Global microRNA expression profiles in insulin target tissues in a spontaneous rat model of type 2 diabetes

被引:370
作者
Herrera, B. M. [1 ,2 ]
Lockstone, H. E. [1 ]
Taylor, J. M. [1 ]
Ria, M. [1 ]
Barrett, A. [2 ]
Collins, S. [2 ]
Kaisaki, P. [1 ]
Argoud, K. [1 ]
Fernandez, C. [1 ]
Travers, M. E. [2 ]
Grew, J. P. [2 ]
Randall, J. C. [1 ]
Gloyn, A. L. [2 ]
Gauguier, D. [1 ,3 ]
McCarthy, M. I. [1 ,2 ]
Lindgren, C. M. [1 ,2 ]
机构
[1] Univ Oxford, Wellcome Trust Ctr Human Genet, Oxford OX3 7BN, England
[2] Churchill Hosp, Oxford Ctr Diabet Endocrinol & Metab, Oxford OX3 7LJ, England
[3] Ctr Rech Cordeliers, INSERM, U872, Paris, France
基金
英国惠康基金; 瑞典研究理事会;
关键词
Expression; MicroRNA; Murine diabetes model; SKELETAL-MUSCLE; ANIMAL-MODEL; MIR-222; GLUCOSE; KINASE;
D O I
10.1007/s00125-010-1667-2
中图分类号
R5 [内科学];
学科分类号
100201 [内科学];
摘要
MicroRNAs regulate a broad range of biological mechanisms. To investigate the relationship between microRNA expression and type 2 diabetes, we compared global microRNA expression in insulin target tissues from three inbred rat strains that differ in diabetes susceptibility. Using microarrays, we measured the expression of 283 microRNAs in adipose, liver and muscle tissue from hyperglycaemic (Goto-Kakizaki), intermediate glycaemic (Wistar Kyoto) and normoglycaemic (Brown Norway) rats (n = 5 for each strain). Expression was compared across strains and validated using quantitative RT-PCR. Furthermore, microRNA expression variation in adipose tissue was investigated in 3T3-L1 adipocytes exposed to hyperglycaemic conditions. We found 29 significantly differentiated microRNAs (p (adjusted) < 0.05): nine in adipose tissue, 18 in liver and two in muscle. Of these, five microRNAs had expression patterns that correlated with the strain-specific glycaemic phenotype. MiR-222 (p (adjusted) = 0.0005) and miR-27a (p (adjusted) = 0.006) were upregulated in adipose tissue; miR-195 (p (adjusted) = 0.006) and miR-103 (p (adjusted) = 0.04) were upregulated in liver; and miR-10b (p (adjusted) = 0.004) was downregulated in muscle. Exposure of 3T3-L1 adipocytes to increased glucose concentration upregulated the expression of miR-222 (p = 0.008), miR-27a (p = 0.02) and the previously reported miR-29a (p = 0.02). Predicted target genes of these differentially expressed microRNAs are involved in pathways relevant to type 2 diabetes. The expression patterns of miR-222, miR-27a, miR-195, miR-103 and miR-10b varied with hyperglycaemia, suggesting a role for these microRNAs in the pathophysiology of type 2 diabetes, as modelled by the Gyoto-Kakizaki rat. We observed similar patterns of expression of miR-222, miR-27a and miR-29a in adipocytes as a response to increased glucose levels, which supports our hypothesis that altered expression of microRNAs accompanies primary events related to the pathogenesis of type 2 diabetes.
引用
收藏
页码:1099 / 1109
页数:11
相关论文
共 45 条
[1]
[Anonymous], 2008, R: A Language and Environment for Statistical Computing
[2]
Genetic control of plasma lipid levels in a cross derived from normoglycaemic Brown Norway and spontaneously diabetic Goto-Kakizaki rats [J].
Argoud, K. ;
Wilder, S. P. ;
McAteer, M. A. ;
Bihoreau, M. T. ;
Ouali, F. ;
Woon, P. Y. ;
Wallis, R. H. ;
Ktorza, A. ;
Gauguier, D. .
DIABETOLOGIA, 2006, 49 (11) :2679-2688
[3]
The impact of microRNAs on protein output [J].
Baek, Daehyun ;
Villen, Judit ;
Shin, Chanseok ;
Camargo, Fernando D. ;
Gygi, Steven P. ;
Bartel, David P. .
NATURE, 2008, 455 (7209) :64-U38
[4]
MicroRNAs: Genomics, biogenesis, mechanism, and function (Reprinted from Cell, vol 116, pg 281-297, 2004) [J].
Bartel, David P. .
CELL, 2007, 131 (04) :11-29
[5]
Altered regulation of insulin signaling components in adipocytes of insulin-resistant type II diabetic Goto-Kakizaki rats [J].
Begum, N ;
Ragolia, L .
METABOLISM-CLINICAL AND EXPERIMENTAL, 1998, 47 (01) :54-62
[6]
Reduced activation of phosphatidylinositol-3 kinase and increased serine 636 phosphorylation of insulin receptor substrate-1 in primary culture of skeletal muscle cells from patients with type 2 diabetes [J].
Bouzakri, K ;
Roques, M ;
Gual, P ;
Espinosa, S ;
Guebre-Egziabher, F ;
Riou, JP ;
Laville, M ;
Le Marchand-Brustel, Y ;
Tanti, JF ;
Vidal, H .
DIABETES, 2003, 52 (06) :1319-1325
[7]
MicroRNAs in skeletal and cardiac muscle development [J].
Callis, Thomas E. ;
Chen, Jian-Fu ;
Wan, Da-Zhi .
DNA AND CELL BIOLOGY, 2007, 26 (04) :219-225
[8]
GENECODIS: a web-based tool for finding significant concurrent annotations in gene lists [J].
Carmona-Saez, Pedro ;
Chagoyen, Monica ;
Tirado, Francisco ;
Carazo, Jose M. ;
Pascual-Montano, Alberto .
GENOME BIOLOGY, 2007, 8 (01)
[9]
A sensitive array for microRNA expression profiling (miChip) based on locked nucleic acids (LNA) [J].
Castoldi, M ;
Schmidt, S ;
Benes, V ;
Noerholm, M ;
Kulozik, AE ;
Hentze, MW ;
Muckenthaler, MU .
RNA, 2006, 12 (05) :913-920
[10]
Sleep in the Wistar-Kyoto rat, a putative genetic animal model for depression [J].
Dugovic, C ;
Solberg, LC ;
Redei, E ;
Van Reeth, G ;
Turek, FW .
NEUROREPORT, 2000, 11 (03) :627-631