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Published on: August 20, 2019
Novel PITX2c loss-of-function mutations associated with complex congenital heart disease
Dong Wei1, Xiao-Hui Gong1, Gang Qiu1
1Department of Neonatology, Shanghai Children's Hospital, Shanghai Jiao Tong University, Shanghai 200040, P.R. China.
Insights
Genetic mutations in the PITX2c gene are linked to congenital heart defects (CHDs) like transposition of the great arteries and ventricular septal defect. These loss-of-function mutations impair cardiovascular development in newborns.
Area of Science:
- Genetics
- Cardiovascular Biology
- Developmental Biology
Background:
- Congenital heart disease (CHD) is a leading cause of infant mortality and a common birth defect.
- Genetic factors are implicated in CHD pathogenesis, but causative genes are often unknown due to genetic heterogeneity.
- The PITX2c gene is vital for cardiovascular development.
Purpose of the Study:
- To investigate the role of the PITX2c gene in the genetic etiology of congenital heart disease.
- To identify novel mutations in PITX2c associated with CHD.
- To functionally characterize the identified PITX2c mutations.
Main Methods:
- Sequencing of the PITX2c gene in 170 neonates with CHD.
- Genotyping of relatives and 200 healthy controls.
- In silico prediction of mutation pathogenicity (MutationTaster, PolyPhen-2).
- Luciferase reporter assay to assess functional impact.
Main Results:
- Two novel heterozygous PITX2c mutations (p.R91Q and p.T129S) were identified in newborns with transposition of the great arteries and ventricular septal defect.
- These mutations co-segregated with CHD in affected families, exhibiting autosomal dominant inheritance with complete penetrance.
- Functional assays showed significantly reduced transcriptional activity for both mutations compared to wild-type PITX2c.
- Mutations were absent in 400 healthy chromosomes and predicted to be causative.
Conclusions:
- Loss-of-function mutations in PITX2c are associated with specific congenital heart defects in humans.
- This finding provides insight into the molecular mechanisms underlying CHD.
- PITX2c is a significant genetic contributor to congenital heart disease.
Abstract:
Congenital heart disease (CHD) is the most common form of birth defect in humans and is the leading non-infectious cause of infant mortality. Emerging evidence strongly suggests that genetic risk factors play an important role in the pathogenesis of CHD. However, CHD is of pronounced genetic heterogeneity, and the genetic defects responsible for CHD in an overwhelming majority of patients remain unclear. In this study, the entire coding region and splice junction sites of the PITX2c gene, which encodes a paired-like homeodomain transcription factor crucial for proper cardiovascular morphogenesis, was sequenced in 170 unrelated neonates with CHD. The available relatives of the mutation carriers and 200 unrelated ethnically matched healthy individuals were genotyped. The disease-causing potential of the PITX2c sequence variations was predicted by MutationTaster and PolyPhen-2. The functional effect of the mutations was characterized using a luciferase reporter assay system. As a result, 2 novel heterozygous PITX2c mutations, p.R91Q and p.T129S, were identified in 2 unrelated newborns with transposition of the great arteries and ventricular septal defect, respectively. A genetic scan of the pedigrees revealed that each mutation co-segregated with CHD transmitted in an autosomal dominant pattern with complete penetrance. The mutations, which altered the amino acids completely conserved evolutionarily, were absent in 400 normal chromosomes and were predicted to be causative. Functional analysis revealed that the PITX2c mutations were both associated with significantly diminished transcriptional activity compared with their wild-type counterpart. This study demonstrates the association between PITX2c loss-of-function mutations and the transposition of the great arteries and ventricular septal defect in humans, providing further insight into the molecular mechanisms responsible for CHD.
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