Literature DB >> 12660871

Differential gene expression between visceral and subcutaneous fat depots.

G Atzmon1, X M Yang, R Muzumdar, X H Ma, I Gabriely, N Barzilai.   

Abstract

Abdominal obesity has been linked to the development of insulin resistance and Type 2 diabetes mellitus (DM2). By surgical removal of visceral fat (VF) in a variety of rodent models, we prevented insulin resistance and glucose intolerance, establishing a cause-effect relationship between VF and the metabolic syndrome. To characterize the biological differences between visceral and peripheral fat depots, we obtained perirenal visceral (VF) and subcutaneous (SC) fat from 5 young rats. We extracted mRNA from the fat tissue and performed gene array hybridization using Affymetrix technology with a platform containing 9 000 genes. Out of the 1 660 genes that were expressed in fat tissue, 297 (17.9 %) genes show a two-fold or higher difference in their expression between the two tissues. We present the 20 genes whose expression is higher in VF fat (by 3 - 7 fold) and the 20 genes whose expression is higher in SC fat (by 3 - 150 fold), many of which are predominantly involved in glucose homeostasis, insulin action, and lipid metabolism. We confirmed the findings of gene array expression and quantified the changes in expression in VF of genes involved in insulin resistance (PPARgamma leptin) and its syndrome (angiotensinogen and plasminogen activating inhibitor-1, PAI-1) by real-time PCR (qRT-PCR) technology. Finally, we demonstrated increased expression of resistin in VF by around 12-fold and adiponectin by around 4-fold, peptides that were not part of the gene expression platform. These results indicate that visceral fat and subcutaneous fat are biologically distinct.

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Year:  2002        PMID: 12660871     DOI: 10.1055/s-2002-38250

Source DB:  PubMed          Journal:  Horm Metab Res        ISSN: 0018-5043            Impact factor:   2.936


  44 in total

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2.  Aging per se increases the susceptibility to free fatty acid-induced insulin resistance.

Authors:  Francine H Einstein; Derek M Huffman; Sigal Fishman; Elina Jerschow; Hye J Heo; Gil Atzmon; Clyde Schechter; Nir Barzilai; Radhika H Muzumdar
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3.  Regional differences in oxidative capacity of rat white adipose tissue are linked to the mitochondrial content of mature adipocytes.

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4.  Genomic mapping of direct and correlated responses to long-term selection for rapid growth rate in mice.

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5.  Comparison of hydrogenated vegetable shortening and nutritionally complete high-fat diet on limited access-binge behavior in rats.

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6.  Noninvasive tracking of gene expression by reporter transgene imaging.

Authors:  Roger H Unger
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Review 7.  Aging and adipose tissue: potential interventions for diabetes and regenerative medicine.

Authors:  Allyson K Palmer; James L Kirkland
Journal:  Exp Gerontol       Date:  2016-02-26       Impact factor: 4.032

8.  Gender-Based Differences in Leptinemia in Healthy Aging, Non-obese Individuals Associate with Increased Marker of Oxidative Stress.

Authors:  Anshu Agrawal; Elaine V Lourenço; Sudhir Gupta; Antonio La Cava
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9.  Hypertension and abnormal fat distribution but not insulin resistance in mice with P465L PPARgamma.

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10.  Critical role of the mesenteric depot versus other intra-abdominal adipose depots in the development of insulin resistance in young rats.

Authors:  Karyn J Catalano; Darko Stefanovski; Richard N Bergman
Journal:  Diabetes       Date:  2010-03-18       Impact factor: 9.461

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