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Published on: September 10, 2014
Tissue-specific gene expression and regulation in liver and muscle following chronic corticosteroid administration
Tung T Nguyen1, Richard R Almon2, Debra C Dubois3
1BioMaPS Institute for Quantitative Biology, Rutgers University, Piscataway, NJ, USA.
Abstract:
Although corticosteroids (CSs) affect gene expression in multiple tissues, the array of genes that are regulated by these catabolic steroids is diverse, highly tissue specific, and depends on their functions in the tissue. Liver has many important functions in performing and regulating diverse metabolic processes. Muscle, in addition to its mechanical role, is critical in maintaining systemic energy homeostasis and accounts for about 80% of insulin-directed glucose disposal. Consequently, a better understanding of CS pharmacogenomic effects in these tissues would provide valuable information regarding the tissue-specificity of transcriptional dynamics, and would provide insights into the underlying molecular mechanisms of action for both beneficial and detrimental effects. We performed an integrated analysis of transcriptional data from liver and muscle in response to methylprednisolone (MPL) infusion, which included clustering and functional annotation of clustered gene groups, promoter extraction and putative transcription factor (TF) identification, and finally, regulatory closeness (RC) identification. This analysis allowed the identification of critical transcriptional responses and CS-responsive functions in liver and muscle during chronic MPL administration, the prediction of putative transcriptional regulators relevant to transcriptional responses of CS-affected genes which are also potential secondary bio-signals altering expression levels of target-genes, and the exploration of the tissue-specificity and biological significance of gene expression patterns, CS-responsive functions, and transcriptional regulation. The analysis provided an integrated description of the genomic and functional effects of chronic MPL infusion in liver and muscle.
Insights
Corticosteroids (CSs) impact gene expression differently in the liver and muscle. This study reveals key transcriptional responses and regulatory factors in these tissues following methylprednisolone (MPL) infusion.
Area of Science:
- Pharmacogenomics
- Molecular Biology
- Systems Biology
Background:
- Corticosteroids (CSs) regulate gene expression in a tissue-specific manner.
- Understanding CS effects in liver and muscle is crucial due to their metabolic roles.
- Methylprednisolone (MPL) is a commonly used corticosteroid.
Purpose of the Study:
- To investigate the tissue-specific genomic and functional effects of chronic MPL infusion in liver and muscle.
- To identify critical transcriptional responses and CS-responsive functions.
- To predict transcriptional regulators and explore their biological significance.
Main Methods:
- Integrated analysis of transcriptional data from liver and muscle.
- Clustering and functional annotation of gene groups.
- Promoter extraction, transcription factor (TF) identification, and regulatory closeness (RC) analysis.
Main Results:
- Identified critical transcriptional responses and CS-responsive functions in liver and muscle.
- Predicted putative transcriptional regulators involved in CS-affected gene expression.
- Explored the tissue-specificity and biological significance of gene expression patterns and regulation.
Conclusions:
- Chronic MPL infusion induces distinct genomic and functional effects in liver and muscle.
- The study provides insights into the tissue-specific pharmacogenomic mechanisms of corticosteroids.
- Identified key regulatory networks underlying CS action in metabolic tissues.
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