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Published on: August 8, 2022
A Validated Model for Sudden Cardiac Death Risk Prediction in Pediatric Hypertrophic Cardiomyopathy
Anastasia Miron1, Myriam Lafreniere-Roula2, Chun-Po Steve Fan2
1Division of Cardiology (A.M., T.P., S.M.), Hospital for Sick Children, Toronto, Ontario, Canada.
Insights
A new risk prediction model for sudden cardiac death (SCD) in children with hypertrophic cardiomyopathy has been developed and validated. This model identifies unique risk factors in pediatric patients, improving SCD prevention strategies.
Area of Science:
- Cardiology
- Genetics
- Pediatrics
Background:
- Hypertrophic cardiomyopathy (HCM) is a primary cause of sudden cardiac death (SCD) in pediatric populations.
- Developing effective SCD prevention strategies in children with HCM is critical.
Purpose of the Study:
- To develop and validate a risk prediction model for SCD in pediatric patients diagnosed with hypertrophic cardiomyopathy.
- To guide the implementation of targeted SCD prevention strategies.
Main Methods:
- An international multicenter observational cohort study included phenotype-positive patients with isolated HCM under 18 years.
- Competing risk models with cause-specific hazard regression were employed to identify clinical and genetic SCD risk factors.
- The model was validated in an independent external cohort (SHaRe registry).
Main Results:
- The 5-year cumulative incidence of SCD events was 9.1% in 572 pediatric HCM patients.
- Key risk predictors identified include age at diagnosis, nonsustained ventricular tachycardia, syncope, specific cardiac measurements (septal and posterior wall diameter z-scores, left atrial diameter z-score), LV outflow tract gradient, and pathogenic variants.
- The clinical and clinical/genetic models demonstrated good predictive accuracy (c-statistics of 0.75-0.76) and validation (0.71-0.72).
Conclusions:
- A validated SCD risk prediction model for pediatric HCM with over 70% accuracy has been established.
- The model incorporates pediatric-specific risk factors, differentiating it from adult models.
- This tool can enhance clinical practice guidelines and shared decision-making for implantable cardioverter-defibrillator (ICD) insertion in children with HCM.
Background:
Hypertrophic cardiomyopathy is the leading cause of sudden cardiac death (SCD) in children and young adults. Our objective was to develop and validate a SCD risk prediction model in pediatric hypertrophic cardiomyopathy to guide SCD prevention strategies.
Methods:
In an international multicenter observational cohort study, phenotype-positive patients with isolated hypertrophic cardiomyopathy <18 years of age at diagnosis were eligible. The primary outcome variable was the time from diagnosis to a composite of SCD events at 5-year follow-up: SCD, resuscitated sudden cardiac arrest, and aborted SCD, that is, appropriate shock following primary prevention implantable cardioverter defibrillators. Competing risk models with cause-specific hazard regression were used to identify and quantify clinical and genetic factors associated with SCD. The cause-specific regression model was implemented using boosting, and tuned with 10 repeated 4-fold cross-validations. The final model was fitted using all data with the tuned hyperparameter value that maximizes the c-statistic, and its performance was characterized by using the c-statistic for competing risk models. The final model was validated in an independent external cohort (SHaRe [Sarcomeric Human Cardiomyopathy Registry], n=285).
Results:
Overall, 572 patients met eligibility criteria with 2855 patient-years of follow-up. The 5-year cumulative proportion of SCD events was 9.1% (14 SCD, 25 resuscitated sudden cardiac arrests, and 14 aborted SCD). Risk predictors included age at diagnosis, documented nonsustained ventricular tachycardia, unexplained syncope, septal diameter z-score, left ventricular posterior wall diameter z score, left atrial diameter z score, peak left ventricular outflow tract gradient, and presence of a pathogenic variant. Unlike in adults, left ventricular outflow tract gradient had an inverse association, and family history of SCD had no association with SCD. Clinical and clinical/genetic models were developed to predict 5-year freedom from SCD. Both models adequately discriminated between patients with and without SCD events with a c-statistic of 0.75 and 0.76, respectively, and demonstrated good agreement between predicted and observed events in the primary and validation cohorts (validation c-statistic 0.71 and 0.72, respectively).
Conclusion:
Our study provides a validated SCD risk prediction model with >70% prediction accuracy and incorporates risk factors that are unique to pediatric hypertrophic cardiomyopathy. An individualized risk prediction model has the potential to improve the application of clinical practice guidelines and shared decision making for implantable cardioverter defibrillator insertion. Registration: URL: https://www.clinicaltrials.gov; Unique identifier: NCT0403679.
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