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En Face Endocardial Cushion Preparation for Planar Morphogenesis Analysis in Mouse Embryos
Published on: July 27, 2022
Cardiac neural crest ablation results in early endocardial cushion and hemodynamic flow abnormalities
Pei Ma1, Shi Gu1, Ganga H Karunamuni2
1Department of Biomedical Engineering, Case Western Reserve University, Cleveland, Ohio; and.
Abstract:
Cardiac neural crest cell (CNCC) ablation creates congenital heart defects (CHDs) that resemble those observed in many syndromes with craniofacial and cardiac consequences. The loss of CNCCs causes a variety of great vessel defects, including persistent truncus arteriosus and double-outlet right ventricle. However, because of the lack of quantitative volumetric measurements, less severe defects, such as great vessel size changes and valve defects, have not been assessed. Also poorly understood is the role of abnormal cardiac function in the progression of CNCC-related CHDs. CNCC ablation was previously reported to cause abnormal cardiac function in early cardiogenesis, before the CNCCs arrive in the outflow region of the heart. However, the affected functional parameters and how they correlate with the structural abnormalities were not fully characterized. In this study, using a CNCC-ablated quail model, we contribute quantitative phenotyping of CNCC ablation-related CHDs and investigate abnormal early cardiac function, which potentially contributes to late-stage CHDs. Optical coherence tomography was used to assay early- and late-stage embryos and hearts. In CNCC-ablated embryos at four-chambered heart stages, great vessel diameter and left atrioventricular valve leaflet volumes are reduced. Earlier, at cardiac looping stages, CNCC-ablated embryos exhibit abnormally twisted bodies, abnormal blood flow waveforms, increased retrograde flow percentage, and abnormal cardiac cushions. The phenotypes observed in this CNCC-ablation model were also strikingly similar to those found in an established avian fetal alcohol syndrome model, supporting the contribution of CNCC dysfunction to the development of alcohol-induced CHDs.
Insights
Cardiac neural crest cell (CNCC) ablation causes congenital heart defects (CHDs) by affecting early heart development. This study quantifies these defects and reveals abnormal early cardiac function contributing to CHDs.
Area of Science:
- Developmental biology
- Cardiovascular research
- Regenerative medicine
Background:
- Cardiac neural crest cells (CNCCs) are crucial for heart development.
- CNCC ablation leads to congenital heart defects (CHDs), including great vessel abnormalities.
- The role of early cardiac dysfunction in CNCC-related CHDs is not fully understood.
Purpose of the Study:
- To quantitatively phenotype CNCC ablation-induced CHDs.
- To investigate abnormal early cardiac function in CNCC-ablated embryos.
- To explore the correlation between early functional deficits and later structural abnormalities.
Main Methods:
- Utilized a CNCC-ablated quail model.
- Employed optical coherence tomography for quantitative volumetric and flow measurements.
- Assessed embryos and hearts at early (cardiac looping) and late (four-chambered heart) stages.
Main Results:
- CNCC ablation resulted in reduced great vessel diameter and left atrioventricular valve leaflet volumes.
- Early-stage defects included abnormal body twisting, altered blood flow, increased retrograde flow, and abnormal cardiac cushions.
- Phenotypes mimicked those in fetal alcohol syndrome models, suggesting CNCC dysfunction in alcohol-induced CHDs.
Conclusions:
- CNCC ablation causes significant structural and functional cardiac abnormalities.
- Early cardiac dysfunction precedes and potentially contributes to late-stage CHDs.
- CNCC dysfunction is implicated in the pathogenesis of alcohol-related heart defects.
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