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Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Multi-omics integration identifies key upstream regulators of pathomechanisms in hypertrophic cardiomyopathy due to
J Pei1,2,3, M Schuldt4, E Nagyova5
1Division Heart and Lungs, Department of Cardiology, University Medical Center Utrecht, University of Utrecht, 3584 CT, Utrecht, The Netherlands.
Insights
Hypertrophic cardiomyopathy (HCM) research reveals key regulators and biomarkers. Multi-omics analysis identified altered pathways and potential therapeutic targets for this common genetic heart disease.
Area of Science:
- Cardiovascular Biology
- Genetics
- Molecular Biology
Background:
- Hypertrophic cardiomyopathy (HCM) is the most prevalent genetic cardiac muscle disease, often linked to MYBPC3 mutations.
- The upstream regulatory pathways driving HCM pathogenesis remain largely uncharacterized.
Purpose of the Study:
- To elucidate the pathomechanisms of HCM by employing a multi-omics approach.
- To compare hearts with MYBPC3 mutations to control hearts to identify disease-specific molecular alterations.
Main Methods:
- Utilized H3K27ac ChIP-seq, RNA-seq, and proteomics to analyze patient and control heart samples.
- Integrated multi-omics datasets to identify differentially regulated genes, proteins, and epigenetic modifications.
- Examined transcription factor (TF) binding motifs and validated candidate TFs in stem cell-derived cardiomyocytes.
Main Results:
- Identified 9310 differentially acetylated regions and 2033 differentially expressed genes.
- Discovered 441 differentially expressed proteins, highlighting altered extracellular matrix, muscle contraction, and metabolism.
- Pinpointed 9 TFs, including KLF15 and AR, as potential upstream regulators and identified 38 protein-coding genes as potential biomarkers.
Conclusions:
- Integrated multi-omics data successfully identified key effector genes and protein networks driving HCM pathogenesis.
- Highlighted 38 protein-coding genes as potential plasma biomarkers for HCM.
- Identified 9 TFs as potential upstream regulators and therapeutic targets for MYBPC3-associated HCM.
Background:
Hypertrophic cardiomyopathy (HCM) is the most common genetic disease of the cardiac muscle, frequently caused by mutations in MYBPC3. However, little is known about the upstream pathways and key regulators causing the disease. Therefore, we employed a multi-omics approach to study the pathomechanisms underlying HCM comparing patient hearts harboring MYBPC3 mutations to control hearts.
Results:
Using H3K27ac ChIP-seq and RNA-seq we obtained 9310 differentially acetylated regions and 2033 differentially expressed genes, respectively, between 13 HCM and 10 control hearts. We obtained 441 differentially expressed proteins between 11 HCM and 8 control hearts using proteomics. By integrating multi-omics datasets, we identified a set of DNA regions and genes that differentiate HCM from control hearts and 53 protein-coding genes as the major contributors. This comprehensive analysis consistently points toward altered extracellular matrix formation, muscle contraction, and metabolism. Therefore, we studied enriched transcription factor (TF) binding motifs and identified 9 motif-encoded TFs, including KLF15, ETV4, AR, CLOCK, ETS2, GATA5, MEIS1, RXRA, and ZFX. Selected candidates were examined in stem cell-derived cardiomyocytes with and without mutated MYBPC3. Furthermore, we observed an abundance of acetylation signals and transcripts derived from cardiomyocytes compared to non-myocyte populations.
Conclusions:
By integrating histone acetylome, transcriptome, and proteome profiles, we identified major effector genes and protein networks that drive the pathological changes in HCM with mutated MYBPC3. Our work identifies 38 highly affected protein-coding genes as potential plasma HCM biomarkers and 9 TFs as potential upstream regulators of these pathomechanisms that may serve as possible therapeutic targets.
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