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High-fat diet leads to tissue-specific changes reflecting risk factors for diseases in DBA/2J mice

  • Rachael S. Hageman
  • , Asja Wagener
  • , Claudia Hantschel
  • , Karen L. Svenson
  • , Gary A. Churchill
  • , Gudrun A. Brockmann
  • Humboldt University of Berlin
  • Jackson Laboratory

Research output: Contribution to journalArticlepeer-review

44 Scopus citations

Abstract

The aim of this study was to characterize the responses of individual tissues to high-fat feeding as a function of mass, fat composition, and transcript abundance. We examined a panel of eight tissues [5 white adipose tissues (WAT), brown adipose tissue (BAT), liver, muscle] obtained from DBA/2J mice on either a standard breeding diet (SBD) or a high-fat diet (HFD). HFD led to weight gain, decreased insulin sensitivity, and tissue-specific responses, including inflammation, in these mice. The dietary fatty acids were partially metabolized and converted in both liver and fat tissues. Saturated fatty acids (SFA) were converted in the liver to monounsaturated fatty acids (MUFA) and polyunsaturated fatty acids (PUFA), and oleic acid (C18:1) was the preferred MUFA for storage of excess energy in all tissues of HFD-fed mice. Transcriptional changes largely reflected the tissue-specific fat deposition. SFA were negatively correlated with genes in the collagen family and processes involving the extracellular matrix. We propose a novel role of the tryptophan hydroxylase 2 (Tph2) gene in adipose tissues of diet-induced obesity. Tissue-specific responses to HFD were identified. Liver steatosis was evident in HFD-fed mice. Gonadal, retroperitoneal and subcutaneous adipose tissue and BAT exhibited severe inflammatory and immune responses. Mesenteric adipose tissue was the most metabolically active adipose tissue. Gluteal adipose tissue had the highest mass gain but was sluggish in its metabolism. In HFD conditions, BAT functioned largely like WAT in its role as a depot for excess energy, whereas WAT played a role in thermogenesis.

Original languageEnglish
Pages (from-to)55-66
Number of pages12
JournalPhysiological Genomics
Volume42
Issue number1
DOIs
StatePublished - Jun 2010

Keywords

  • Gene expression
  • Insulin
  • Obesity
  • Palmitic acid
  • Palmitoleic acid
  • Regenerating islet family
  • Serum amyloid A3
  • Stearic acid
  • Steatosis
  • Tissue panel
  • Tryptophan hydroxylase

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