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Implantation of Total Artificial Heart in Congenital Heart Disease
Published on: July 18, 2014
In Vitro Modeling of Congenital Heart Defects Associated with an NKX2-5 Mutation Revealed a Dysregulation in
Abeer F Zakariyah1, Rashida F Rajgara1, Ellias Horner1,2,3
1Department of Biochemistry, Microbiology, and Immunology, University of Ottawa, Ottawa, Ontario, Canada.
Abstract:
The Nkx2-5 gene codes for a transcription factor that plays a critical role in heart development. Heterozygous mutations in NKX2-5 in both human and mice result in congenital heart defects (CHDs). However, the molecular mechanisms by which these mutations cause the disease are still unknown. Recently, we have generated the heterozygous mouse model of the human CHDs associated mutation NKX2-5 R142C (Nkx2-5R141C/+ mouse ortholog of human NKX2-5 R142C variant) that developed septal and conduction defects. This study generated a heterozygous Nkx2-5 R141C mouse embryonic stem cell line (Nkx2-5R141C/+ mESCs) to model CHDs in vitro. We observed that Nkx2-5R141C/+ mESCs display an alteration in the expression of genes that are essential for normal heart development. Furthermore, the reduced cardiomyogenesis is paralleled by a reduction in nuclear import of Nkx2-5 protein. Examination of the Nkx2-5R141C/+ embryos at E8.5 revealed a transient loss of cardiomyogenesis, which is consistent with the phenotype observed in vitro. Moreover, gene expression profiling of Nkx2-5R141C/+ cells at an early stage of cardiac differentiation revealed pronounced deregulation of several cardiac differentiation and function genes. Collectively, our data showed that heterozygosity for the R141C mutation results in disruption of the cellular distribution of Nkx2-5 protein, a transient reduction in cardiomyogenesis that may disrupt the early patterning of the heart, and this, in turn, affects the intricate orchestration of signaling pathways leading to downregulation of Bone morphogenetic protein (BMP) and Notch signaling. Therefore, we have developed mESCs model of a human CHD, providing an in vitro system to examine early stages of heart development, which are otherwise difficult to study in vivo. Stem Cells 2018;36:514-526.
Insights
A mutation in the NKX2-5 gene causes congenital heart defects (CHDs) by disrupting protein function and reducing heart cell formation. This study developed a mouse stem cell model to investigate early heart development disruptions in CHDs.
Area of Science:
- Developmental Biology
- Genetics
- Cardiovascular Research
Background:
- Congenital heart defects (CHDs) are common birth abnormalities.
- Mutations in the NKX2-5 gene are linked to CHDs in humans and mice.
- The precise molecular mechanisms underlying NKX2-5 mutation-induced CHDs remain unclear.
Purpose of the Study:
- To generate and characterize a mouse embryonic stem cell (mESC) model for studying NKX2-5-associated CHDs in vitro.
- To investigate the impact of the NKX2-5 R141C mutation on cardiomyogenesis and gene expression during early heart development.
Main Methods:
- Generation of a heterozygous Nkx2-5 R141C mESC line (Nkx2-5R141C/+ mESCs).
- Analysis of gene expression profiles in Nkx2-5R141C/+ mESCs during cardiac differentiation.
- Assessment of Nkx2-5 protein nuclear import and cardiomyogenesis in vitro.
- Examination of Nkx2-5R141C/+ mouse embryos at embryonic day 8.5 (E8.5).
Main Results:
- Nkx2-5R141C/+ mESCs exhibited altered expression of key cardiac development genes.
- Reduced cardiomyogenesis correlated with decreased nuclear import of the Nkx2-5 protein.
- Heterozygous Nkx2-5 mutation led to transient cardiomyogenesis loss and disrupted BMP and Notch signaling pathways.
- Gene expression profiling revealed significant deregulation of cardiac differentiation and function genes.
Conclusions:
- The NKX2-5 R141C mutation disrupts Nkx2-5 protein localization, impacting early cardiomyogenesis and heart patterning.
- This mESC model provides a valuable in vitro system for studying the early molecular events in CHDs.
- The findings highlight the critical role of Nkx2-5 in orchestrating signaling pathways essential for normal heart development.
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