Expression pattern of peptide and amino acid genes in digestive tract of transporter juvenile turbot (Scophthalmus maximus L.)

被引:0
作者
Dandan Xu
Gen He
Kangsen Mai
Huihui Zhou
Wei Xu
Fei Song
机构
[1] Ocean University of China,Key Laboratory of Aquanutrition of Ministry of Agriculture
来源
Journal of Ocean University of China | 2016年 / 15卷
关键词
turbot; digestive tract; amino acid; peptide; transporter; expression pattern;
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中图分类号
学科分类号
摘要
Turbot (Scophthalmus maximus L.), a carnivorous fish species with high dietary protein requirement, was chosen to examine the expression pattern of peptide and amino acid transporter genes along its digestive tract which was divided into six segments including stomach, pyloric caeca, rectum, and three equal parts of the remainder of the intestine. The results showed that the expression of two peptide and eleven amino acid transporters genes exhibited distinct patterns. Peptide transporter 1 (PepT1) was rich in proximal intestine while peptide transporter 2 (PepT2) was abundant in distal intestine. A number of neutral and cationic amino acid transporters expressed richly in whole intestine including B0-type amino acid transporter 1 (B0AT1), L-type amino acid transporter 2 (LAT2), T-type amino acid transporter 1 (TAT1), proton-coupled amino acid transporter 1 (PAT1), y+L-type amino acid transporter 1 (y+LAT1), and cationic amino acid transporter 2 (CAT2) while ASC amino acid transporter 2 (ASCT2), sodium-coupled neutral amino acid transporter 2 (SNAT2), and y+L-type amino acid transporter 2 (y+LAT2) abundantly expressed in stomach. In addition, system b0,+ transporters (rBAT and b0,+AT) existed richly in distal intestine. These findings comprehensively characterized the distribution of solute carrier family proteins, which revealed the relative importance of peptide and amino acid absorption through luminal membrane. Our findings are helpful to understand the mechanism of the utilization of dietary protein in fish with a short digestive tract.
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页码:334 / 340
页数:6
相关论文
共 193 条
[1]  
Avissar N. E.(2001)Na+-dependent neutral amino acid transporter ATB0 is a rabbit epithelial cell brush-border protein American Journal of Physiology-Cell Physiology 281 963-971
[2]  
Ryan C. K.(2010)Dietary protein hydrolysates and free amino acids affect the spatial expression of peptide transporter PepT1 in the digestive tract of Atlantic cod (Gadus morhua). Comparative Biochemistry and Physiology. Part B Biochemistry & Molecular Biology 156 48-55
[3]  
Ganapathy V.(2004)Molecular cloning of mouse amino acid transport system B0, a neutral amino acid transporter related to Hartnup disorder Journal of Biological Chemistry 279 24467-24476
[4]  
Sax H. C.(2008)Amino acid transport across mammalian intestinal and renal epithelia Physiological Reviews 88 249-286
[5]  
Bakke S.(2009)GCN2 protein kinase is required to activate amino acid deprivation responses in mice treated with the anti-cancer agent L-asparaginase Journal of Biological Chemistry 284 32742-32749
[6]  
Jordal A.-E. O.(2005)Effect of dietary protein and lipid levels on growth and body composition of juvenile turbot (Scophthalmus maximus L) reared under optimum salinity and temperature conditions Aquaculture Nutrition 11 235-240
[7]  
Gómez-Requeni P.(2004)Expression of heteromeric amino acid transporters along the murine intestine Journal of Physiology 558 597-610
[8]  
Verri T.(1998)Delta-aminolevulinic acid transport by intestinal and renal peptide transporters and its physiological and clinical implications Journal of Clinical Investigation 101 2761-2767
[9]  
Kousoulaki K.(2006)Amino acid starvation induces the SNAT2 neutral amino acid transporter by a mechanism that involves eukaryotic initiation factor 2a phosphorylation and cap-independent translation Journal of Biological Chemistry 281 17929-17940
[10]  
Aksnes A.(2008)Dietary protein quality and feed restriction influence abundance of nutrient transporter mRNA in the small intestine of broiler chicks Journal of Nutrition 138 262-271