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1.
Amino Acids ; 39(2): 449-60, 2010 Jul.
Article in English | MEDLINE | ID: mdl-20112035

ABSTRACT

The current experiment aimed to study whether interactions with lipid metabolism possibly might explain the relative increased liver weight obtained in fish fed sub-optimal methionine levels. A basal diet based on a blend of plant proteins which is low in methionine (1.6 g Met/16 g N) was compared to a methionine adequate diet (2.2 g Met/16 g N) prepared by adding DL-methionine (2.4 g/kg) to the basal diet in the expense of wheat grain. Fish oil was used as the lipid source. The diets were balanced in all nutrients except methionine. The diets were fed to Atlantic salmon (500 g BW) for a period of 3 months. Feed intake did not differ, rendering the intake of all nutrients except methionine equal. Fish fed the low methionine diet had an increased liver size relative to body weight, indicating fat deposition in the liver. Fish given the sub-optimal methionine diet showed about six times higher fatty acid synthase (FAS) activity as compared to the fish fed the adequate methionine diet, indicating a higher de novo lipogenesis. A significant rise in the liver 18:1 to 18:0 fatty acid ratios also supported storage of lipids over fatty acid oxidation. Indeed, methionine limitation resulted in significantly higher TAG concentrations in the liver. Sub-optimal dietary methionine also resulted in lower hepatic taurine concentrations and the total bile acids concentrations were reduced in faeces and tended to be reduced in plasma. Taken together, our data show that salmon fed sub-optimal methionine levels had increased relative liver weight and developed signs commonly described in the early stage of non-alcoholic fatty liver disease in rodent models (increased FAS activity, changed fatty acid ratios and TAG accumulation).


Subject(s)
Fatty Acid Synthases/metabolism , Fatty Acids/metabolism , Liver/metabolism , Methionine/deficiency , Triglycerides/metabolism , Amino Acids/blood , Animals , Fatty Liver/etiology , Methionine/administration & dosage , Salmo salar
2.
Article in English | MEDLINE | ID: mdl-18723106

ABSTRACT

To investigate the endocrine signalling from dietary plant protein on somatotropic system and gastrointestinal hormone cholecystokinin (CCK), two iso-amino acid diets based on either high plant or high fish meal protein were fed to Atlantic salmon. Salmon with an average starting weight of 641+/-23 g (N=180), were fed a fish meal (FM) based diet (containing 40% FM) or diets mainly consisting of blended plant proteins (PP) containing only 13% marine protein, of which only 5% was FM for 3 months. mRNA levels of target genes GH, GH-R, IGF-I, IGF-II, IGFBP-1, IGF-IR in addition to CCK-L, were studied in brain, hepatic tissue and fast muscle, and circulating levels of IGF-I in plasma of Atlantic salmon were measured. We detected reduced feed intake resulting in lower growth, weight gain and muscle protein accretion in salmon fed plant protein compared to a diet based on fish meal. There were no significant effects on the regulation of the target genes in brain or in hepatic tissues, but a trend of down-regulation of IGF-I was detected in fast muscle. Lower feed intake, and therefore lower intake of the indispensable amino acids, may have resulted in lower pituitary GH and lower IGF-I mRNA levels in muscle tissues. This, together with higher protein catabolism, may be the main cause of the reduced growth of salmon fed plant protein diet. There were no signalling effects detected either by the minor differences of the diets on mRNA levels of GH, GH-R, IGF-IR, IGF-II, IGFBP-1, CCK or plasma protein IGF-I.


Subject(s)
Cholecystokinin/metabolism , Growth Hormone/metabolism , Plant Proteins, Dietary/administration & dosage , Salmo salar/metabolism , Animal Feed , Animal Nutritional Physiological Phenomena , Animals , Aquaculture , Base Sequence , Brain/metabolism , Cholecystokinin/genetics , DNA Primers/genetics , Down-Regulation , Fish Proteins/administration & dosage , Growth Hormone/genetics , Insulin-Like Growth Factor I/genetics , Insulin-Like Growth Factor I/metabolism , Liver/metabolism , Muscle Fibers, Fast-Twitch/metabolism , RNA, Messenger/genetics , RNA, Messenger/metabolism , Salmo salar/genetics , Salmo salar/growth & development , Somatomedins/genetics , Somatomedins/metabolism
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