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Published on: February 12, 2021
Overexpression of bone morphogenetic protein 10 in myocardium disrupts cardiac postnatal hypertrophic growth
Hanying Chen1, Weidong Yong, Shuxun Ren
1Herman B. Wells Center for Pediatric Research, Department of Pediatrics, Division of Pediatric Cardiology, Indiana University School of Medicine, Indianapolis, Indiana 46202, USA.
Insights
Researchers identified a novel genetic pathway regulating postnatal cardiac growth, independent of workload. This discovery provides new insights into heart development and potential therapeutic targets for cardiac conditions.
Area of Science:
- Cardiovascular Biology
- Developmental Biology
- Genetics
Background:
- Postnatal cardiac hypertrophies are typically classified as physiological or pathological, both induced by hemodynamic load.
- Cardiac postnatal hypertrophic growth is considered part of maturation, independent of workload, but its functional significance remains unclear.
- Experimental models to study cardiac growth without hemodynamic load are lacking.
Purpose of the Study:
- To investigate the functional significance of cardiac postnatal hypertrophic growth.
- To develop a model to study cardiac growth independent of hemodynamic load.
- To identify genetic pathways regulating cardiac postnatal hypertrophic growth.
Main Methods:
- Generation of a novel transgenic mouse model (alphaMHC-BMP10) overexpressing bone morphogenetic protein 10 (BMP10) in postnatal myocardium.
- Morphometric analysis of cardiomyocytes to assess cardiac growth.
- Physiological analysis to evaluate heart responses to hypertrophic stimuli.
- Systematic analysis of intracellular pathways.
Main Results:
- AlphaMHC-BMP10 mice exhibit significantly smaller hearts (half normal size) due to defective cardiomyocyte postnatal hypertrophic growth.
- Heart responses to physiological and pathological hypertrophic stimuli remain normal in these mice.
- A novel genetic pathway regulating cardiac postnatal hypertrophic growth was identified.
Conclusions:
- Cardiac postnatal hypertrophic growth can be genetically modified and is distinct from physiological and pathological hypertrophies.
- BMP10 plays a crucial role in regulating cardiomyocyte postnatal hypertrophic growth.
- This study reveals a previously undefined cardiac growth event and its regulatory pathway.
Abstract:
Postnatal cardiac hypertrophies have traditionally been classified into physiological or pathological hypertrophies. Both of them are induced by hemodynamic load. Cardiac postnatal hypertrophic growth is regarded as a part of the cardiac maturation process that is independent of the cardiac working load. However, the functional significance of this biological event has not been determined, mainly because of the difficulty in creating an experimental condition for testing the growth potential of functioning heart in the absence of hemodynamic load. Recently, we generated a novel transgenic mouse model (alphaMHC-BMP10) in which the cardiac-specific growth factor bone morphogenetic protein 10 (BMP10) is overexpressed in postnatal myocardium. These alphaMHC-BMP10 mice appear to have normal cardiogenesis throughout embryogenesis, but develop to smaller hearts within 6 weeks after birth. alphaMHC-BMP10 hearts are about half the normal size with 100% penetrance. Detailed morphometric analysis of cardiomyocytes clearly indicated that the compromised cardiac growth in alphaMHC-BMP10 mice was solely because of defect in cardiomyocyte postnatal hypertrophic growth. Physiological analysis further demonstrated that the responses of these hearts to both physiological (e.g. exercise-induced hypertrophy) and pathological hypertrophic stimuli remain normal. In addition, the alphaMHC-BMP10 mice develop subaortic narrowing and concentric myocardial thickening without obstruction by four weeks of age. Systematic analysis of potential intracellular pathways further suggested a novel genetic pathway regulating this previously undefined cardiac postnatal hypertrophic growth event. This is the first demonstration that cardiac postnatal hypertrophic growth can be specifically modified genetically and dissected out from physiological and pathological hypertrophies.
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