Key result
Truncating TTN variants link to cardiovascular and skeletal disease in ~55% of pediatric cases.
Why the study?
Pathogenic TTN variants cause diverse cardiovascular, skeletal muscle, and cardioskeletal disease, prompting characterisation of genotypes and phenotypes in paediatric patients.
Observational (n=31)
Yes
Pediatric-onset titinopathies present with a spectrum of skeletal muscle and cardiovascular diseases, including life-threatening complications like dilated cardiomyopathy and arrhythmias, highlighting the need for careful genetic counseling and cardiac screening.
Describes TTN phenotypes in children; leaves open prospective validation for risk stratification.
Background Pathogenic variants in TTN cause a spectrum of autosomal dominant and recessive cardiovascular, skeletal muscle and cardioskeletal disease with symptom onset across the lifespan. The aim of this study was to characterise the genotypes and phenotypes in a cohort of TTN +paediatric patients. Methods Retrospective chart review was performed at four academic medical centres. Patients with pathogenic or truncating variant(s) in TTN and paediatric-onset cardiovascular and/or neuromuscular disease were eligible. Results 31 patients from 29 families were included. Seventeen patients had skeletal muscle disease, often with proximal weakness and joint contractures, with average symptom onset of 2.2 years. Creatine kinase levels were normal or mildly elevated; electrodiagnostic studies (9/11) and muscle biopsies (11/11) were myopathic. Variants were most commonly identified in the A-band (14/32) or I-band (13/32). Most variants were predicted to be frameshift truncating, nonsense or splice-site (25/32). Seventeen patients had cardiovascular disease (14 isolated cardiovascular, three cardioskeletal) with average symptom onset of 12.9 years. Twelve had dilated cardiomyopathy (four undergoing heart transplant), two presented with ventricular fibrillation arrest, one had restrictive cardiomyopathy and two had other types of arrhythmias. Variants commonly localised to the A-band (8/15) or I-band (6/15) and were predominately frameshift truncating, nonsense or splice-site (14/15). Conclusion Our cohort demonstrates the genotype–phenotype spectrum of paediatric-onset titinopathies identified in clinical practice and highlights the risk of life-threatening cardiovascular complications. We show the difficulties of obtaining a molecular diagnosis, particularly in neuromuscular patients, and bring awareness to the complexities of genetic counselling in this population.
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Meyer et al. (2023) conducted an observational in Paediatric titinopathies (n=31). Pathogenic or truncating variants in TTN was evaluated on Genotypes and phenotypes. Among 31 paediatric patients with TTN variants, 17 presented with skeletal muscle disease and 17 with cardiovascular disease, predominantly driven by A-band or I-band truncating mutations.
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