy N., Rigos G., Bell G.J., Jauncey K. (2011). Effects of dietary inclusion of peas, chickpeas and faba beans on growth, feed utilization and health of gilthead seabream (Sparus aurata). Aquacult. Nutr., 17: 288–296. Search in Google Scholar

Aguilar Diaz de Leon J., Borges C.R. (2020). Evaluation of oxidative stress in biological samples using the thiobarbituric acid reactive substances assay. J. Vis. Exp., 159: 61122. Search in Google Scholar

Alatwinusa Yohana M., Gyan W.R., Yang Q., Tan B., Lin H., Yi Y., Chi S. (2023). Dietary L-carnitine supplementation for heat stressed juvenile pearl gentian grouper (Epinephelus lanceolatus (Epinephelus ♂× Epinephelus fuscoguttatus♀): Effects on the antioxidant enzyme, survival, and gene expression. Aquacut. Rep., 29: 101524. Search in Google Scholar

Alfaro A.C., Young T. (2018). Showcasing metabolomic applications in aquaculture: a review. Rev. Aquac. 10: 135–152. Search in Google Scholar

Alvarez J.S., Hernández-Llamas A., Galindo J., Fraga I., García T., Villarreal H. (2007). Substitution of fishmeal with soybean meal in practical diets for juvenile white shrimp Litopenaeus schmitti. Aquacult. Res., 38: 689–695. Search in Google Scholar

AOAC (Association of Official Analytical Chemists) (2000). Official methods of analysis. Search in Google Scholar

AOAC, Arlington, Virginia. Bae J., Hamidoghli A., Djaballah M.S., Maamri S., Hamdi A., Souffi I., Farris N.W., Bai S.C. (2020). Effects of three different dietary plant protein sources as fishmeal replacers in juvenile whiteleg shrimp, Litopenaeus vannamei. Fish. Aquat. Sci., 23: e1–6. Search in Google Scholar

Bai N., Gu M., Liu M., Jia Q., Pan S., Zhang Z. (2019). Corn gluten meal induces enteritis and decreases intestinal immunity and antioxidant capacity in turbot (Scophthalmus maximus) at high supplementation levels. Plos One, 14: 1–18. Search in Google Scholar

Bulut M., Tekinay A.A., Güroy D., Ergün S., Bilen S. (2009). Farina di nocciola nell’alimentazione della trota iridea (Oncorhynchus mykiss) allevata in acqua marina: Effetti sulle performance di accrescimento e sulla composizione corporea (in Italian). Ital. J. Anim. Sci., 8: 625–632. Search in Google Scholar

Burgents J.E., Burnett L.E., Stabb E.V., Burnett K.G. (2005). Localization and bacteriostasis of Vibrio introduced into the Pacific white shrimp, Litopenaeus vannamei. Dev. Comp. Immunol., 29: 681–691. Search in Google Scholar

Cao Y., Gao Q., Li X., Zhou Y., Dong S., Wang Y., Dai Z. (2022). Integrated analysis of metabolomics and transcriptomics for assessing effects of fish meal and fish oil replacement on the metabolism of rainbow trout (Oncorhynchus mykiss). Front. Mar Sci., 9: 1–17. Search in Google Scholar

Chen G., Liu B., Chen J., Liu H., Tan B., Dong X., Yang Q., Chi S., Zhang S., Yao M. (2022). Supplementing sulfate-based alginate polysaccharide improves Pacific white shrimp (Litopenaeus vannamei) fed fishmeal replacement with cottonseed protein concentrate: effects on growth, intestinal health, and disease resistance. Aquacult. Nutr., 7132362: 1–21. Search in Google Scholar

Cheng K., Müllner E., Moazzami A.A., Carlberg H., Brännäs E., Pickova J. (2017). metabolomics approach to evaluate a Baltic sea sourced diet for cultured arctic char (Salvelinus alpinus). J. Agricult. F. Chemist., 65: 5083–5090. Search in Google Scholar

Cornejo-Granados F., Lopez-Zavala A.A., Gallardo-Becerra L., Mendoza-Vargas A., Sánchez F., Vichido R., Brieba L.G., Viana M.T., Sotelo-Mundo R.R., Ochoa-Leyva A. (2017). Microbiome of Pacific whiteleg shrimp reveals differential bacterial community composition between Wild, Aquacultured and AHPND/EMS outbreak conditions. Sci. Rep., 7: 11783. Search in Google Scholar

Dilixiati A., Zhang W., Wang Q., Yang J. (2014). Effect of nitrite exposure on metabolic response in the freshwater prawn Macrobrachium nipponense. Cent. Europ. J. Biol., 9: 86–91. Search in Google Scholar

Duan Y., Zhang Y., Zheng X., Wang Y., Li H., Liu Q., Zhang J. (2017). Effect of dietary poly-β-hydroxybutyrate (PHB) on growth performance, intestinal health status and body composition of Pacific white shrimp Litopenaeus vannamei (Boone, 1931). Fish Shellfish Immunol., 60: 520–528. Search in Google Scholar

Duan Y., Wang Y., Dong H., Ding X., Liu Q., Li H. (2018). Changes in the intestine microbial, digestive, and immune-related genes of Litopenaeus vannamei in response to dietary probiotic Clostridium butyricum supplementation. Front. Microbiol., 9: 2191. Search in Google Scholar

Enes P., Panserat S., Kaushik S., Oliva-Teles A. (2009). Nutritional regulation of hepatic glucose metabolism in fish. Fish Physiol. Biochem., 35: 519–539. Search in Google Scholar

Erlanger B., Kokowsky N., Cohen W. (1961). The preparation and properties of two new chromogenic substrates of trypsin. Arch. Biochem. Biophys., 95: 271–278. Search in Google Scholar

Eryalcin K.M. (2018). Effects of different commercial feeds and enrichments on biochemical composition and fatty acid profile of rotifer (Brachionus plicatilis, Müller 1786) and Artemia franciscana. Turk. J. Fish. Aquat. Sci., 18: 81–90. Search in Google Scholar

Fang L., Wang Q., Guo X., Pan X., Li X. (2021). Effects of dietary sodium butyrate on growth performance, antioxidant capacity, intestinal histomorphology and immune response in juvenile Pengze crucian carp (Carassius auratus Pengze). Aquacult. Rep., 21: 100828. Search in Google Scholar

Feng Z., Ding C., Li W., Wang D., Cui D. (2020). Applications of metabolomics in the research of soybean plant under abiotic stress. Food Chem., 310: 125914. Search in Google Scholar

Geay F., Ferraresso S., Zambonino-Infante J.L., Bargelloni L., Quentel C., Vandeputte M., Kaushik S., Cahu C.L., Mazurais D. (2011). Effects of the total replacement of fish-based diet with plant-based diet on the hepatic transcriptome of two European sea bass (Dicentrarchus labrax) half-sibfamilies showing different growth rates with the plant-based diet. BMC Genom., 12: 1–18. Search in Google Scholar

Glencross B., Grobler T., Huyben D. (2021). Digestible nutrient and energy values of corn and wheat glutens fed to Atlantic salmon (Salmo salar) are affected by feed processing method. Aquaculture, 544: 737133. Search in Google Scholar

Guo H., Huang L., Hu S., Chen C., Huang X., Liu W., Wang S., Zhu Y., Zhao Y., Zhang D. (2020). Effects of carbon/nitrogen ratio on growth, intestinal microbiota and metabolome of shrimp (Litopenaeus vannamei). Front. Microbiol., 11: 1–13. Search in Google Scholar

Gyan W.R., Yang Q., Tan B., Jan S.S., Jiang L., Chi S., Dong X., Liu H., Shuang Z. (2020). Effects of antimicrobial peptides on growth, feed utilization, serum biochemical indices and disease resistance of juvenile shrimp, Litopenaeus vannamei. Aquacult. Res., 17: 1–10. Search in Google Scholar

Gyan W.R., Yang Q., Tan B., Dong X., Chi S., Liu H., Zhang S. (2022). Effects of replacing fish meal with distillers’ dried grains with solubles on the growth performance and gut microbiota in juvenile Pacific whiteleg shrimp Litopenaeus vannamei. North Am. J. Aquacult., 84: 191–205. Search in Google Scholar

Hajirezaee S., Khanjani M.H. (2021). Evaluation of dietary inclusion of Bunium persicum, Bunium persicum essential oil on growth, immune components, immune-related gene expressions and resistance to Aeromonas hydrophila, in rainbow trout, Oncorhynchus mykiss. Aquacult. Res., 52: 4711–4723. Search in Google Scholar

Hajirezaee S., Khanjani M.H. (2023). Rosmarinic acid alone or in combination with Lactobacillus rhamnosus ameliorated ammonia stress in the rainbow trout, Oncorhynchus mykiss: growth, immunity, antioxidant defense and liver functions. Ann. Anim. Sci., 23: 819–831. Search in Google Scholar

Hamidoghli A., Won S., Farris N.W., Bae J., Choi W., Yun H., Bai S.C. (2020). Solid state fermented plant protein sources as fish meal replacers in whiteleg shrimp Litopaeneus vannamei. Anim Feed Sci. Technol., 264: 114474. Search in Google Scholar

He G., Chen X., Zeng Q., Zhu W., Chen Z., Tan B., Xie S. (2022). Effects of compound feed attractants on growth performance, feed utilization, intestinal histology, protein synthesis, and immune response of white shrimp (Litopenaeus vannamei). Animals (Basel), 12: 2550. Search in Google Scholar

Herman E.M., Schmidt M.A. (2016). The potential for engineering enhanced functional-feed soybeans for sustainable aquaculture feed. Front. Plant Sci., 7: 440. Search in Google Scholar

Hernández C., Lizárraga-Velázquez C.E., Contreras-Rojas D., Sánchez-Gutiérrez E.Y., Martínez-Montaño E., Ibarra-Castro L., Peña-Marín E.S. (2021). Fish meal replacement by corn gluten in feeds for juvenile spotted rose snapper (Lutjanus guttatus): Effect on growth performance, feed efficiency, hematological parameters, protease activity, body composition, and nutrient digestibility. Aquaculture, 531: 735896. Search in Google Scholar

Hjorth M., Galigniana N.M., Ween O., Ulven S.M., Holven K.B., Dalen K.T., Sæther T. (2022). Postprandial effects of salmon fishmeal and whey on metabolic markers in serum and gene expression in liver cells. Nutrition, 14: 14081593. Search in Google Scholar

Huang Z., Aweya J.J., Zhu C., Tran N.T., Hong Y., Li S., Yao D., Zhang Y. (2020 a). Modulation of crustacean innate immune response by amino acids and their metabolites: inferences from other species. Front. Immunol., 11: 1–15. Search in Google Scholar

Huang M., Lin H., Xu C., Yu Q., Wang X., Qin J.G., Chen L., Han F., Li E. (2020 b). Growth, metabolite, antioxidative capacity, transcriptome, and the metabolome response to dietary choline chloride in Pacific white shrimp Litopenaeus vannamei. Animals (Basel), 10: 2246. Search in Google Scholar

Imran M., Shahid M.Q., Pasha T.N., Haque M.N. (2018). Effects of replacing soybean meal with corn gluten meal on milk production and nitrogen efficiency in Holstein cows. South Afr. J. Anim. Sci., 48: 2221–4062. Search in Google Scholar

Irato P., Santovito G. (2021). Enzymatic and non-enzymatic molecules with antioxidant function. Antioxidants (Basel), 10: 10040579. Search in Google Scholar

Jamshidizadeh S., Amrollahi N. (2019). Response of Pacific white leg shrimp (Litopenaeus vannamei ) on exposure to aflatoxin in feed. Aquacult. Res., 50: 1973–1984. Search in Google Scholar

Jin Y., Tian L., Xie S., Guo D., Yang H., Liang G., Liu Y. (2015). Interactions between dietary protein levels, growth performance, feed utilization, gene expression and metabolic products in juvenile grass carp (Ctenopharyngodon idella). Aquaculture, 437: 75–83. Search in Google Scholar

Karim A., Shoaib M. (2019). Influence of corn gluten meal on growth parameters and carcass composition of Indian major carps (Catla catla, Labeo rohita and Cirhinus mrigala). Turk. J. Fish. Aquat. Sci., 19: 1–6. Search in Google Scholar

Khanjani M.H., Sajjadi M., Alizadeh M., Sourinejad I. (2016). Study on nursery growth performance of Pacific white shrimp (Litopenaeus vannamei Boone, 1931) under different feeding levels in zero water exchange system. Iran. J. Fish. Sci., 15: 1465–1484. Search in Google Scholar

Khanjani M.H., Sharifinia M., Ghaedi G. (2022 a). β-glucan as a promising food additive and immunostimulant in aquaculture industry. Ann. Anim. Sci., 22: 817–827. Search in Google Scholar

Khanjani M.H., Ghaedi G., Sharifinia M. (2022 b). Effects of diets containing β-glucan on survival, growth performance, hematological, immunity and biochemical parameters of rainbow trout (Oncorhynchus mykiss) fingerlings. Aquac. Res., 53: 1842–1850. Search in Google Scholar

Khanjani M.H., Torfi Mozanzade M., Sharifinia M., Emerenciano M.G.C. (2023). Biofloc: a sustainable dietary supplement, nutritional value and functional properties. Aquaculture, 562: 738757. Search in Google Scholar

Kmmari S., Rathlavath S., Pillai D., Rajesh G. (2018). Hepatopancreatic microsporidiasis (HPM) in shrimp culture: a review. Int. J. Curr. Microbiol. Appl. Sci., 7: 3208–3215. Search in Google Scholar

Kumar V., Sinha A.K., Romano N., Allen K.M., Bowman B.A., Thompson K.R., Tidwell J.H., Kumar V., Sinha A.K., Romano N., Allen K.M., Bowman A., Thompson K.R., Metabolism J.H. T., Rol N. (2018). Metabolism and nutritive role of cholesterol in the growth, gonadal development, and reproduction of crustaceans. Rev. Fish. Sci. Aquacult., 8249: 1429384. Search in Google Scholar

Lech G.P., Reigh R.C. (2012). Plant products affect growth and digestive efficiency of cultured Florida pompano (Trachinotus carolinus) fed compounded diets. PLos One, 7: 0034981. Search in Google Scholar

Li H., Tian X., Dong S. (2019). Growth performance, non-specific immunity, intestinal histology and disease resistance of Litopenaeus vannamei fed on a diet supplemented with live cells of Clostridium butyricum. Aquaculture, 498: 470–481. Search in Google Scholar

Lin H., He S., Tan B., Zhang X., Lin Y., Yang Q. (2022). Effect of rice protein meal replacement of fish meal on growth, anti-oxidation capacity, and non-specific immunity for juvenile shrimp Litopenaeus vannamei. Animals, 12: 12243579. Search in Google Scholar

Liu H., Yang Z., Huang Y., Yang S., Huang Y., Cai S., Jian J. (2021). Dietary resveratrol attenuates oxidative stress in Pacific whiteleg shrimp, Litopenaeus vannamei, in response to ammonia stress. Isr. J. Aquacult.-Bamid, 73: 1–10. Search in Google Scholar

Low C.F., Rozaini M.Z.H., Musa N., Syarul Nataqain B. (2017). Current knowledge of metabolomic approach in infectious fish disease studies. J. Fish Dis., 40: 1267–1277. Search in Google Scholar

Lowry O.H., Rosebrough N.J., Farr A.L., Randall R.J. (1951). Protein measurement with the Folin phenol reagent. J. Biol. Chem., 193: 265–275. Search in Google Scholar

Makaras T., Razumienė J., Gurevičienė V., Šakinytė I., Stankevičiūtė M., Kazlauskienė N. (2020). A new approach of stress evaluation in fish using β-d-glucose measurement in fish holding-water. Ecol. Indicat., 109: 105829. Search in Google Scholar

Manan H., Zhong J.M.H., Othman F., Ikhwanuddin M. (2015). Histopathology of the hepatopancreas of pacific white shrimp, Penaeus vannamei from none early mortality syndrome (EMS) shrimp ponds. J. Fish Aquat. Sci., 10: 562–568. Search in Google Scholar

Martínez-Porchas M., Martínez-Córdova L.R., Ramos-Enriquez R. (2009). Cortisol and glucose: Reliable indicators of fish stress? Panam J. Aquat. Sci., 4: 158–178. Search in Google Scholar

Mekuchi M., Sakata K., Yamaguchi T., Koiso M., Kikuchi J. (2017). Trans-omics approaches used to characterise fish nutritional biorhythms in leopard coral grouper (Plectropomus leopardus). Sci. Rep., 7: 1–7. Search in Google Scholar

Mendoza-Porras O., Broadbent J.A., Beale D.J., Escobar-Correas S.M., Osborne S.A., Simon C.J., Wade N.M. (2023). Postprandial response in hepatopancreas and haemolymph of Penaeus monodon fed different diets. Omics insights into glycoconjugate metabolism, energy utilisation, chitin biosynthesis, immune function, and autophagy. Comp. Biochem. Physiol. Genom. Prot., 101073. Search in Google Scholar

Molina-Poveda C., Lucas M., Jover M. (2015). Utilization of corn gluten meal as a protein source in the diet of white shrimp Litopenaeus vannamei. Aquacult. Nutr., 21: 824–834. Search in Google Scholar

Murashita K., Matsunari H., Furuita H., Rønnestad I., Oku H., Yamamoto T. (2018). Effects of dietary soybean meal on the digestive physiology of red seabream Pagrus major. Aquaculture, 493: 219–228. Search in Google Scholar

Nandakumar S., Ambasankar K., Ali S.S.R., Syamadayal J., Vasagam K. (2017). Replacement of fish meal with corn gluten meal in feeds for Asian seabass (Lates calcarifer). Aquacult. Int., 25: 1495–1505. Search in Google Scholar

Natalia Y., Hashim R., Ali A., Chong A. (2004). Characterization of digestive enzymes in a carnivorous ornamental fish, the Asian bony tongue Scleropages formosus (Osteoglossidae). Aquaculture, 233: 305–320. Search in Google Scholar

Ng W.K., Lim C.L., Romano N., Kua B.C. (2017). Dietary short-chain organic acids enhanced resistance to bacterial infection and hepatopancreatic structural integrity of the giant freshwater prawn, Macrobrachium rosenbergii. Int. Aquat. Res., 9: 293–302. Search in Google Scholar

Oyanagui Y. (1984). Reevaluation of assay methods and establishment of kit for superoxide dismutase activity. Anal. Biochem., 142: 290–296. Search in Google Scholar

Peng K., Chen X., Lu H., Zhao J., Chen Y., Li C., Li H., Huang W. (2022). Effect of dietary soybean meal on growth performance, apparent digestibility, intestinal digestive enzyme activity, and muscle growth–related gene expression of Litopenaeus vannamei. Front. Mar. Sci., 9: 1–9. Search in Google Scholar

Pimentel M.S., Faleiro F., Diniz M., Machado J., Pous P. (2015). Oxidative stress and digestive enzyme activity of flatfish larvae in a changing ocean. PLoS One, 10(7):e0134082. Search in Google Scholar

Qi C., Wang L., Liu M., Jiang K., Wang M., Zhao W., Wang B. (2017). Transcriptomic and morphological analyses of Litopenaeus vannamei intestinal barrier in response to Vibrio paraheamolyticus infection reveals immune response signatures and structural disruption. Fish Shellfish. Immunol., 70: 437–450. Search in Google Scholar

Ray G.W., Liang D., Yang Q., Tan B., Dong X., Chi S., Liu H., Zhang S., Rimei L. (2020). Effects of replacing fishmeal with dietary soybean protein concentrate (SPC) on growth, serum biochemical indices, and antioxidative functions for juvenile shrimp Litopenaeus vannamei. Aquaculture, 516: 734630. Search in Google Scholar

Reed L.J., Muench H., (1938). A simple method of estimating fifty per cent endpoints. Am. J. Epidemiol., 27: 493–497. Search in Google Scholar

Roques S., Deborde C., Richard N., Sergent L., Kurz F., Skiba-Cassy S., Fauconneau B., Moing A. (2018). Characterizing alternative feeds for rainbow trout (O. mykiss) by 1 H NMR metabolomics. Metabolomics, 14: 155. Search in Google Scholar

Roques S., Deborde C., Guimas L., Marchand Y., Richard N., Jacob D., Skiba-Cassy S., Moing A., Fauconneau B. (2020 a). Integrative metabolomics for assessing the effect of insect (Hermetia illucens) protein extract on rainbow trout metabolism. Metabolites, 10: 83. Search in Google Scholar

Roques S., Deborde C., Richard N., Marchand Y., Larroquet L., Prigent S., Skiba-Cassy S., Moing A., Fauconneau B. (2020 b). Proton-NMR metabolomics of rainbow trout fed a plant-based diet supplemented with graded levels of a protein-rich yeast fraction reveal several metabolic processes involved in growth. J. Nutr., 150: 2268–2277. Search in Google Scholar

Roy S., Kumar V., Mitra A., Manna R.K., Suresh V.R., Homechaudhuri S. (2018). Amylase and protease activity in shrimps and prawn of Sundarbans, West Bengal, India. Ind. J. Geo. Mar. Sci., 47: 53–59. Search in Google Scholar

Rungrassamee W., Leelatanawit R., Jiravanichpaisal P., Klinbunga S., Karoonuthaisiri N. (2010). Expression and distribution of three heat shock protein genes under heat shock stress and under exposure to Vibrio harveyi in Penaeus monodon. Dev. Comp. Immunol., 34: 1082–1089. Search in Google Scholar

Schleder D.D., Jatobá A., da Silva B.C., Ferro D.P.D., Seiffert W.Q., Vieira F.D.N. (2018). Soybean protein concentrate in Pacific white shrimp reared in bioflocs: Effect on health and vibrio challenge. Acta Sci. Anim. Sci., 40: 1–6. Search in Google Scholar

Schock T.B., Newton S., Brenkert K., Leffler J., Bearden D.W. (2012). An NMR-based metabolomic assessment of cultured cobia health in response to dietary manipulation. Food Chem., 133: 90–101. Search in Google Scholar

Shao C., Su Y., Meng D., Li Y., Dong Y., Hao H., Ye H. (2023). Comprehensive metabolomic profiling of nutrients in fish and shrimp. Food Chem., 407: 135037. Search in Google Scholar

Shao J., Zhao W., Liu X., Wang L. (2018). Growth performance, digestive enzymes, and TOR signaling pathway of Litopenaeus vannamei are not significantly affected by dietary protein hydrolysates in practical conditions. Front. Physiol., 9: 1–8. Search in Google Scholar

Shao Y., Li C., Chen X., Zhang P., Li Y., Li T., Jiang J. (2015). Metabolomic responses of sea cucumber Apostichopus japonicus to thermal stresses. Aquaculture, 435: 390–397. Search in Google Scholar

Sharifinia M., Bahmanbeigloo Z.A., Keshavarzifard M., Khanjani M.H., Daliri M., Koochaknejad E., Jasour M.S. (2023). The effects of replacing fishmeal by mealworm (Tenebrio molitor)on digestive enzymes activity and hepatopancreatic biochemical indices of Litopenaeus vannamei. Ann. Anim. Sci., 23: 519–528. Search in Google Scholar

Sivakumar M. (2022). Dietary organic acids on growth, immune response, hepatopancreatic histopathology and disease resistance in Pacific white shrimp, Penaeus vannamei against Vibrio harveyi. Res. Square, https://doi.org/10.21203/rs.3.rs-2177311/v1 Search in Google Scholar

Soares M., Fracalossi D.M., Lima de Freitas L.E., Rodrigues M.S., Redig J.C., Mouriño J.L.P., Seiffert W.Q., do Nascimento Vieira F. (2015). Replacement of fish meal by protein soybean concentrate in practical diets for Pacific white shrimp. Rev. Bras. Zoot., 44: 343–349. Search in Google Scholar

Soltanzadeh S., Esmaeili Fereidouni A., Ouraji H., Khalili K.J. (2016). Growth performance, body composition, hematological, and serum biochemical responses of beluga (Huso huso) juveniles to different dietary inclusion levels of faba bean (Vicia faba) meal. Aquacult. Int., 24: 395–413. Search in Google Scholar

Song T., Qin Y., Ke L., Wang X., Wang K., Sun Y., Ye J. (2022). Dietary lactoferrin supplementation improves growth performance and intestinal health of juvenile orange-spotted groupers (Epinephelus coioides). Metabolites, 12: 915. Search in Google Scholar

Sun L., Sun J., Xu Q., Li X., Zhang L., Yang H. (2017). Metabolic responses to intestine regeneration in sea cucumbers Apostichopus japonicus. Compar. Bioch. Phys. Gen. Prot., 22: 32–38. Search in Google Scholar

Talukdar A., Dharmendra Deo A., Prasad Sahu N., Sardar P., Aklakur M., Harikrishna V., Prakash S., Shamna N., Jana P. (2021). Effects of different levels of dietary protein on the growth performance, nutrient utilization, digestive enzymes and physiological status of white shrimp, Litopenaeus vannamei juveniles reared in inland saline water. Aquacult. Nutr., 27: 77–90. Search in Google Scholar

Tan Q., Liu Q., Chen X., Wang M., Wu Z. (2013). Growth performance, biochemical indices and hepatopancreatic function of grass carp, Ctenopharyngodon idellus, would be impaired by dietary rapeseed meal. Aquaculture, 414–415: 119–126. Search in Google Scholar

Thévenot E.A., Roux A., Xu Y., Ezan E., Junot C. (2015). Analysis of the human adult urinary metabolome variations with age, body mass index, and gender by implementing a comprehensive workflow for univariate and OPLS statistical analyses. J. Proteome Res., 14: 3322–3335. Search in Google Scholar

Ulaszewska M.M., Weinert C.H., Trimigno A., Portmann R., Andres Lacueva C., Badertscher R., Brennan L., Brunius C., Bub A., Capozzi F., Cialiè Rosso M., Cordero C.E., Daniel H., Durand S., Egert B., Ferrario P.G., Feskens E.J.M., Franceschi P., Garcia-Aloy M., Vergères G. (2019). Nutrimetabolomics: an integrative action for metabolomic analyses in human nutritional studies. Mol. Nutr. Food Res., 63: 1–86. Search in Google Scholar

Vazquez L., Alpuche J., Maldonado G., Agundis C., Pereyra-Morales A., Zenteno E. (2009). Immunity mechanisms in crustaceans. Innate Immunity, 15: 179–188. Search in Google Scholar

Viant M.R., Rosenblum E.S., Tjeerdema R.S. (2003). NMR-based metabolomics: a powerful approach for characterizing the effects of environmental stressors on organism health. Environ. Sci. Tech., 37: 4982–4989. Search in Google Scholar

Villarreal H., Juarez L. (2022). Super-intensive shrimp culture: Analysis and future challenges. J. World. Aquacult. Soc., 53: 928–932. Search in Google Scholar

Wang J., Zhang H., Yang Q., Tan B., Dong X., Chi S., Liu H., Zhang S. (2020 a). Effects of replacing soybean meal with cottonseed meal on growth, feed utilization and non-specific immune enzyme activities for juvenile white shrimp, Litopenaeus vannamei. Aquacult. Rep., 16: 100255. Search in Google Scholar

Wang L., Yin N., Sagada G., Hua Y., Li H., Zhang J., Shao Q. (2020 b). Partial replacement of fishmeal with corn gluten meal, pea protein isolate and their mixture in diet of black sea bream (Acanthopagrus schlegelii) juveniles: Effects on growth performance, feed utilization and haematological parameters. Aquacult. Res., 51: 2071–2083. Search in Google Scholar

Willora F.P., Vatsos I.N., Mallioris P., Bordignon F., Keizer S., Martınez-Llorens S., Sørensen M., Hagen Ø. (2022). Replacement of fishmeal with plant protein in the diets of juvenile lumpfish (Cyclopterus lumpus, L. 1758): Effects on digestive enzymes and microscopic structure of the digestive tract. Aquaculture, 561: 738601. Search in Google Scholar

Wu Z., Yu, X., Guo J., Fu Y., Guo Y., Pan M., Zhang W., Mai K. (2022). Effects of replacing fish meal with corn gluten meal on growth performance, intestinal microbiota, mTOR pathway and immune response of abalone Haliotis discus hannai. Aquacult. Rep., 23: 101007. Search in Google Scholar

Xie S., Liu Y., Tian L., Niu J., Tan B. (2020). Low dietary fish meal induced endoplasmic reticulum stress and impaired phospholipids metabolism in juvenile Pacific white shrimp, Litopenaeus vannamei. Front. Phys., 11: 1–17. Search in Google Scholar

Xu L., Ji C., Zhao J., Wu H. (2016). Metabolic responses to metal pollution in shrimp Crangon affinis from the sites along the Laizhou Bay in the Bohai Sea. Mar. Pollut. Bull., 113: 536–541. Search in Google Scholar

Xu Q.Y., Wang C.A., Zhao Z.G., Luo L. (2012). Effects of replacement of fish meal by soy protein isolate on the growth, digestive enzyme activity and serum biochemical parameters for juvenile amur sturgeon (Acipenser schrenckii). Asian.-Australas. J. Anim. Sci., 25: 1588–1594. Search in Google Scholar

Xu Q., Yang Z., Chen S., Zhu W., Xiao S., Liu J., Wang H., Lan S. (2022). Effects of replacing dietary fish meal by soybean meal co-fermented using Bacillus subtilis and Enterococcus faecium on serum antioxidant indices and gut microbiota of crucian carp Carassius auratus. Fishes, 7: 54. Search in Google Scholar

Yang H., Bian Y., Huang L., Lan Q., Ma L. (2022). Effects of replacing fish meal with fermented soybean meal on the growth performance, intestinal microbiota, morphology and disease resistance of largemouth bass (Micropterus salmoides). Aquacult. Rep., 22: 100954. Search in Google Scholar

Yang Q., Tan B., Dong X., Chi S., Liu H. (2015). Effect of replacing fish meal with extruded soybean meal on growth, feed utilization and apparent nutrient digestibility of juvenile white shrimp (Litopenaeus vannamei). J. Ocean Univ. China, 14: 865–872. Search in Google Scholar

Yang Y., Han T., Xiao J., Li X., Wang J. (2018). Transcriptome analysis reveals carbohydrate-mediated liver immune responses in Epinephelus akaara. Sci. Rep., 8: 1–11. Search in Google Scholar

Yin F., Dan X., Sun P., Shi Z., Gao Q., Peng S., Li A. (2014). Growth, feed intake and immune responses of orange-spotted grouper (Epinephelus coioides) exposed to low infectious doses of ectoparasite (Cryptocaryon irritans). Fish Shellfish Immunol., 36: 291–298. Search in Google Scholar

Yu Q., Fu Z., Huang M., Xu C., Wang X., Qin J.G., Chen L., Han F., Li E. (2021). Growth, physiological, biochemical, and molecular responses of Pacific white shrimp Litopenaeus vannamei fed different levels of dietary selenium. Aquaculture, 535: 736393. Search in Google Scholar

Yun H., Shahkar E., Hamidoghli A., Lee S., Won S., Bai S.C. (2017). Evaluation of dietary soybean meal as fish meal replacer for juvenile whiteleg shrimp, Litopenaeus vannamei reared in biofloc system. Int. Aquat. Res., 9: 8384917. Search in Google Scholar

Zhang J., Zhong L., Peng M., Chu W., Liu Z., Dai Z., Hu Y. (2019). Replacement of fish meal with soy protein concentrate in diet of juvenile rice field eel Monopterus albus. Aquacult. Rep., 15: 100235. Search in Google Scholar

Zhong G., Hua X., Yuan K., Zhou H. (2011). Effect of CGM on growth performance and digestibility in puffer (Takifugu fasciatus). Aquacult. Int., 19: 395–403. Search in Google Scholar

Zhou J., Wang W.N., He W.Y., Zheng Y., Wang L., Xin Y., Liu Y., Wang A.L. (2010). Expression of HSP60 and HSP70 in white shrimp, Litopenaeus vannamei in response to bacterial challenge. J. Invertebr. Pathol., 103: 170–178. Search in Google Scholar

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