Unknown,Transcriptomics,Genomics,Proteomics

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Gene expression analysis of Ncor1 muscle-specific knockout and PGC-1alpha muscle-specific transgenic skeletal muscle


ABSTRACT: In the present study we have studied the mechanistic and functional aspects of NCoR1 function in mouse skeletal muscle. NCoR1 muscle-specific knockout mice exhibited an increased oxidative metabolism. Global gene expression analysis revealed a high overlap between the effects of NCoR1 deletion and peroxisome proliferator-activated receptor (PPAR) gamma coactivator 1alpha (PGC-1alpha) overexpression on oxidative metabolism in skeletal muscle. The repressive effect of NCoR1 on oxidative phosphorylation gene expression specifically antagonizes PGC-1alpha-mediated coactivation of ERRalpha. We therefore delineated the molecular mechanism by which a transcriptional network controlled by corepressor and coactivator proteins determines the metabolic properties of skeletal muscle, thus representing a potential therapeutic target for metabolic diseases. Gene expression of a total of 20 gastrocnemius samples from control (CON, n = 5), NCoR1 muscle-specific knockout (NCoR1 MKO, n = 5), wild type (WT, n = 5) and PGC-1alpha muscle-specific transgenic (PGC-1alpha mTg, n = 5) adult male mice was analyzed using GeneChip® Gene 1.0 ST Array System (Affymetrix). NCoR1 MKO and PGC-1alpha mTg samples were compared to CON and WT samples, respectively.

ORGANISM(S): Mus musculus

SUBMITTER: Joaquín Pérez-Schindler 

PROVIDER: E-GEOD-40439 | biostudies-arrayexpress |

REPOSITORIES: biostudies-arrayexpress

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Publications

The corepressor NCoR1 antagonizes PGC-1α and estrogen-related receptor α in the regulation of skeletal muscle function and oxidative metabolism.

Pérez-Schindler Joaquín J   Summermatter Serge S   Salatino Silvia S   Zorzato Francesco F   Beer Markus M   Balwierz Piotr J PJ   van Nimwegen Erik E   Feige Jérôme N JN   Auwerx Johan J   Handschin Christoph C  

Molecular and cellular biology 20121001 24


Skeletal muscle exhibits a high plasticity and accordingly can quickly adapt to different physiological and pathological stimuli by changing its phenotype largely through diverse epigenetic mechanisms. The nuclear receptor corepressor 1 (NCoR1) has the ability to mediate gene repression; however, its role in regulating biological programs in skeletal muscle is still poorly understood. We therefore studied the mechanistic and functional aspects of NCoR1 function in this tissue. NCoR1 muscle-speci  ...[more]

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