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TGFBR1 Variants Can Associate with Non-Syndromic Congenital Heart Disease without Aortopathy
Manal Alaamery1,2,3, Nour Albesher3,4, Fahad Alhabshan5
1Developmental Medicine Department, King Abdullah International Medical Research Center, King Saud bin Abdulaziz University for Health Sciences, King Abdulaziz Medical City, Ministry of National Guard-Health Affairs, Riyadh 11481, Saudi Arabia.
Insights
Rare variants in the TGFBR1 gene are linked to inherited non-syndromic congenital heart diseases (CHD) without aortopathy. This discovery highlights TGFBR1
Area of Science:
- Genetics
- Cardiology
- Molecular Biology
Background:
- Congenital heart diseases (CHD) are the most common birth defects and a leading cause of infant mortality.
- Accurate molecular diagnosis is essential for recurrence risk assessment and prenatal diagnosis.
- This study investigates two families with inherited non-syndromic CHD.
Purpose of the Study:
- To identify the genetic cause of non-syndromic CHD in two families.
- To investigate the functional consequences of identified genetic variants.
Main Methods:
- Next-generation sequencing (NGS) was used to identify genetic variants.
- In vitro functional assays were performed to assess variant impact on TGFBR1-smad signaling.
Main Results:
- NGS identified rare variants in the TGFBR1 gene (p.R398C/p.R398H) in both families.
- These variants co-segregated with CHD, are evolutionarily conserved, and alter TGFBR1-smad signaling.
- No carriers exhibited signs of aortopathy.
Conclusions:
- Rare TGFBR1 variants are associated with inherited non-syndromic CHD, even without aortopathy.
- These findings underscore the role of TGFBR1 in CHD pathogenesis.
- Consideration of TGFBR1 variants is warranted in CHD patients, including those without aortopathies.
Background:
Congenital heart diseases (CHD) are the most common congenital malformations in newborns and remain the leading cause of mortality among infants under one year old. Molecular diagnosis is crucial to evaluate the recurrence risk and to address future prenatal diagnosis. Here, we describe two families with various forms of inherited non-syndromic CHD and the genetic work-up and resultant findings.
Methods:
Next-generation sequencing (NGS) was employed in both families to uncover the genetic cause. In addition, we performed functional analysis to investigate the consequences of the identified variants in vitro.
Results:
NGS identified possible causative variants in both families in the protein kinase domain of the TGFBR1 gene. These variants occurred on the same amino acid, but resulted in differently substituted amino acids (p.R398C/p.R398H). Both variants co-segregate with the disease, are extremely rare or unique, and occur in an evolutionary highly conserved domain of the protein. Furthermore, both variants demonstrated a significantly altered TGFBR1-smad signaling activity. Clinical investigation revealed that none of the carriers had (signs of) aortopathy.
Conclusion:
In conclusion, we describe two families, with various forms of inherited non-syndromic CHD without aortopathies, associated with unique/rare variants in TGFBR1 that display altered TGF-beta signaling. These findings highlight involvement of TGFBR1 in CHD, and warrant consideration of potential causative TGFBR1 variants also in CHD patients without aortopathies.
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