Literature DB >> 15589683

Identification of promethin and PGLP as two novel up-regulated genes in PPARgamma1-induced adipogenic mouse liver.

Songtao Yu1, Navin Viswakarma, Surinder K Batra, M Sambasiva Rao, Janardan K Reddy.   

Abstract

Peroxisome proliferator-activated receptor (PPAR) isoforms, alpha, gamma and beta/delta, function as important lipid sensors as well as key regulators of energy homeostasis. PPARalpha plays a dynamic role in energy combustion by transcriptionally upregulating fatty acid oxidation systems primarily in liver, whereas PPARgamma functions as a regulator of adipogenesis and lipid storage. Overexpression of PPARgamma, using adenoviral expression approach, in PPARalpha deficient mouse liver results in hepatic steatosis with concurrent expression of adipocyte specific genes. In this study, to gain a global molecular understanding of PPARgamma1-induced gene expression in liver, we have analyzed gene expression profiles using the Affymetrix GeneChip mouse expression array set 430, that enables a comprehensive gene expression profiling with >39,000 transcripts. Microarray data analysis provided us with over 278 genes up-regulated fourfold or higher, and 121 genes down-regulated fourfold or higher in liver with PPARgamma-induced hepatic adiposis. We have found 101 uncharacterized genes out of 278 up-regulated and 29 uncharacterized among the down-regulated gene categories, respectively. Of 177 functionally characterized candidate genes in the up-regulated category many appear to be involved in adipogenesis, lipid metabolism and signal transduction. To focus attention on the uncharacterized genes in the up-regulated category, we cloned the full-length cDNAs of two novel candidates, which we designated as promethin and PGLP. Promethin, a 15-kDa cytosolic protein, is not normally expressed in liver but induced robustly in liver with hepatic adiposis caused by PPARgamma overexpression. PGLP, which encodes a 38 kDa cytoplasmic membranous protein, is a low abundant transcript in normal liver, but induced dramatically following PPARgamma overexpression. The expression of these two genes was not increased in fatty livers induced by fasting or choline deficiency. The identification of these and other novel PPARgamma-target genes should provide a basis for understanding the molecular mechanisms underlying energy storage and lipid homeostasis.

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Year:  2004        PMID: 15589683     DOI: 10.1016/j.biochi.2004.09.015

Source DB:  PubMed          Journal:  Biochimie        ISSN: 0300-9084            Impact factor:   4.079


  12 in total

Review 1.  PPARgamma in human and mouse physiology.

Authors:  Sami Heikkinen; Johan Auwerx; Carmen A Argmann
Journal:  Biochim Biophys Acta       Date:  2007-03-27

2.  Identification and tissue-specific expression of a promethin-like homolog in amphioxus Branchiostoma belcheri.

Authors:  Y Zhang; S C Zhang; Y J Liang
Journal:  Mol Biol Rep       Date:  2009-08-15       Impact factor: 2.316

3.  LDAF1 and Seipin Form a Lipid Droplet Assembly Complex.

Authors:  Jeeyun Chung; Xudong Wu; Talley J Lambert; Zon Weng Lai; Tobias C Walther; Robert V Farese
Journal:  Dev Cell       Date:  2019-11-07       Impact factor: 12.270

4.  Gene Expression Changes Induced by PPAR Gamma Agonists in Animal and Human Liver.

Authors:  Alexandra Rogue; Catherine Spire; Manuel Brun; Nancy Claude; André Guillouzo
Journal:  PPAR Res       Date:  2010-10-19       Impact factor: 4.964

5.  Nuclear Receptor Cofactors in PPARgamma-Mediated Adipogenesis and Adipocyte Energy Metabolism.

Authors:  Emily Powell; Peter Kuhn; Wei Xu
Journal:  PPAR Res       Date:  2007       Impact factor: 4.964

6.  PPARG in Human Adipogenesis: Differential Contribution of Canonical Transcripts and Dominant Negative Isoforms.

Authors:  M Aprile; M R Ambrosio; V D'Esposito; F Beguinot; P Formisano; V Costa; A Ciccodicola
Journal:  PPAR Res       Date:  2014-03-23       Impact factor: 4.964

7.  PPARγ Modulates Long Chain Fatty Acid Processing in the Intestinal Epithelium.

Authors:  Kalina Duszka; Matej Oresic; Cedric Le May; Jürgen König; Walter Wahli
Journal:  Int J Mol Sci       Date:  2017-11-28       Impact factor: 5.923

8.  Identification of seipin-linked factors that act as determinants of a lipid droplet subpopulation.

Authors:  Michal Eisenberg-Bord; Muriel Mari; Uri Weill; Eden Rosenfeld-Gur; Ofer Moldavski; Inês G Castro; Krishnakant G Soni; Nofar Harpaz; Tim P Levine; Anthony H Futerman; Fulvio Reggiori; Vytas A Bankaitis; Maya Schuldiner; Maria Bohnert
Journal:  J Cell Biol       Date:  2017-11-29       Impact factor: 10.539

9.  Analysis of vanin-1 upregulation and lipid accumulation in hepatocytes in response to a high-fat diet and free fatty acids.

Authors:  Wataru Motomura; Takayuki Yoshizaki; Nobuhiko Takahashi; Shima Kumei; Yusuke Mizukami; Seong-Jae Jang; Yutaka Kohgo
Journal:  J Clin Biochem Nutr       Date:  2012-06-08       Impact factor: 3.114

10.  Skeletal muscle-specific deletion of lipoprotein lipase enhances insulin signaling in skeletal muscle but causes insulin resistance in liver and other tissues.

Authors:  Hong Wang; Leslie A Knaub; Dalan R Jensen; Dae Young Jung; Eun-Gyoung Hong; Hwi-Jin Ko; Alison M Coates; Ira J Goldberg; Becky A de la Houssaye; Rachel C Janssen; Carrie E McCurdy; Shaikh M Rahman; Cheol Soo Choi; Gerald I Shulman; Jason K Kim; Jacob E Friedman; Robert H Eckel
Journal:  Diabetes       Date:  2008-10-24       Impact factor: 9.461

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