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Transcriptome Analysis of Cardiac Hypertrophic Growth in MYBPC3-Null Mice Suggests Early Responders in Hypertrophic
Emily Farrell1, Annie E Armstrong1, Adrian C Grimes1
1Department of Pediatrics, University of Wisconsin School of Medicine and Public Health, Madison, WI, United States.
Insights
This study identifies early genetic mediators of hypertrophic cardiomyopathy (HCM) in mice lacking cardiac myosin-binding protein C. Early changes in Xirp2 and Zbtb16 expression precede hypertrophy, suggesting roles in disease development.
Area of Science:
- Cardiovascular Genetics
- Molecular Cardiology
- Genetic Diseases
Background:
- Hypertrophic cardiomyopathy (HCM) is the most common genetic cardiac disease, affecting 1 in 200 individuals.
- HCM can lead to severe hypertrophy, heart failure, and sudden cardiac death (SCD).
- Understanding early molecular events driving HCM phenotype is crucial for identifying therapeutic targets.
Purpose of the Study:
- To differentiate physiologic and pathophysiologic hypertrophic growth responses in a mouse model of HCM.
- To identify early genetic mediators involved in the development of cardiomegaly in the cardiac myosin-binding protein C-null (cMyBP-C-/-) mouse model.
- To investigate genes dysregulated prior to overt hypertrophy.
Main Methods:
- Microarray analysis of left ventricles from wild-type (WT) and cMyBP-C-/- mice at postnatal day (PND) 1 and PND 9.
- Identification of differentially expressed genes (≥2-fold change) associated with hypertrophic vs. physiologic growth.
- Analysis of gene expression changes preceding the appearance of the HCM phenotype.
Main Results:
- Identified 61 genes exclusive to pathophysiologic growth and 30 genes exclusive to physiologic growth.
- Found 130 genes with expression changes in both WT and cMyBP-C-/- hearts.
- Discovered prehypertrophic upregulation of genes including Xirp2 and Zbtb16 in cMyBP-C-/- hearts, alongside genes in mechanosensing and potassium channel pathways.
Conclusions:
- Transcriptome analysis provides a comprehensive dataset comparing physiologic and hypertrophic growth in cMyBP-C null hearts.
- Highlights the role of extracellular matrix pathways in hypertrophic growth and early potassium channel dysregulation.
- Prehypertrophic upregulation of Xirp2 and Zbtb16 suggests their involvement in HCM pathogenesis, potentially through stress-sensing mechanisms.
Abstract:
Rationale: With a prevalence of 1 in 200 individuals, hypertrophic cardiomyopathy (HCM) is thought to be the most common genetic cardiac disease, with potential outcomes that include severe hypertrophy, heart failure, and sudden cardiac death (SCD). Though much research has furthered our understanding of how HCM-causing mutations in genes such as cardiac myosin-binding protein C (MYBPC3) impair contractile function, it remains unclear how such dysfunction leads to hypertrophy and/or arrhythmias, which comprise the HCM phenotype. Identification of early response mediators could provide rational therapeutic targets to reduce disease severity. Our goal was to differentiate physiologic and pathophysiologic hypertrophic growth responses and identify early genetic mediators in the development of cardiomegaly in the cardiac myosin-binding protein C-null (cMyBP-C-/-) mouse model of HCM. Methods and Results: We performed microarray analysis on left ventricles of wild-type (WT) and cMyBPC-/- mice (n = 7 each) at postnatal day (PND) 1 and PND 9, before and after the appearance of an overt HCM phenotype. Applying the criteria of ≥2-fold change, we identified genes whose change was exclusive to pathophysiologic growth (n = 61), physiologic growth (n = 30), and genes whose expression changed ≥2-fold in both WT and cMyBP-C-/- hearts (n = 130). Furthermore, we identified genes that were dysregulated in PND1 cMyBP-C-/- hearts prior to hypertrophy, including genes in mechanosensing pathways and potassium channels linked to arrhythmias. One gene of interest, Xirp2, and its protein product, are regulated during growth but also show early, robust prehypertrophic upregulation in cMyBP-C-/- hearts. Additionally, the transcription factor Zbtb16 also shows prehypertrophic upregulation at both gene and protein levels. Conclusion: Our transcriptome analysis generated a comprehensive data set comparing physiologic vs. hypertrophic growth in mice lacking cMyBP-C. It highlights the importance of extracellular matrix pathways in hypertrophic growth and early dysregulation of potassium channels. Prehypertrophic upregulation of Xirp2 in cMyBP-C-/- hearts supports a growing body of evidence suggesting Xirp2 has the capacity to elicit both hypertrophy and arrhythmias in HCM. Dysregulation of Xirp2, as well as Zbtb16, along with other genes associated with mechanosensing regions of the cardiomyocyte implicate stress-sensing in these regions as a potentially important early response in HCM.
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