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Published on: June 20, 2014
Myocardial viability evaluation using magnetocardiography in patients with coronary artery disease
Andreas J Morguet1, Steffen Behrens, Olaf Kosch
1Medical Clinic II-Cardiology and Pulmology, Benjamin Franklin University Hospital, Berlin, Germany. amorguet@zedat.fu-berlin.de
Insights
Magnetocardiography (MCG) accurately identified myocardial scar in patients with coronary artery disease. This non-invasive technique shows promise for assessing myocardial viability and guiding treatment decisions.
Area of Science:
- Cardiology
- Biomedical Engineering
- Medical Imaging
Background:
- Magnetocardiography (MCG) is utilized for risk stratification and ischemia detection.
- Assessing myocardial viability is crucial in managing coronary artery disease (CAD).
Purpose of the Study:
- To evaluate the potential of MCG in assessing myocardial viability in patients with CAD.
- To determine if MCG parameters can accurately classify patients based on myocardial scar extension.
Main Methods:
- Fifteen patients with stable single-vessel disease and wall-motion abnormalities underwent MCG.
- Echocardiography, Tl dipyridamole SPECT, and F-fluorodeoxyglucose PET were used for comparison.
- A 49-channel low-temperature superconducting quantum interference device (SQUID) system was employed for MCG acquisition.
Main Results:
- MCG parameters were extracted and analyzed using linear discriminant analysis.
- Three MCG parameters demonstrated high selectivity in identifying scar tissue.
- Fisher's discriminant functions correctly classified all patients regarding scar extension.
Conclusions:
- Selected MCG parameters accurately classified patients based on myocardial scar extent.
- MCG shows potential as a tool for assessing myocardial viability in CAD.
- Further multicenter studies are recommended to validate these findings.
Objective:
Magnetocardiography (MCG) has been used to risk stratify patients in terms of sudden death or to detect ischemia. We evaluated the potential of this technique to assess myocardial viability in coronary artery disease.
Methods:
Fifteen patients aged 36-75 (median, 59) years with stable single-vessel disease (> or =70% diameter stenosis) and corresponding regional wall-motion abnormality underwent (1) echocardiography to evaluate wall motion, (2) Tl dipyridamole single-photon emission computed tomography to document perfusion and (3) quantitative F-fluorodeoxyglucose positron emission tomography to assess viability in 16 left-ventricular wall segments. MCG was performed in each patient using a shielded prototype 49-channel low-temperature superconducting quantum interference device (SQUID) system. Multiple time and area parameters were extracted automatically from each baseline-corrected data set.
Results:
Eleven patients had prior myocardial infarction. In each patient, four to 12 (median, seven) segments were lesion dependent, totalling up to 117 out of 240 segments. A total of 88 segments (75%) were viable and 29 segments (25%) represented scar. Patients were divided into three categories: (a) no scar segments (five patients), (b) scar in one to three segments (six patients) and (c) scar in > or = four segments (four patients). The three MCG parameters with the best selectivity were identified using linear discriminant analysis with forward inclusion (P<0.10). The corresponding Fisher's discriminant functions classified all patients correctly (Wilks' lambda=0.079).
Conclusion:
Selected MCG parameters yielded accurate patient classification with regard to the extension of myocardial scar within the viable tissue in retrospect. These findings indicate that MCG may contribute to the assessment of myocardial viability. Further evaluation in a comprehensive multicenter study is warranted.
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