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Combined Effects of Spirulina platensis and Pediococcus acidilactici on the Growth Performance, Digestive Enzyme Activity, Antioxidative Status, and Immune Genes in Zebrafish


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Ahmadifar E., Sheikhzadeh N., Roshanaei K., Dargahi N., Faggio C. (2019). Can dietary ginger (Zingiber officinale) alter biochemical and immunological parameters and gene expression related to growth, immunity and antioxidant system in zebrafish (Danio rerio)? Aquaculture, 507: 341–348. Search in Google Scholar

Ahmadifar E., Dawood M.A.O., Shahriyari Moghadam M., Hashemi Shahrestanaki A., Van Doan H., Saad A.H., Aboubakr M., Abdelhiee E.Y., Fadl S.E. (2020). The effect of Pediococcus acidilactici MA 18/5M on immune responses and mRNA levels of growth, antioxidant and immune-related genes in zebrafish (Danio rerio). Aquacult. Rep., 17: 100374. Search in Google Scholar

Akhter N., Wu B., Memon A.M., Mohsin M. (2015). Probiotics and prebiotics associated with aquaculture: A review. Fish Shellfish Immunol., 45: 733–741. Search in Google Scholar

Alagawany M., Taha A.E., Noreldin A., El-Tarabily K.A., Abd El-Hack M.E. (2021). Nutritional applications of spirulina and chlorella in farmed fish: A review. Aquaculture, 574: 736841. Search in Google Scholar

Al-Deriny S.H., Dawood M.A., Abou Zaid A.A., Wael F., Paray B.A., Van Doan H., Mohamed R.A. (2020). The synergistic effects of Spirulina platensis and Bacillus amyloliquefaciens on the growth performance, intestinal histomorphology, and immune response of Nile tilapia (Oreochromis niloticus). Aquacult. Rep., 17: 100390. Search in Google Scholar

Al-Hisnawi A., Rodiles A., Rawling M.D., Castex M., Waines P., Gioacchini G., Carnevali O., Merrifield D.L. (2019). Dietary probiotic Pediococcus acidilactici MA18/5M modulates the intestinal microbiota and stimulates intestinal immunity in rainbow trout (Oncorhynchus mykiss). J. World Aquacult. Soc., 50: 1133–1151. Search in Google Scholar

Andani H.R.R., Tukmechi A., Meshkini S., Sheikhzadeh N. (2012). Antagonistic activity of two potential probiotic bacteria from fish intestines and investigation of their effects on growth performance and immune response in rainbow trout (Oncorhynchus mykiss). J. Appl. Ichthyol., 28: 728–734. Search in Google Scholar

Ashouri G., Soofiani N.M., Hoseinifar S.H., Jalali S.A.H., Morshedi V., Van Doan H., Mozanzadeh M.T. (2018). Combined effects of dietary low molecular weight sodium alginate and Pediococcus acidilactici MA18/5M on growth performance, haematological and innate immune responses of Asian sea bass (Lates calcalifer) juveniles. Fish Shellfish Immunol., 79: 34–41. Search in Google Scholar

Ashouri G., Soofiani N.M., Hoseinifar S.H., Jalali S.A.H., Morshedi V., Valinassab T., Bagheri D., Van Doan H., Mozanzadeh M.T., Carnevali O. (2020). Influence of dietary sodium alginate and Pediococcus acidilactici on liver antioxidant status, intestinal lysozyme gene expression, histomorphology, microbiota, and digestive enzymes activity, in Asian sea bass (Lates calcarifer) juveniles. Aquaculture, 518: 734638. Search in Google Scholar

Assan D., Kuebutornye F.K.A., Hlordzi V., Chen H., Mraz J., Mustapha U.F., Abarike E.D. (2022). Effects of probiotics on digestive enzymes of fish (finfish and shellfish); status and prospects: a mini review. Comp. Biochem. Physiol. B: Biochem. Mol. Biol., 257: 110653. Search in Google Scholar

Azimirad M., Meshkini S., Ahmadifard N., Hoseinifar S.H. (2016). The effects of feeding with synbiotic (Pediococcus acidilactici and fructooligosaccharide) enriched adult Artemia on skin mucus immune responses, stress resistance, intestinal microbiota and performance of angelfish (Pterophyllum scalare). Fish Shellfish Immunol., 54: 516–522. Search in Google Scholar

Benzie I.F.F., Strain J.J. (1996). Ferric reducing ability of plasma (FRAP) as a measure of antioxidant power: the FRAP assay. Anal. Biochem., 239: 70–76. Search in Google Scholar

Bernfeld P. (1995). Amylase a and b. In: Methods in enzymology, Colowick S.P., Kaplan N.O. (eds). Academic Press, pp. 149–158. Search in Google Scholar

Birnie-Gauvin K., Costantini D., Cooke S.J., Willmore W.G. (2017). A comparative and evolutionary approach to oxidative stress in fish: a review. Fish Fisheries, 18: 928–942. Search in Google Scholar

Bulow L., Mosbach K. (1987). The expression in E. coli of a polymeric gene coding for an esterase mimic catalyzing the hydrolysis of p-nitrophenyl esters. FEBS Lett., 210: 147–152. Search in Google Scholar

Chen H., Li J., Yan L., Cao J., Li D., Huang G.Y., Shi W.J., Dong W., Zha J., Ying G.G., Zhong H. (2020). Subchronic effects of dietary selenium yeast and selenite on growth performance and the immune and antioxidant systems in Nile tilapia Oreochromis niloticus. Fish Shellfish Immunol., 97: 283–293. Search in Google Scholar

Chi C., Jiang B., Yu X.B., Liu T.Q., Xia L., Wang G.X. (2014). Effects of three strains of intestinal autochthonous bacteria and their extracellular products on the immune response and disease resistance of common carp, Cyprinus carpio. Fish Shellfish Immunol., 36: 9–18. Search in Google Scholar

Dawood M.A. (2021). Nutritional immunity of fish intestines: Important insights for sustainable aquaculture. Rev. Aquacult., 13: 642–663. Search in Google Scholar

Dawood M.A.O., Koshio S., Esteban M.A. (2018). Beneficial roles of feed additives as immunostimulants in aquaculture: a review. Rev. Aquacult., 10: 950–974. Search in Google Scholar

El-Araby D.A., Amer S.A., Attia G.A., Osman A., Fahmy E.M., Altohamy D.E., Alkafafy M., Elakkad H.A., Tolba S.A. (2022). Dietary Spirulina platensis phycocyanin improves growth, tissue histoarchitecture, and immune responses, with modulating immunoexpression of CD3 and CD20 in Nile tilapia, Oreochromis niloticus. Aquaculture, 546: 737413. Search in Google Scholar

Ghiasi M., Binaii M., Naghavi A., Rostami H.K., Nori H., Amerizadeh A. (2018). Inclusion of Pediococcus acidilactici as probiotic candidate in diets for beluga (Huso huso) modifies biochemical parameters and improves immune functions. Fish Physiol. Biochem., 44: 1099–1107. Search in Google Scholar

Goth L. (1991). A simple method for determination of serum catalase activity and revision of reference range. Clin. Chim. Acta., 196: 143–152. Search in Google Scholar

Gupta S., Gupta C., Garg A.P., Prakash D. (2017). Prebiotic efficiency of blue green algae on probiotics microorganisms. J. Microbiol. Exp., 4: 00120. Search in Google Scholar

Hamed M., Soliman H.A.M., Sayed A.ED.H. (2019). Ameliorative effect of Spirulina platensis against lead nitrate–induced cytotoxicity and genotoxicity in catfish Clarias gariepinus. Environ. Sci. Pollut. Res., 26: 20610–20618. Search in Google Scholar

Hoseinifar S.H., Sun Y.Z., Wang A., Zhou Z. (2018). Probiotics as means of diseases control in aquaculture, a review of current knowledge and future perspectives. Front. Microbiol., 12. Search in Google Scholar

Hoseinifar S.H., Jahazi M.A., Mohseni R., Raeisi M., Bayani M., Mazandarani M., Yousefi M., Van Doan H., Torfi Mozanzadeh M. (2020). Effects of dietary fern (Adiantum capillus-veneris) leaves powder on serum and mucus antioxidant defence, immunological responses, antimicrobial activity and growth performance of common carp (Cyprinus carpio) juveniles. Fish Shellfish Immunol., 106: 959–966. Search in Google Scholar

Jiang W., Miao L., Lin Y., Ci L., Liu B., Ge X. (2022). Spirulina (Arthrospira) platensis as a protein source could improve growth, feed utilisation and digestion and physiological status in juvenile blunt snout bream (Megalobrama amblycephala). Aquacult. Rep., 22: 100932. Search in Google Scholar

Livak K.J., Schmittgen T.D. (2001). Analysis of relative gene expression data using realtime quantitative PCR and the 2-ΔΔCt method. Methods, 25: 402–408. 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

Melo-Bolívar J.F., Ruiz-Pardo R.Y., Hume M.E., Sidjabat H.E., Villamil-Diaz L.M. (2020). Probiotics for cultured freshwater fish. Microbiol. Aust., 41: 105–108. Search in Google Scholar

Merrifield D.L., Bradley G., Harper G.M., Baker R.T.M., Munn C.B., Davies S.J. (2011). Assessment of the effects of vegetative and lyophilized Pediococcus acidilactici on growth, feed utilization, intestinal colonization and health parameters of rainbow trout (Oncorhynchus mykiss Walbaum). Aquac. Nutr., 17: 73–79. Search in Google Scholar

Modanloo M., Soltanian S., Akhlaghi M., Hoseinifar S.H. (2017).The effects of single or combined administration of galactooligosaccharide and Pediococcus acidilactici on cutaneous mucus immune parameters, humoral immune responses and immune related genes expression in common carp (Cyprinus carpio) fingerlings. Fish Shellfish Immunol., 70: 391–397. Search in Google Scholar

Mohammadiazarm H., Maniat M., Ghorbanijezeh K., Ghotbeddin N. (2020). Effects of spirulina powder (Spirulina platensis) as a dietary additive on Oscar fish, Astronotus ocellatus: Assessing growth performance, body composition, digestive enzyme activity, immune-biochemical parameters, blood indices and total pigmentation. Aquacult Nutr., 27: 252–260. Search in Google Scholar

Mousavi S., Sheikhzadeh N., Tayefi-Nasrabadi H., Alizadeh-Salteh S., Khani Oushani A., Firouzamandi M., Mardani K. (2020). Administration of grape (Vitis vinifera) seed extract to rainbow trout (Oncorhynchus mykiss) modulates growth performance, some biochemical parameters, and antioxidant-relevant gene expression. Fish Physiol. Biochem., 46: 777–786. Search in Google Scholar

Mugwanya M., Dawood M.A., Kimera F., Sewilam H. (2021). Updating the role of probiotics, prebiotics, and synbiotics for tilapia aquaculture as leading candidates for food sustainability: A review. Probiot. Antimicrob. Proteins, 14: 130–157. Search in Google Scholar

Nishikimi M., Rao N.A., Yagi K. (1972). The occurrence of super-oxide anion in the reaction of reduced phenazine methosulphate and molecular oxygen. Biochem. Biophys. Res. Commun., 46: 849–854. Search in Google Scholar

Olmos G., Lladó J. (2014). Tumor necrosis factor alpha: a link between neuroinflammation and excitotoxicity. Mediators Inflamm., 2014: 861231. Search in Google Scholar

Pagalia D.E., Valentine W.N. (1967). Studies on quantitative and qualitative characterization of erythrocyte glutathione peroxidase. J. Lab. Clin. Med., 70: 158–169. Search in Google Scholar

Rahimnejad S., Guardiola F.A., Leclercq E., Esteban M.Á., Castex M., Sotoudeh E., Lee S.M. (2018). Effects of dietary supplementation with Pediococcus acidilactici MA18/5M, galactooligosaccharide and their synbiotic on growth, innate immunity and disease resistance of rockfish (Sebastes schlegeli). Aquaculture, 482: 36–44. Search in Google Scholar

Ringo E., Hoseinifar S.H., Ghosh K., Van Doan H., Beck B.R., Song S.K. (2019). Lactic acid bacteria in finfish – an update. Front. Microbiol., 9: 1818. Search in Google Scholar

Satoh K. (1978). Serum lipid peroxidation in cerebrovascular disorders determined by a new colorimetric method. Clin. Chim. Acta., 90: 37–43. Search in Google Scholar

Shehata A.I., Alhoshy M., Wang T., Wang J., Wang R., Dawood M.A., Zaki M.A., Wang Y., Zhang Z. (2022). Expression of reproduction and antioxidant-related genes in crayfish Cherax quadricarinatus fed with dietary feed additives. Aquac. Int., 30: 699–720. Search in Google Scholar

Sheikhzadeh N., Pashaki A.K., Nofouzi K., Heidarieh M., Tayefi-Nasrabadi H. (2012). Effects of dietary Ergosan on cutaneous mucosal immune response in rainbow trout (Oncorhynchus mykiss). Fish Shellfish Immunol., 32: 407–410. Search in Google Scholar

Sheikhzadeh N., Kouchaki M., Mehregan M., Tayefi-Nasrabadi H., Divband B., Khatamian M., Khani Oushani A., Shabanzadeh S. (2017). Influence of nanochitosan/zeolite composite on growth performance, digestive enzymes and serum biochemical parameters in rainbow trout (Oncorhynchus mykiss). Aquac. Res., 48: 5955–5964. Search in Google Scholar

Sheikhzadeh N., Mousavi S., Hamidian G., Firouzamandi M., Khani Oushani A., Mardani K. (2019 a). Role of dietary Spirulina platensis in improving mucosal immune responses and disease resistance of rainbow trout (Oncorhynchus mykiss). Aquaculture, 510: 1–8. Search in Google Scholar

Sheikhzadeh N., Mousavi S., Khani Oushani A., Firouzamandi M., Mardani K. (2019 b). Spirulina platensis in rainbow trout (Oncorhynchus mykiss) feed: effects on growth, fillet composition and tissue antioxidant mechanisms. Aquac. Int., 27: 1613–1623. Search in Google Scholar

Siwicki A.K., Anderson D.P., Rumsey G.L. (1994). Dietary intake of immunostimulants by rainbow trout affects non-specific immunity and protection against furunculosis. Vet. Immunol. Immunopathol., 41: 125–139. Search in Google Scholar

Siringi J.O., Turoop L., Njonge F. (2021). Growth and biochemical response of Nile tilapia (Oreochromis niloticus) to spirulina (Arthrospira platensis) enhanced aquaponic system. Aquaculture, 544: 737134. Search in Google Scholar

Teimouri M., Yeganeh S., Mianji G.R., Najafi M., Mahjoub S. (2019). The effect of Spirulina platensis meal on antioxidant gene expression, total antioxidant capacity, and lipid peroxidation of rainbow trout (Oncorhynchus mykiss). Fish Physiol. Biochem., 45: 977–986. Search in Google Scholar

Yilmaz S., Yilmaz E., Dawood M.A.O., Ringo E., Ahmadifar E., Abdel-Latif H.M.R. (2022). Probiotics, prebiotics, and synbiotics used to control vibriosis in fish. Rev. Aquacult., 547: 737514. Search in Google Scholar

Zhang F., Man Y.B., Mo W.Y., Wong M.H. (2020). Application of Spirulina in aquaculture: a review on wastewater treatment and fish growth. Rev. Aquacult., 12: 582–599. Search in Google Scholar

eISSN:
2300-8733
Language:
English
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Journal Subjects:
Life Sciences, Biotechnology, Zoology, Medicine, Veterinary Medicine