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Author Spotlight: Effect of Left Atrial Ligation on Avian Embryonic Hearts and HLHS Implications
Published on: June 16, 2023
Human Genetics of Hypoplastic Left Heart Syndrome
Constanze Pfitzer1, Katharina R L Schmitt1, Woodrow D Benson2
1Department of Congenital Heart Disease/Paediatric Cardiology, German Heart Center Berlin, Berlin, Germany.
Insights
Hypoplastic left heart syndrome (HLHS) has complex genetic origins, not a single cause. Understanding these intricate genetic factors is crucial for advancing HLHS management and improving patient outcomes.
Area of Science:
- Cardiovascular Genetics
- Developmental Biology
Background:
- Hypoplastic left heart syndrome (HLHS) is a severe congenital heart defect impacting left-sided structures.
- Despite advances, HLHS management faces challenges due to an incomplete understanding of its etiology.
- Genetic factors are increasingly implicated in HLHS development.
Purpose of the Study:
- To review evidence supporting genetic origins of HLHS.
- To discuss the complexity of HLHS inheritance patterns.
- To highlight the need for advanced genetic analysis approaches.
Main Methods:
- Review of cytogenetic abnormalities associated with HLHS.
- Analysis of family studies on HLHS heritability.
- Examination of genomic region identification studies.
Main Results:
- HLHS is linked to cytogenetic abnormalities and shows familial clustering, indicating heritability.
- Genomic studies have identified regions associated with HLHS inheritance.
- Simple Mendelian models have failed to pinpoint single causative variants for most HLHS cases.
Conclusions:
- HLHS inheritance is complex, likely involving multiple genetic factors.
- Future research should focus on complex inheritance models and high-throughput genetic data analysis.
- A shift from seeking single causative variants to understanding polygenic influences is necessary for HLHS research progress.
Abstract:
Hypoplastic left heart syndrome (HLHS) is a severe congenital cardiovascular malformation characterized by hypoplasia of the left ventricle, aorta, and other structures on the left side of the heart. The pathologic definition includes atresia or stenosis of both the aortic and mitral valves. Despite considerable progress in clinical and surgical management of HLHS, mortality and morbidity remain concerns. One barrier to progress in HLHS management is poor understanding of its cause. Several lines of evidence point to genetic origins of HLHS. First, some HLHS cases have been associated with cytogenetic abnormalities (e.g., Turner syndrome). Second, studies of family clustering of HLHS and related cardiovascular malformations have determined HLHS is heritable. Third, genomic regions that encode genes influencing the inheritance of HLHS have been identified. Taken together, these diverse studies provide strong evidence for genetic origins of HLHS and related cardiac phenotypes. However, using simple Mendelian inheritance models, identification of single genetic variants that "cause" HLHS has remained elusive, and in most cases, the genetic cause remains unknown. These results suggest that HLHS inheritance is complex rather than simple. The implication of this conclusion is that researchers must move beyond the expectation that a single disease-causing variant can be found. Utilization of complex models to analyze high-throughput genetic data requires careful consideration of study design.
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