Dietary soyasaponin supplementation to pea protein concentrate reveals nutrigenomic interactions underlying enteropathy in Atlantic salmon (Salmo salar)

被引:87
作者
Kortner, Trond M. [1 ]
Skugor, Stanko [2 ,3 ]
Penn, Michael H. [1 ]
Mydland, Liv Torunn [3 ]
Djordjevic, Brankica [3 ]
Hillestad, Marie [4 ]
Krasnov, Aleksei [2 ]
Krogdahl, Ashild [1 ]
机构
[1] Norwegian Sch Vet Sci, Dept Basic Sci & Aquat Med, Aquaculture Prot Ctr a CoE, Oslo, Norway
[2] Nofima Marin, N-1432 As, Norway
[3] Norwegian Univ Life Sci, Dept Anim & Aquacultural Sci, Aquaculture Prot Ctr a CoE, N-1432 As, Norway
[4] Biomar AS, N-7011 Trondheim, Norway
关键词
Plant protein sources; Fish feed; Microarray; Inflammation; Digestion; Saponin; TROUT ONCORHYNCHUS-MYKISS; INFLAMMATORY-BOWEL-DISEASE; RAINBOW-TROUT; SOYBEAN-MEAL; GENE-EXPRESSION; ANTINUTRITIONAL FACTORS; SAPONIN CONTENT; PISUM-SATIVUM; FISH-MEAL; INTESTINAL HOMEOSTASIS;
D O I
10.1186/1746-6148-8-101
中图分类号
S85 [动物医学(兽医学)];
学科分类号
0906 ;
摘要
Background: Use of plant ingredients in aquaculture feeds is impeded by high contents of antinutritional factors such as saponins, which may cause various pharmacological and biological effects. In this study, transcriptome changes were analyzed using a 21 k oligonucleotide microarray and qPCR in the distal intestine of Atlantic salmon fed diets based on five plant protein sources combined with soybean saponins. Results: Diets with corn gluten, sunflower, rapeseed or horsebean produced minor effects while the combination of saponins with pea protein concentrate caused enteritis and major transcriptome changes. Acute inflammation was characterised by up-regulation of cytokines, NFkB and TNFalpha related genes and regulators of T-cell function, while the IFN-axis was suppressed. Induction of lectins, complement, metalloproteinases and the respiratory burst complex parallelled a down-regulation of genes for free radical scavengers and iron binding proteins. Marked down-regulation of xenobiotic metabolism was also observed, possibly increasing vulnerability of the intestinal tissue. A hallmark of metabolic changes was dramatic down-regulation of lipid, bile and steroid metabolism. Impairment of digestion was further suggested by expression changes of nutrient transporters and regulators of water balance (e.g. aquaporin, guanylin). On the other hand, microarray profiling revealed activation of multiple mucosal defence processes. Annexin-1, with important anti-inflammatory and gastroprotective properties, was markedly up-regulated. Furthermore, augmented synthesis of polyamines needed for cellular proliferation (up-regulation of arginase and ornithine decarboxylase) and increased mucus production (down-regulation of glycan turnover and goblet cell hyperplasia) could participate in mucosal healing and restoration of normal tissue function. Conclusion: The current study promoted understanding of salmon intestinal pathology and establishment of a model for feed induced enteritis. Multiple gene expression profiling further characterised the inflammation and described the intestinal pathology at the molecular level.
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页数:17
相关论文
共 82 条
[1]  
ANDERSON RL, 1995, J NUTR, V125, pS581, DOI 10.1093/jn/125.3_Suppl.581S
[2]   Epithelial-cell recognition of commensal bacteria and maintenance of immune homeostasis in the gut [J].
Artis, David .
NATURE REVIEWS IMMUNOLOGY, 2008, 8 (06) :411-420
[3]   Screening of nutrient digestibilities and intestinal pathologies in Atlantic salmon, Salmo salar, fed diets with legumes, oilseeds, or cereals [J].
Aslaksen, M. A. ;
Kraugerud, O. F. ;
Penn, M. ;
Svihus, B. ;
Denstadli, V. ;
Jorgensen, H. Y. ;
Hillestad, M. ;
Krogdahl, A. ;
Storebakken, T. .
AQUACULTURE, 2007, 272 (1-4) :541-555
[4]  
Baeverfjord G, 1996, J FISH DIS, V19, P375, DOI 10.1111/j.1365-2761.1996.tb00376.x
[5]  
Bakke-McKellep AM, 2007, J FISH DIS, V30, P13, DOI 10.1111/j.1365-2761.2007.00769.x
[6]   Effects of dietary soyabean meal, inulin and oxytetracycline on intestinal microbiota and epithelial cell stress, apoptosis and proliferation in the teleost Atlantic salmon (Salmo salar L.) [J].
Bakke-McKellep, Anne Marie ;
Penn, Michael H. ;
Salas, Patricia Mora ;
Refstie, Stale ;
Sperstad, Sigmund ;
Landsverk, Thor ;
Ringo, Einar ;
Krogdahl, Ashild .
BRITISH JOURNAL OF NUTRITION, 2007, 97 (04) :699-713
[7]   MEP1A allele for meprin A metalloprotease is a susceptibility gene for inflammatory bowel disease [J].
Banerjee, S. ;
Oneda, B. ;
Yap, L. M. ;
Jewell, D. P. ;
Matters, G. L. ;
Fitzpatrick, L. R. ;
Seibold, F. ;
Sterchi, E. E. ;
Ahmad, T. ;
Lottaz, D. ;
Bond, J. S. .
MUCOSAL IMMUNOLOGY, 2009, 2 (03) :220-231
[8]   Matrix metalloproteinase levels are elevated in inflammatory bowel disease [J].
Baugh, MD ;
Perry, MJ ;
Hollander, AP ;
Davies, DR ;
Cross, SS ;
Lobo, AJ ;
Taylor, CJ ;
Evans, GS .
GASTROENTEROLOGY, 1999, 117 (04) :814-822
[9]  
BISHNOI S, 1994, J FOOD SCI TECH MYS, V31, P73
[10]   Nutritive metal uptake in teleost fish [J].
Bury, NR ;
Walker, PA ;
Glover, CN .
JOURNAL OF EXPERIMENTAL BIOLOGY, 2003, 206 (01) :11-23