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Published on: August 20, 2019
A New TBX5 Loss-of-Function Mutation Contributes to Congenital Heart Defect and Atrioventricular Block
Yan Zhang1, Yu-Min Sun1, Ying-Jia Xu2,3,4
1Department of Cardiology, Shanghai Jing'an District Central Hospital, Fudan University.
Insights
A novel mutation in the TBX5 gene was identified in patients with congenital heart defects (CHD), including double outlet right ventricle (DORV), ventricular septal defect (VSD), and atrioventricular block (AVB). This TBX5 loss-of-function mutation impacts cardiac development and offers insights into CHD mechanisms.
Area of Science:
- Genetics
- Cardiovascular Biology
- Developmental Biology
Background:
- Congenital heart defect (CHD) is the most common birth defect, affecting 1% of newborns globally and causing significant mortality.
- Genetic factors play a crucial role in CHD pathogenesis, with mutations in genes like TBX5 implicated in cardiovascular development.
- The genetic basis of CHD remains largely unknown due to its heterogeneity.
Purpose of the Study:
- To investigate the genetic determinants of CHD by sequencing the TBX5 gene in patients with congenital heart defects.
- To identify novel mutations in TBX5 associated with familial CHD and analyze their functional consequences.
Main Methods:
- Sequencing analysis of the TBX5 gene in 198 unrelated patients with CHD.
- Segregation analysis within the affected family pedigree.
- Functional studies using dual-luciferase reporter assays to assess transcriptional activity and protein interactions.
Main Results:
- A novel heterozygous TBX5 mutation (c.692C>T; p.Pro231Leu) was identified in a patient with familial double outlet right ventricle (DORV), ventricular septal defect (VSD), and atrioventricular block (AVB).
- The mutation co-segregated with the disease in the family and was absent in healthy controls.
- Functional assays revealed reduced TBX5 transcriptional activity and impaired interactions with other key cardiac transcription factors (NKX2-5, GATA4).
Conclusions:
- This study establishes a link between TBX5 loss-of-function mutations and familial DORV, VSD, and AVB.
- The findings provide new insights into the molecular mechanisms underlying CHD and AVB.
- This research suggests potential applications for genetic evaluation and personalized treatment strategies for patients with CHD and AVB.
Abstract:
Congenital heart defect (CHD) represents the most common birth deformity, afflicting 1% of all births worldwide, and accounts for substantial morbidity and mortality. Increasing evidence highlights the pivotal roles of genetic etiologies in the pathogenesis of CHD, and pathogenic mutations in multiple genes, including TBX5 encoding a cardiac core transcription factor key to cardiovascular morphogenesis, have been involved in CHD. However, due to pronounced genetic heterogeneity of CHD, the genetic determinants underlying CHD in most cases remain obscure. In this investigation, by sequencing analysis of the coding exons and flanking introns of the TBX5 gene in 198 unrelated patients affected with CHD, a novel heterozygous mutation, NM_000192.3: c.692C>T; p. (Pro231Leu), was identified in an index patient with familial double outlet right ventricle (DORV), ventricular septal defect (VSD), and atrioventricular block (AVB). Genetic analysis of the proband's pedigree showed that the mutation co-segregated with the diseases. The missense mutation, which altered the amino acid conserved evolutionarily, was absent from 266 unrelated healthy subjects. Functional analyses with a dual-luciferase reporter assay system unveiled that the Pro231Leu-mutant TBX5 was associated with significantly reduced transcriptional activity on its target genes MYH6 and NPPA. Furthermore, the mutation disrupted the synergistic transactivation between TBX5 and NKX2-5 as well as GATA4, two other transcription factors causally linked to CHD. This study firstly links TBX5 loss-of-function mutation to familial DORV, VSD, and AVB, which provides novel insight into the mechanism underpinning CHD and AVB, suggesting potential implications for genetic evaluation and individualized treatment of patients affected by CHD and AVB.
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