TY - JOUR
T1 - Redefining the Genetic Architecture of Hypertrophic Cardiomyopathy
T2 - Role of Intermediate-Effect Variants
AU - García Hernandez, Soledad
AU - de la Higuera Romero, Luis
AU - Fernandez, Adrian
AU - Luisa Peña Peña, Maria
AU - Mora-Ayestaran, Nerea
AU - Basurte-Elorz, María Teresa
AU - Larrañaga-Moreira, Jose María
AU - Cárdenas Reyes, Ivonne
AU - Villacorta, Eduardo
AU - Valverde-Gómez, Maria
AU - Baustista-Paves, Alicia
AU - Veira Villanueva, Elena
AU - Ortiz-Genga, Martín
AU - Lipov, Alex
AU - Brogger, Noel
AU - Sabater Molina, María
AU - Moreno-Escobar, Eduardo
AU - Ruiz-Guerrero, Luis
AU - Syrris, Petros
AU - Fernández, Xusto
AU - Piqueras-Flores, Jesús
AU - Amor Salamanca, Almudena
AU - Bezzina, Connie R.
AU - Elliott, Perry M.
AU - Barriales-Villa, Roberto
AU - Gimeno-Blanes, Juan Ramon
AU - García-Pavía, Pablo
AU - Walsh, Roddy
AU - Ochoa, Juan Pablo
N1 - Publisher Copyright:
© 2025 The Authors.
PY - 2025/10/14
Y1 - 2025/10/14
N2 - BACKGROUND: Hypertrophic cardiomyopathy (HCM) is a genetically heterogeneous disorder linked primarily to rare variants in sarcomeric genes, although recently certain nonsarcomeric genes have emerged as important contributors. Nonmendelian genetic variants with reproducible moderate-effect sizes and low penetrance, intermediate-effect variants (IEVs), can play a crucial role in modulating disease expression. Understanding the clinical impact of IEVs is crucial to unravel the complex genetic architecture of HCM. METHODS: We conducted an ancestry-based enrichment analysis of 14 validated HCM genes, including the 9 core sarcomeric and 5 nonsarcomeric genes (ALPK3, CSRP3, FHOD3, FLNC, and TRIM63). Enrichment of intermediate frequency missense variants was evaluated in 10 981 patients with HCM, 4030 internal controls of European-ancestry, and 590 000 external controls from gnomAD non-Finnish Europeans. The population-attributable fraction was calculated to assess contribution of IEVs to HCM. Age-related disease penetrance, phenotypic severity (left ventricular maximum wall thickness), and major adverse cardiac events were analyzed in 11 991 HCM cases of the whole cohort according to 5 genetic groups: genotype negative, isolated IEV, monogenic, monogenic+IEV, and double monogenic. RESULTS: Fourteen IEVs in 8 genes were identified in 731 individuals (6.1% of the cohort), of whom 570 patients (4.8%) had IEVs in isolation: 198 (34.7%) in sarcomeric genes and 372 (65.3%) in nonsarcomeric genes. The contribution of IEVs to HCM genetics according to population-attributable fraction was estimated to be 4.9% (95% CI, 3.2-6.7). A significant gradient in penetrance, phenotypic severity, and major adverse cardiac events was observed across genetic groups. Compared with genotype-negative patients, IEV carriers displayed a younger median age at diagnosis (59 years of age [95% CI, 46-69] versus 61 years [95% CI, 49-70]; P=0.0073) and a higher mean left ventricular maximum wall thickness (18.1±3.7 versus 19.0±4.3; P=0.0043). IEVs also modified disease expression in individuals with monogenic variants, causing a more aggressive phenotype than in individuals from the monogenic-only group with HCM onset at younger age and a higher left ventricular maximum wall thickness (all P<0.0001), with major adverse cardiac event-free survival being significantly lower (93.3% versus 69.3% at 70 years of age; P<0.0001). CONCLUSIONS: IEVs are present in 6.1% of HCM cases and account for 4.8% of HCM genetic burden. IEVs also influence disease severity and outcomes, particularly when combined with monogenic disease-causing variants. Evaluation of IEVs should be considered when HCM genetic testing is performed.
AB - BACKGROUND: Hypertrophic cardiomyopathy (HCM) is a genetically heterogeneous disorder linked primarily to rare variants in sarcomeric genes, although recently certain nonsarcomeric genes have emerged as important contributors. Nonmendelian genetic variants with reproducible moderate-effect sizes and low penetrance, intermediate-effect variants (IEVs), can play a crucial role in modulating disease expression. Understanding the clinical impact of IEVs is crucial to unravel the complex genetic architecture of HCM. METHODS: We conducted an ancestry-based enrichment analysis of 14 validated HCM genes, including the 9 core sarcomeric and 5 nonsarcomeric genes (ALPK3, CSRP3, FHOD3, FLNC, and TRIM63). Enrichment of intermediate frequency missense variants was evaluated in 10 981 patients with HCM, 4030 internal controls of European-ancestry, and 590 000 external controls from gnomAD non-Finnish Europeans. The population-attributable fraction was calculated to assess contribution of IEVs to HCM. Age-related disease penetrance, phenotypic severity (left ventricular maximum wall thickness), and major adverse cardiac events were analyzed in 11 991 HCM cases of the whole cohort according to 5 genetic groups: genotype negative, isolated IEV, monogenic, monogenic+IEV, and double monogenic. RESULTS: Fourteen IEVs in 8 genes were identified in 731 individuals (6.1% of the cohort), of whom 570 patients (4.8%) had IEVs in isolation: 198 (34.7%) in sarcomeric genes and 372 (65.3%) in nonsarcomeric genes. The contribution of IEVs to HCM genetics according to population-attributable fraction was estimated to be 4.9% (95% CI, 3.2-6.7). A significant gradient in penetrance, phenotypic severity, and major adverse cardiac events was observed across genetic groups. Compared with genotype-negative patients, IEV carriers displayed a younger median age at diagnosis (59 years of age [95% CI, 46-69] versus 61 years [95% CI, 49-70]; P=0.0073) and a higher mean left ventricular maximum wall thickness (18.1±3.7 versus 19.0±4.3; P=0.0043). IEVs also modified disease expression in individuals with monogenic variants, causing a more aggressive phenotype than in individuals from the monogenic-only group with HCM onset at younger age and a higher left ventricular maximum wall thickness (all P<0.0001), with major adverse cardiac event-free survival being significantly lower (93.3% versus 69.3% at 70 years of age; P<0.0001). CONCLUSIONS: IEVs are present in 6.1% of HCM cases and account for 4.8% of HCM genetic burden. IEVs also influence disease severity and outcomes, particularly when combined with monogenic disease-causing variants. Evaluation of IEVs should be considered when HCM genetic testing is performed.
KW - cardiomyopathy, hypertrophic
KW - genetic predisposition to disease
KW - genetic testing
KW - genetic variation
KW - inheritance patterns
KW - penetrence
KW - risk factors
UR - https://www.scopus.com/pages/publications/105018682295
U2 - 10.1161/CIRCULATIONAHA.125.074529
DO - 10.1161/CIRCULATIONAHA.125.074529
M3 - Article
C2 - 40879562
SN - 0009-7322
VL - 152
SP - 1060
EP - 1075
JO - Circulation
JF - Circulation
IS - 15
ER -