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Evidence for coregulation of myocardial gene expression by MEF2 and NFAT in human heart failure
Mary E Putt1, Sridhar Hannenhalli, Yun Lu
1Department of Biostatistics and Epidemiology, Center for Clinical Epidemiology and Biostatistics, University of Pennsylvania School of Medicine, Philadelphia, PA, USA.
Background:
Pathological stresses induce heart failure in animal models through activation of multiple cardiac transcription factors (TFs) working cooperatively. However, interactions among TFs in human heart failure are less understood. Here, we use genomic data to examine the evidence that 5 candidate TF families coregulate gene expression in human heart failure.
Methods And Results:
RNA isolates from failing (n=86) and nonfailing (n=16) human hearts were hybridized with Affymetrix HU133A arrays. For each gene on the array, we determined conserved MEF2, NFAT, NKX , GATA , and FOX binding motifs within the -1-kb promoter region using human-murine sequence alignments and the TRANSFAC database. Across 9076 genes expressed in the heart, TF-binding motifs tended to cluster together in nonrandom patterns within promoters of specific genes (P values ranging from 10(-2) to 10(-21)), suggesting coregulation. We then modeled differential expression as a function of TF combinations present in promoter regions. Several combinations predicted increased odds of differential expression in the failing heart, with the highest odds ratios noted for genes containing both MEF2 and NFAT binding motifs together in the same promoter region (peak odds ratio, 3.47; P=0.005).
Conclusions:
These findings provide genomic evidence for coregulation of myocardial gene expression by MEF2 and NFAT in human heart failure. In doing so, they extend the paradigm of combinatorial regulation of gene expression to the human heart and identify new target genes for mechanistic study. More broadly, we demonstrate how integrating diverse sources of genomic data yields novel insight into human cardiovascular disorders.
Insights
Genomic data reveals that MEF2 and NFAT transcription factors coregulate genes in human heart failure. This finding extends the understanding of gene regulation in the human heart and identifies new therapeutic targets.
Area of Science:
- Genomics
- Molecular Biology
- Cardiovascular Research
Background:
- Pathological stresses activate cardiac transcription factors (TFs) in animal models of heart failure.
- TF interactions in human heart failure are not well understood.
- This study investigates coregulation by five candidate TF families in human heart failure using genomic data.
Purpose of the Study:
- To examine genomic evidence for coregulation of gene expression by five candidate TF families in human heart failure.
- To identify specific TF combinations involved in heart failure pathogenesis.
- To extend the paradigm of combinatorial gene regulation to the human heart.
Main Methods:
- Analyzed RNA from failing (n=86) and nonfailing (n=16) human hearts using Affymetrix HU133A arrays.
- Identified conserved MEF2, NFAT, NKX, GATA, and FOX binding motifs in gene promoters using sequence alignments and TRANSFAC.
- Modeled differential gene expression based on TF combinations in promoter regions.
Main Results:
- TF binding motifs were nonrandomly clustered in promoters of expressed genes, suggesting coregulation.
- Combinations of TFs in promoter regions predicted differential gene expression in failing hearts.
- Genes with both MEF2 and NFAT binding motifs showed the highest odds ratio (3.47, P=0.005) for differential expression.
Conclusions:
- Genomic evidence supports MEF2 and NFAT coregulation of myocardial gene expression in human heart failure.
- This study extends combinatorial gene regulation principles to the human heart.
- Identified new target genes for further mechanistic investigation in cardiovascular disorders.
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