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Multimodal phenotypic clustering predicts cardiac outcomes in Fabry disease
Elad Shemesh1,2,3, Paul Feigin4, Chong Yew Tan5
1Population Health Research Institute, David Braley Cardiac, Vascular and Stroke Research Institute, Hamilton Health Sciences and McMaster University, Hamilton, Canada. shemeshe@mcmaster.ca.
Insights
A new model tracks Fabry disease cardiomyopathy progression using cardiac phenotypic clusters (CPC). Sex, mutation type, and late gadolinium enhancement (LGE) predict adverse cardiovascular outcomes in Fabry disease patients.
Area of Science:
- Cardiology
- Genetics
- Rare Diseases
Background:
- Fabry disease (FD) is a rare lysosomal storage disorder with significant cardiac involvement.
- Long-term cardiac outcome prediction in FD remains challenging.
- A comprehensive multi-modal framework is needed to track cardiac progression.
Purpose of the Study:
- To develop and validate a multi-modal framework for characterizing cardiac involvement progression in Fabry disease.
- To assess the predictive value of various cardiac assessment modalities for adverse cardiovascular outcomes.
- To establish a clinical guide-map for Fabry disease cardiomyopathy progression.
Main Methods:
- Integrated data from sex, genetics, clinical assessments, ECG, imaging (CMR), and biomarkers.
- Defined four cardiac phenotypic clusters (CPC): ECG abnormalities, elevated biomarkers, left ventricular hypertrophy (LVH), and late gadolinium enhancement (LGE).
- Tracked a composite outcome of cardiac hospitalization, device implantation, or death.
Main Results:
- A progression map showed ECG changes and LVH precede biomarker elevation and LGE.
- Mutation type and sex significantly impacted composite outcomes (HRs: 12.8 and 0.09, respectively).
- Presence of LGE CPC strongly associated with increased risk of composite adverse outcomes.
Conclusions:
- A "4 domain CPC" model offers a practical clinical tool for mapping Fabry disease cardiomyopathy progression.
- The model highlights the roles of sex, mutation type, and CMR findings in cardiac trajectory.
- This framework aids in prospective patient management and risk stratification.
Background:
Fabry disease (FD) is a rare lysosomal storage disorder with cardiac involvement. The efficacy of cardiac assessments in predicting disease progression is uncertain and few long-term studies have evaluated a clinically comprehensive approach in tracking cardiac outcomes. We developed a multi-modal framework integrating sex, genetics, clinical assessments, electrocardiography (ECG), imaging, and biomarkers to characterize the progression of cardiac involvement in FD and assess the predictive value of each modality for adverse cardiovascular outcomes.
Results:
Our cohort encompassed 525 "visit years" across 98 participants (60 females; 60 with classic mutations; mean age at presentation: 42.5 ± 17). We defined four cardiac phenotypic clusters (CPC): abnormal ECG, elevated cardiac biomarkers, left ventricular hypertrophy (LVH) (by echocardiography or cardiac magnetic resonance [CMR]), and late gadolinium enhancement (LGE) (by CMR). The primary outcome was a composite of cardiac hospitalization, device implantation, or cardiovascular/cerebrovascular death. A CPC progression map was plotted, outlining the course of events in FD cardiomyopathy, where changes in ECG and the occurrence of hypertrophy precede increase in cardiac biomarkers and the formation of LGE. Mutation type (classic vs. late-onset) and sex (female vs. male) showed a significant link with a composite outcome of cardiac-related hospitalizations, device implantations (defibrillator/pacemaker), and cardiovascular or cerebrovascular mortality [Hazard ratio, HR (95% confidence interval, CI, p-value): 12.8 (3.5,46.7), p = 0.0001 and 0.09 (0.03,0.33), p = 0.0002, respectively]. The presence of LGE CPC was associated with an increased likelihood of encountering the composite outcome.
Conclusions:
We propose a readily-applied "4 domain CPC" model, that can be routinely used in clinical practice, as a prospective "guide-map" for FD cardiomyopathy progression. Its utility is demonstrated in showing the expected role of sex, mutation and CMR findings in the cardiac trajectory of FD.
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