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Published on: January 6, 2019
Electrocardiographic consequences of cardiac iron overload in thalassemia major
Jon Detterich1, Leila Noetzli, Fred Dorey
1Division of Cardiology, Children's Hospital Los Angeles, University of Southern California Keck School of Medicine, Los Angeles, CA, USA. jdetterich@chla.usc.edu
Insights
Electrocardiography can predict cardiac iron in thalassemia major patients when MRI is unavailable. Specific heart rhythm and repolarization abnormalities on ECG are key indicators of iron overload.
Area of Science:
- Cardiology
- Hematology
Background:
- Iron cardiomyopathy is a major cause of mortality in transfusion-dependent thalassemia major (TM).
- Cardiac MRI (T2*) detects preclinical iron overload but is not widely accessible.
Purpose of the Study:
- To evaluate the utility of 12-lead electrocardiography (ECG) in predicting cardiac iron loading in TM patients.
- To identify ECG markers indicative of cardiac iron overload.
Main Methods:
- Prospective study involving 78 TM patients undergoing 12-lead ECG and cardiac T2* MRI.
- Cardiac iron defined by T2* < 20 ms.
- Comparison of patients with and without cardiac iron using statistical analysis and age/gender-matched Z-scores.
Main Results:
- 45/78 patients had detectable cardiac iron.
- Repolarization abnormalities (QT/QTc prolongation, T-wave axis shift) were strong predictors.
- Algorithms using ECG parameters (T-axis, HR, QT) achieved high predictive accuracy (AUROC 88.3% for females, 87.1% for males).
Conclusions:
- Bradycardia and repolarization abnormalities on ECG are specific markers for cardiac iron in TM.
- ECG can help stratify cardiac risk in TM patients when MRI is unavailable.
- Further validation in larger populations and longitudinal studies are needed.
Abstract:
Iron cardiomyopathy is a leading cause of death in transfusion-dependent thalassemia major (TM) patients and MRI (T2*) can recognize preclinical cardiac iron overload, but, is unavailable to many centers. We evaluated the ability of 12-lead electrocardiography to predict cardiac iron loading in TM. 12-lead electrocardiogram and cardiac T2* measurements were performed prospectively, with a detectable cardiac iron cutoff of T2*less than 20 ms. Patients with and without cardiac iron were compared using two-sample statistics and against population norms using age and gender-matched Z-scores. 45/78 patients had detectable cardiac iron. Patients having cardiac iron were older and more likely female but had comparable liver iron burdens and serum ferritin. Increased heart rate (HR) and prolonged corrected QT interval (QT(c)) were present, regardless of cardiac iron status. Repolarization abnormalities were the strongest predictors of cardiac iron, including QT/QT(c) prolongation, left shift of T-wave axis, and interpretation of ST/T-wave morphology. Recursive partitioning of the data for females using T-axis and HR and for males using QT, HR, and T-axis produced algorithms with AUROC's of 88.3 and 87.1, respectively. Bradycardia and repolarization abnormalities on 12-lead electrocardiography were the most specific markers for cardiac iron in thalassemia major. Changes in these variables may be helpful to stratify cardiac risk when cardiac MRI is unavailable. However, diagnostic algorithms need to be vetted on larger and more diverse patient populations and longitudinal studies are necessary to determine reversibility of the observed abnormalities.
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