An evaluation of hepatic glucose metabolism at the transcription level for the omnivorous GIFT tilapia, Oreochromis niloticus during postprandial nutritional status transition from anabolism to catabolism

被引:32
作者
Chen, Yong-Jun [1 ,2 ]
Zhang, Ti-Yin [1 ]
Chen, Hai-Yan [1 ]
Lin, Shi-Mei [1 ]
Luo, Li [1 ]
Wang, De-Shou [2 ]
机构
[1] Southwest Univ, Coll Anim Sci & Technol, Key Lab Freshwater Fish Resources & Reprod Dev, Minist Educ, Chongqing, Peoples R China
[2] Southwest Univ, Sch Life Sci, Key Lab Aquat Sci Chongqing, Chongqing, Peoples R China
基金
中国博士后科学基金;
关键词
Glucose metabolism; Transcription; Anabolism; Catabolism; Tilapia; GLUCOSE-6-PHOSPHATASE GENE-EXPRESSION; BREAM SPARUS-AURATA; RAINBOW-TROUT; MOLECULAR PHYSIOLOGY; ENZYME EXPRESSION; LIVER; GLUCOKINASE; FISH; INSULIN; GROWTH;
D O I
10.1016/j.aquaculture.2017.03.009
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
To better understand the regulatory mechanism of glucose metabolism, sub-adult Genetically Improved Farmed Tilapia (GIFT) were sampled at 0, 1, 3, 8 and 24 h after feeding (HAF) after 36 h of food deprivation, and the time course of changes in plasma nutrients and the transcription of a series of key genes involved with hepatic glucose transport and utilization were analyzed. Compared with the fasting state (0 HAF), plasma glucose increased at 1 HAF, peaked at 3 HAF, decreased at 8 HAF and returned to basal level at 24 HAF. Genes such as glucokinase (gck) and liver type of phosphofructokinase (pfkl) were sensitive indicators for hepatic glycolysis, and their transcription was active at 1-8 HAF, especially at 3 HAF. Genes such as glucose-6-phosphatase catalytic subunit a2(g6pca2) and phosphoenolpyruvate carboxykinase 2 (pck2) were useful markers for hepatic gluconeogenesis, and their transcription was inhibited at 1-3 HAF, especially at 3 HAF. Hepatic gluconeogenesis was up-regulated with feeding time from 3 to 8 h, suggesting a nutritional status transition from anabolism to catabolism. The mRNA level of glycogen synthase 1 (gys1) increased at 3-8 HAF and liver glycogen accumulated at 8 HAF, but the principal expressed gys2 was unexpectedly down-regulated after feeding, suggesting that glycogen storage might be controlled by Gys1 rather than Gys2 in the liver of tilapia. In line with the increased plasma triglyceride and cholesterol concentrations, the transcription of hepatic lipogenic genes including acetyl-CoA carboxylase a (acca), ATP citrate lyase a (aclya) and fatty acid synthase (fas) were all up-regulated during 1-8 HAF (especially 3-8 HAF), suggesting that hepatic lipogenesis was an efficient way to dispose excess glucose in tilapia. Hepatic glucose transport was induced since the feeding time was over 8 h, indicating that hepatic glucose production was already transported to extra-hepatic tissues at 8 HAF, which further confirmed the nutritional status transition at this time. Taking the results together, it was suggested that the physiologically specific time point of postprandial nutritional status transition from anabolism to catabolism occurred at about or a little earlier than 8 HAF in tilapia. (C) 2017 Elsevier B.V. All rights reserved.
引用
收藏
页码:375 / 382
页数:8
相关论文
共 41 条
[1]   Glucokinase and molecular aspects of liver glycogen metabolism [J].
Agius, Loranne .
BIOCHEMICAL JOURNAL, 2008, 414 :1-18
[2]   Regulation of rat liver glucose-6-phosphatase gene expression in different nutritional and hormonal states - Gene structure and 5'-flanking sequence [J].
Argaud, D ;
Zhang, Q ;
Pan, WS ;
Maitra, S ;
Pilkis, SJ ;
Lange, AJ .
DIABETES, 1996, 45 (11) :1563-1571
[3]   The syntenic relationship of the zebrafish and human genomes [J].
Barbazuk, WB ;
Korf, I ;
Kadavi, C ;
Heyen, J ;
Tate, S ;
Wun, E ;
Bedell, JA ;
McPherson, JD ;
Johnson, SL .
GENOME RESEARCH, 2000, 10 (09) :1351-1358
[4]   The genomic substrate for adaptive radiation in African cichlid fish [J].
Brawand, David ;
Wagner, Catherine E. ;
Li, Yang I. ;
Malinsky, Milan ;
Keller, Irene ;
Fan, Shaohua ;
Simakov, Oleg ;
Ng, Alvin Y. ;
Lim, Zhi Wei ;
Bezault, Etienne ;
Turner-Maier, Jason ;
Johnson, Jeremy ;
Alcazar, Rosa ;
Noh, Hyun Ji ;
Russell, Pamela ;
Aken, Bronwen ;
Alfoeldi, Jessica ;
Amemiya, Chris ;
Azzouzi, Naoual ;
Baroiller, Jean-Francois ;
Barloy-Hubler, Frederique ;
Berlin, Aaron ;
Bloomquist, Ryan ;
Carleton, Karen L. ;
Conte, Matthew A. ;
D'Cotta, Helena ;
Eshel, Orly ;
Gaffney, Leslie ;
Galibert, Francis ;
Gante, Hugo F. ;
Gnerre, Sante ;
Greuter, Lucie ;
Guyon, Richard ;
Haddad, Natalie S. ;
Haerty, Wilfried ;
Harris, Rayna M. ;
Hofmann, Hans A. ;
Hourlier, Thibaut ;
Hulata, Gideon ;
Jaffe, David B. ;
Lara, Marcia ;
Lee, Alison P. ;
MacCallum, Iain ;
Mwaiko, Salome ;
Nikaido, Masato ;
Nishihara, Hidenori ;
Ozouf-Costaz, Catherine ;
Penman, David J. ;
Przybylski, Dariusz ;
Rakotomanga, Michaelle .
NATURE, 2014, 513 (7518) :375-+
[5]   Nutritional regulation of glucose-6-phosphatase gene expression in liver of the gilthead sea bream (Sparus aurata) [J].
Caseras, A ;
Metón, I ;
Vives, C ;
Egea, M ;
Fernández, F ;
Baanante, IV .
BRITISH JOURNAL OF NUTRITION, 2002, 88 (06) :607-614
[6]   Evolutionary structural and functional conservation of an ortholog of the GLUT2 glucose transporter gene ( SLC2A2) in zebrafish [J].
Castillo, Juan ;
Crespo, Diego ;
Capilla, Encarnacion ;
Diaz, Monica ;
Chauvigne, Francois ;
Cerda, Joan ;
Planas, Josep V. .
AMERICAN JOURNAL OF PHYSIOLOGY-REGULATORY INTEGRATIVE AND COMPARATIVE PHYSIOLOGY, 2009, 297 (05) :R1570-R1581
[7]   Hepatic glucokinase and glucose-6-phosphatase responses to dietary glucose and starch in gilthead sea bream (Sparus aurata) juveniles reared at two temperatures [J].
Enes, P. ;
Panserat, S. ;
Kaushik, S. ;
Oliva-Teles, A. .
COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY A-MOLECULAR & INTEGRATIVE PHYSIOLOGY, 2008, 149 (01) :80-86
[8]   Nutritional regulation of hepatic glucose metabolism in fish [J].
Enes, P. ;
Panserat, S. ;
Kaushik, S. ;
Oliva-Teles, A. .
FISH PHYSIOLOGY AND BIOCHEMISTRY, 2009, 35 (03) :519-539
[9]   Regulation of lipogenic enzyme expression by glucose in liver and adipose tissue: A review of the potential cellular and molecular mechanisms [J].
Foufelle, F ;
Girard, J ;
Ferre, P .
ADVANCES IN ENZYME REGULATION, VOL 36, 1996, 36 :199-227
[10]   Regulation of phosphoenolpyruvate carboxykinase (GTP) gene [J].
Hanson, RW ;
Reshef, L .
ANNUAL REVIEW OF BIOCHEMISTRY, 1997, 66 :581-611