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Published on: March 4, 2014
Pax3 is essential for normal cardiac neural crest morphogenesis but is not required during migration nor outflow
Michael Olaopa1, Hong-ming Zhou, Paige Snider
1Developmental Biology and Neonatal Medicine Program, HB Wells Center for Pediatric Research, Indiana University School of Medicine, Indianapolis, IN 46202, USA.
Insights
Pax3 transcription factor is vital for early neural crest progenitor formation. However, it is not required for cardiac neural crest cell migration or outflow tract septation during heart development.
Area of Science:
- Developmental biology
- Genetics
- Cardiovascular research
Background:
- Pax3 transcription factor is crucial for neural crest and muscle cell development.
- Cardiac neural crest cells are essential for heart development, including pharyngeal arch artery remodeling and outflow tract septation.
- The specific role of Pax3 in neural crest lineage during heart development remains unclear.
Purpose of the Study:
- To investigate the lineage-specific role of Pax3 in neural crest function during heart development.
- To determine if Pax3 is required for cardiac neural crest cell migration and outflow tract septation.
Main Methods:
- Conditional deletion of Pax3 in premigratory and migratory neural crest using Wnt1-Cre and Ap2α-Cre.
- Deletion of Pax3 in migratory neural crest using P0-Cre.
- Genetic ablation of neural crest lineage using a Wnt1-Cre-activated diphtheria toxin system.
Main Results:
- Conditional deletion of Pax3 in neural crest using Wnt1-Cre did not result in heart defects.
- Ap2α-Cre mediated deletion of Pax3 led to double outlet right ventricle heart defects.
- Ablation of Wnt1-Cre-expressing neural crest cells caused persistent truncus arteriosus.
Conclusions:
- Pax3 is essential for early neural crest progenitor formation.
- Pax3 is not required for the subsequent migration or outflow tract septation by cardiac neural crest cells.
Abstract:
Systemic loss-of-function studies have demonstrated that Pax3 transcription factor expression is essential for dorsal neural tube, early neural crest and muscle cell lineage morphogenesis. Cardiac neural crest cells participate in both remodeling of the pharyngeal arch arteries and outflow tract septation during heart development, but the lineage specific role of Pax3 in neural crest function has not yet been determined. To gain insight into the requirement of Pax3 within the neural crest, we conditionally deleted Pax3 in both the premigratory and migratory neural crest populations via Wnt1-Cre and Ap2α-Cre and via P0-Cre in only the migratory neural crest, and compared these phenotypes to the pulmonary atresia phenotype observed following the systemic loss of Pax3. Surprisingly, using Wnt1-Cre deletion there are no resultant heart defects despite the loss of Pax3 from the premigratory and migratory neural crest. In contrast, earlier premigratory and migratory Ap2α-Cre mediated deletion resulted in double outlet right ventricle alignment heart defects. In order to assess the tissue-specific contribution of neural crest to heart development, genetic ablation of neural crest lineage using a Wnt1-Cre-activated diphtheria toxin fragment-A cell-killing system was employed. Significantly, ablation of Wnt1-Cre-expressing neural crest cells resulted in fully penetrant persistent truncus arteriosus malformations. Combined, the data show that Pax3 is essential for early neural crest progenitor formation, but is not required for subsequent cardiac neural crest progeny morphogenesis involving their migration to the heart or septation of the outflow tract.
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