The role of the small intestine in the development of dietary fat-induced obesity and insulin resistance in C57BL/6J mice

被引:144
作者
de Wit, Nicole J. W. [1 ,2 ]
Bosch-Vermeulen, Hanneke [1 ,2 ]
de Groot, Philip J. [1 ,2 ]
Hooiveld, Guido J. E. J. [1 ,2 ]
Bromhaar, Mechteld M. Grootte [1 ,2 ]
Jansen, Jenny [1 ,2 ]
Mueller, Michael [1 ,2 ]
van der Meer, Roelof [1 ,2 ,3 ]
机构
[1] Wageningen Univ, Nutr Metab & Genom Grp, Div Human Nutr, Wageningen, Netherlands
[2] TI Food & Nutr, Nutrigenom Consortium, Wageningen, Netherlands
[3] NIZO Food Res, Ede, Netherlands
关键词
D O I
10.1186/1755-8794-1-14
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Background: Obesity and insulin resistance are two major risk factors underlying the metabolic syndrome. The development of these metabolic disorders is frequently studied, but mainly in liver, skeletal muscle, and adipose tissue. To gain more insight in the role of the small intestine in development of obesity and insulin resistance, dietary fat-induced differential gene expression was determined along the longitudinal axis of small intestines of C57BL/6J mice. Methods: Male C57BL/6J mice were fed a low-fat or a high-fat diet that mimicked the fatty acid composition of a Western-style human diet. After 2, 4 and 8 weeks of diet intervention small intestines were isolated and divided in three equal parts. Differential gene expression was determined in mucosal scrapings using Mouse genome 430 2.0 arrays. Results: The high-fat diet significantly increased body weight and decreased oral glucose tolerance, indicating insulin resistance. Microarray analysis showed that dietary fat had the most pronounced effect on differential gene expression in the middle part of the small intestine. By overrepresentation analysis we found that the most modulated biological processes on a high-fat diet were related to lipid metabolism, cell cycle and inflammation. Our results further indicated that the nuclear receptors Ppars, Lxrs and Fxr play an important regulatory role in the response of the small intestine to the high-fat diet. Next to these more local dietary fat effects, a secretome analysis revealed differential gene expression of secreted proteins, such as Il18, Fgf15, Mif, Igfbp3 and Angptl4. Finally, we linked the fat-induced molecular changes in the small intestine to development of obesity and insulin resistance. Conclusion: During dietary fat-induced development of obesity and insulin resistance, we found substantial changes in gene expression in the small intestine, indicating modulations of biological processes, especially related to lipid metabolism. Moreover, we found differential expression of potential signaling molecules that can provoke systemic effects in peripheral organs by influencing their metabolic homeostasis. Many of these fat-modulated genes could be linked to obesity and/or insulin resistance. Together, our data provided various leads for a causal role of the small intestine in the etiology of obesity and/or insulin resistance.
引用
收藏
页数:16
相关论文
共 51 条
  • [21] LXRs regulate the balance between fat storage and oxidation
    Kalaany, NY
    Gauthier, KC
    Zavacki, AM
    Mammen, PPA
    Kitazume, T
    Peterson, JA
    Horton, JD
    Garry, DJ
    Bianco, AC
    Mangelsdorf, DJ
    [J]. CELL METABOLISM, 2005, 1 (04) : 231 - 244
  • [22] Differential regulation of intestinal lipid metabolism-related genes in obesity-resistant A/J vs. obesity-prone C57BL/6J mice
    Kondo, Hidehiko
    Minegishi, Yoshihiko
    Komine, Yumiko
    Mori, Takuya
    Matsumoto, Ichiro
    Abe, Keiko
    Tokimitsu, Ichiro
    Hase, Tadashi
    Murase, Takatoshi
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 2006, 291 (05): : E1092 - E1099
  • [23] Regulation of gene expression in RAW 264.7 macrophage cell line by interferon-γ
    Kota, RS
    Rutledge, JC
    Gohil, K
    Kumar, A
    Enelow, RI
    Ramana, CV
    [J]. BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2006, 342 (04) : 1137 - 1146
  • [24] Peroxisome proliferator-activated receptor-γ co-activator 1α-mediated metabolic remodeling of skeletal myocytes mimics exercise training and reverses lipid-induced mitochondrial inefficiency
    Koves, TR
    Li, P
    An, J
    Akimoto, T
    Slentz, D
    Ilkayeva, O
    Dohm, GL
    Yan, Z
    Newgard, CB
    Muoio, DM
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (39) : 33588 - 33598
  • [25] Genomic analysis of the response of mouse models to high-fat feeding shows a major role of nuclear receptors in the simultaneous regulation of lipid and inflammatory genes
    Kreeft, AJ
    Moen, CJA
    Porter, G
    Kasanmoentalib, S
    Sverdlov, R
    van Gorp, PJ
    Havekes, LM
    Frants, RR
    Hofker, MH
    [J]. ATHEROSCLEROSIS, 2005, 182 (02) : 249 - 257
  • [26] PPARγ mediates high-fat diet-induced adipocyte hypertrophy and insulin resistance
    Kubota, N
    Terauchi, Y
    Miki, H
    Tamemoto, H
    Yamauchi, T
    Komeda, K
    Satoh, S
    Nakano, R
    Ishii, C
    Sugiyama, T
    Eto, K
    Tsubamoto, Y
    Okuno, A
    Murakami, K
    Sekihara, H
    Hasegawa, G
    Naito, M
    Toyoshima, Y
    Tanaka, S
    Shiota, K
    Kitamura, T
    Fujita, T
    Ezaki, O
    Aizawa, S
    Nagai, R
    Tobe, K
    Kimura, S
    Kadowaki, T
    [J]. MOLECULAR CELL, 1999, 4 (04) : 597 - 609
  • [27] Epidemiology and treatment of the metabolic syndrome
    Laaksonen, DE
    Niskanen, L
    Lakka, HM
    Lakka, TA
    Uusitupa, M
    [J]. ANNALS OF MEDICINE, 2004, 36 (05) : 332 - 346
  • [28] PPARδ regulates glucose metabolism and insulin sensitivity
    Lee, CH
    Olson, P
    Hevener, A
    Mehl, I
    Chong, LW
    Olefsky, JM
    Gonzalez, FJ
    Ham, J
    Kang, H
    Peters, JM
    Evans, RM
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2006, 103 (09) : 3444 - 3449
  • [29] ErmineJ: Tool for functional analysis of gene expression data sets
    Lee, HK
    Braynen, W
    Keshav, K
    Pavlidis, P
    [J]. BMC BIOINFORMATICS, 2005, 6 (1)
  • [30] PGC-1α deficiency causes multi-system energy metabolic derangements:: Muscle dysfunction, abnormal weight control and hepatic steatosis
    Leone, TC
    Lehman, JJ
    Finck, BN
    Schaeffer, PJ
    Wende, AR
    Boudina, S
    Courtois, M
    Wozniak, DF
    Sambandam, N
    Bernal-Mizrachi, C
    Chen, ZJ
    Holloszy, JO
    Medeiros, DM
    Schmidt, RE
    Saffitz, JE
    Abel, ED
    Semenkovich, CF
    Kelly, DP
    [J]. PLOS BIOLOGY, 2005, 3 (04) : 672 - 687