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Updated: Dec 14, 2025

Targeted Next-generation Sequencing and Bioinformatics Pipeline to Evaluate Genetic Determinants of Constitutional Disease
Published on: April 4, 2018
Biallelic variants in PPP1R13L cause paediatric dilated cardiomyopathy
H K Robinson1, E Zaklyazminskaya2,3, I Povolotskaya3
1Exeter Genomics Laboratory, Royal Devon and Exeter NHS Foundation Trust, Exeter, UK.
Insights
Severe childhood dilated cardiomyopathy (DCM) in children is linked to biallelic variants in the PPP1R13L gene. This discovery aids genetic counseling and informs diagnostic testing for pediatric DCM cases.
Area of Science:
- Genetics
- Cardiology
- Molecular Biology
Background:
- Childhood dilated cardiomyopathy (DCM) is a significant cause of pediatric heart failure, often necessitating cardiac transplantation and carrying a risk of sudden death.
- Identifying genetic causes of DCM is crucial for accurate prognostication, family risk assessment, and guiding clinical management.
- Previous reports suggested a link between PPP1R13L variants and pediatric DCM in a single family.
Purpose of the Study:
- To identify the genetic underpinnings of severe childhood dilated cardiomyopathy.
- To establish a robust gene-disease association for PPP1R13L in pediatric DCM.
- To inform genetic testing strategies for children diagnosed with DCM.
Main Methods:
- Utilized genomic sequencing (exome and genome sequencing) in an international collaborative effort.
- Applied inheritance-based variant filtering to identify causative genetic variants.
- Leveraged GeneMatcher to facilitate family recruitment and data sharing.
Main Results:
- Identified biallelic variants in the PPP1R13L gene in seven children from five unrelated families with severe DCM.
- PPP1R13L encodes the inhibitor of apoptosis-stimulating protein of p53 (iASPP), involved in apoptosis, desmosome regulation, and inflammation.
- The pediatric DCM cases presented early and were progressive, leading to heart transplantation or death.
Conclusions:
- The findings provide strong evidence for a gene-disease association between PPP1R13L and severe pediatric DCM.
- The PPP1R13L gene should be incorporated into genetic testing panels for diagnosing pediatric DCM.
- Genomic sequencing is a powerful tool for discovering novel genetic causes of rare childhood diseases.
Abstract:
Childhood dilated cardiomyopathy (DCM) is a leading cause of heart failure requiring cardiac transplantation and approximately 5% of cases result in sudden death. Knowledge of the underlying genetic cause can aid prognostication and clinical management and enables accurate recurrence risk counselling for the family. Here we used genomic sequencing to identify the causative genetic variant(s) in families with children affected by severe DCM. In an international collaborative effort facilitated by GeneMatcher, biallelic variants in PPP1R13L were identified in seven children with severe DCM from five unrelated families following exome or genome sequencing and inheritance-based variant filtering. PPP1R13L encodes inhibitor of apoptosis-stimulating protein of p53 protein (iASPP). In addition to roles in apoptosis, iASPP acts as a regulator of desmosomes and has been implicated in inflammatory pathways. DCM presented early (mean: 2 years 10 months; range: 3 months-9 years) and was progressive, resulting in death (n = 3) or transplant (n = 3), with one child currently awaiting transplant. Genomic sequencing technologies are valuable for the identification of novel and emerging candidate genes. Biallelic variants in PPP1R13L were previously reported in a single consanguineous family with paediatric DCM. The identification here of a further five families now provides sufficient evidence to support a robust gene-disease association between PPP1R13L and severe paediatric DCM. The PPP1R13L gene should be included in panel-based genetic testing for paediatric DCM.
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