Key result
Peri-infarct zone mass on LGE CMR predicts ~7% higher SCD risk in stable CAD.
Why the study?
Late gadolinium enhancement cardiac magnetic resonance offers potential to noninvasively characterize the phenotypic substrate for sudden cardiac death, prompting assessment of infarct characterization and scar microstructure analysis to predict sudden cardiac death in coronary artery disease.
Does late gadolinium enhancement (LGE) cardiac magnetic resonance (CMR) predict sudden cardiac death in patients with stable coronary artery disease?
Cohort (n=437)
Does late gadolinium enhancement (LGE) cardiac magnetic resonance (CMR) predict sudden cardiac death in patients with stable coronary artery disease?
Effect estimate: HR 1.07 (95% CI 1.02-1.12)
p-value: p=0.002
Comprehensive LGE characterization by CMR independently predicts sudden cardiac death risk in stable CAD patients beyond conventional predictors like severely reduced LVEF.
May aid SCD risk stratification beyond LVEF in stable CAD; hypothesis-generating for LGE-CMR use pending prospective validation.
BACKGROUND: Late gadolinium enhancement (LGE) cardiac magnetic resonance (CMR) offers the potential to noninvasively characterize the phenotypic substrate for sudden cardiac death (SCD). OBJECTIVES: The authors assessed the utility of infarct characterization by CMR, including scar microstructure analysis, to predict SCD in patients with coronary artery disease (CAD). METHODS: Patients with stable CAD were prospectively recruited into a CMR registry. LGE quantification of core infarction and the peri-infarct zone (PIZ) was performed alongside computational image analysis to extract morphologic and texture scar microstructure features. The primary outcome was SCD or aborted SCD. RESULTS: Of 437 patients (mean age: 64 years; mean left ventricular ejection fraction [LVEF]: 47%) followed for a median of 6.3 years, 49 patients (11.2%) experienced the primary outcome. On multivariable analysis, PIZ mass and core infarct mass were independently associated with the primary outcome (per gram: HR: 1.07 [95% CI: 1.02-1.12]; P = 0.002 and HR: 1.03 [95% CI: 1.01-1.05]; P = 0.01, respectively), and the addition of both parameters improved discrimination of the model (Harrell's C-statistic: 0.64-0.79). PIZ mass, however, did not provide incremental prognostic value over core infarct mass based on Harrell's C-statistic or risk reclassification analysis. Severely reduced LVEF did not predict the primary endpoint after adjustment for scar mass. On scar microstructure analysis, the number of LGE islands in addition to scar transmurality, radiality, interface area, and entropy were all associated with the primary outcome after adjustment for severely reduced LVEF and New York Heart Association functional class of >1. No scar microstructure feature remained associated with the primary endpoint when PIZ mass and core infarct mass were added to the regression models. CONCLUSIONS: Comprehensive LGE characterization independently predicted SCD risk beyond conventional predictors used in implantable cardioverter-defibrillator (ICD) insertion guidelines. These results signify the potential for a more personalized approach to determining ICD candidacy in CAD.
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Jones et al. (2023) conducted a cohort in Coronary artery disease (n=437). Late gadolinium enhancement cardiac magnetic resonance was evaluated on Sudden cardiac death or aborted SCD (HR 1.07, 95% CI 1.02-1.12, p=0.002). Late gadolinium enhancement CMR quantification of peri-infarct zone mass independently predicted sudden cardiac death or aborted SCD in stable CAD (HR 1.07; 95% CI 1.02-1.12; P=0.002).
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