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The Natural History of Massive Left Ventricular Hypertrophy in Pediatric Hypertrophic Cardiomyopathy: A Multiregistry
Robert Przybylski1, Gabrielle Norrish2,3, Brian Claggett4
1Department of Pediatrics, Division of Pediatric Cardiology, Inova Fairfax Hospital, Falls Church, VA (R.P.).
Insights
Massive left ventricular hypertrophy (LVH) in children with hypertrophic cardiomyopathy (HCM) is linked to earlier diagnosis and increased adverse events. Nearly a quarter of patients experience significant regression in maximal left ventricular wall thickness.
Area of Science:
- Cardiology
- Pediatric Cardiology
- Genetics
Background:
- Massive left ventricular hypertrophy (LVH) is a known risk factor for sudden cardiac death in pediatric hypertrophic cardiomyopathy (HCM).
- The natural history and clinical implications of massive LVH in this population remain incompletely understood.
Purpose of the Study:
- To investigate the characteristics and outcomes of children with pediatric-onset HCM and massive LVH.
- To compare patients with and without massive LVH using data from the Sarcomeric Human Cardiomyopathy Registry (SHaRe) and the International Paediatric Hypertrophic Cardiomyopathy Consortium (IPHCC).
Main Methods:
- Retrospective analysis of patients from SHaRe and IPHCC registries with data spanning from 1960 to 2024.
- Massive LVH defined as maximal left ventricular wall thickness (MLVWT) ≥30 mm or MLVWT z-score ≥+20 in individuals under 18.
- Time-to-event analyses were conducted to assess composite outcomes including major adverse cardiac events, ventricular arrhythmias, and heart failure.
Main Results:
- Children with massive LVH were diagnosed younger (median 9.2 years) and had a higher prevalence of sarcomeric genetic variants (72%).
- Massive LVH was associated with significantly increased risks of HCM-related mortality (HR 3.3), major adverse cardiac events (HR 2.6), major ventricular arrhythmias (HR 3.1), and heart failure (HR 1.9).
- In a subset of patients with massive LVH, MLVWT increased significantly over time, though nearly a quarter (22%) showed regression of MLVWT by >5 mm from their peak measurement.
Conclusions:
- Massive LVH in pediatric HCM disproportionately affects children diagnosed early with sarcomeric disease, conferring a higher risk for adverse cardiovascular events.
- Significant regression of maximal left ventricular wall thickness is observed in a notable proportion of patients with massive LVH.
Background:
Massive left ventricular hypertrophy (LVH) is a risk factor for sudden cardiac death in children with hypertrophic cardiomyopathy (HCM), but little is understood about its natural history.
Methods:
Patients with pediatric-onset HCM identified from 2 registries (SHaRe [Sarcomeric Human Cardiomyopathy Registry] and IPHCC [International Paediatric Hypertrophic Cardiomyopathy Consortium]) with or without massive LVH were compared. Massive LVH was defined as absolute maximal left ventricular wall thickness (MLVWT) ≥30 mm or MLVWT z score ≥+20 at <18 years of age. Data from SHaRe and IPHCC include encounters from January 1960 through March 2024 and January 1970 through March 2024, respectively. Demographic, clinical, and serial MLVWT data were collected. Composite outcomes included major ventricular arrhythmia event (sudden cardiac death, aborted sudden cardiac death, or appropriate implantable cardioverter defibrillator therapy); heart failure (HF) event (left ventricular ejection fraction <50%, New York Heart Association class III or IV, transplant, or HF-related death); major adverse cardiac event (stroke or any major ventricular arrhythmia or HF outcome aside from left ventricular ejection fraction <50%); and HCM-related mortality (sudden cardiac death or HF-related death). Time-to-event analyses were performed using Cox proportional hazards models.
Results:
We identified 587 patients (54 female [30%]). In 186 children with massive LVH, age at diagnosis was younger (median, 9.2 years [interquartile range, 2.1-13.1 years]) versus 13.6 years (9.7-15.5 years; P<0.001) and sarcomeric genetic variants more prevalent (72% versus 61%; P=0.034), as was HCM-related mortality (unadjusted hazard ratio, 3.3 [95% CI,1.2-9.7]; P=0.026), major adverse cardiac events (hazard ratio, 2.6 [1.7-3.9]; P<0.001), major ventricular arrhythmia (hazard ratio, 3.1 [1.8-5.2]; P<0.001), and HF (hazard ratio, 1.9 [1.1-3.1]; P=0.013). These associations remained significant when adjusted for sex and age at HCM diagnosis. In 115 patients with massive LVH with serial MLVWT data (62%), MLVWT increased significantly from first to last measurements (median, 26 mm [interquartile range, 18-32 mm] versus 31 mm [26-35 mm]; P<0.001), but there was no difference between z scores (median, +22 [interquartile range, +18 to +26] versus +23 [+20 to +28]; P=0.25). The last absolute MLVWT recorded was >5 mm less than the largest recorded MLVWT in 25 patients (22%).
Conclusions:
In pediatric HCM, massive LVH disproportionately affects those diagnosed in early childhood with sarcomeric disease, with increased risk for adverse events. Significant MLVWT regression is seen in nearly a quarter of patients.
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