Abstract Background The presence of ≥15% late gadolinium enhancement (LGE) on cardiac magnetic resonance imaging (MRI) is used as a prognostic indicator for sudden cardiac death in patients with hypertrophic cardiomyopathy (HCM). [1] According to the European Society of Cardiology clinical practice guidelines (2014), septal myectomy is only indicated for symptomatic relief from left ventricular outflow tract obstruction (LVOTO) that is refractory to medical therapy, provided LVOTO gradient ≥ 50 mmHg. [2] At present, there is scarce data correlating the burden of ventricular arrhythmia and sudden cardiac death with LGE percentage or showing benefit of myectomy in reducing the burden of the same. Purpose We aimed to compare the burden of ventricular arrhythmia burden in patients with HCM who underwent septal myectomy compared with those who did not. Methods Adult patients with HCM followed in the advanced heart failure outpatient clinic at Allegheny General Hospital were included in this study. All included patients had cardiac MRI with LGE quantification and data related to cardiac events through devices placed for various indications (such as evaluation of reported palpitations, established supraventricular tachycardia, implantable cardioverter-defibrillator for primary or secondary prevention). Patients were divided into 2 groups: those undergoing myectomy (post myectomy group) and those that did not undergo myectomy (non-myectomy group). Chi square test was used to calculate incidence of premature ventricular contractions (PVCs), non-sustained ventricular tachycardia (NSVT) and sustained ventricular tachycardia (SVT) in the non-myectomy and post myectomy group. Results 76 patients with HCM (interventricular septal thickness ≥1.5 cm and LGE positive) longitudinally followed in the Allegheny General Hospital advanced heart failure outpatient clinic from 2016 to 2022 were included. 37 patients underwent septal myectomy. Baseline characteristics of post myectomy and non-myectomy group were matched and are listed in table 1. Left ventricular mass index was expectedly higher in patients undergoing myectomy. LGE was quantified on cardiac MRI prior to myectomy (mean 16.4% in myectomy group, 14.6% in non-myectomy group). Burden of ventricular arrhythmia (PVCs, NSVT and SVT) was found to be significantly lower in the post myectomy group (n=13, 44.83%) compared to the non-myectomy group (n=36, 92.31%). None of the patients included were noted to have ventricular fibrillation or sudden cardiac death. Conclusion Septal myectomy may reduce the incidence of ventricular arrhythmia and thus impact outcomes related to sudden cardiac death. This is likely a consequence of removal of arrhythmogenic scar tissue. Larger studies are required to further evaluate the burden and correlation of ventricular arrhythmia with scar tissue volume measured on cardiac MRI.
Detection of dyssynchrony is primarily performed by 2D and/or tissue Doppler echocardiography, sampling the LV in selected basal segments. Limited approaches have been performed by cardiac MRI (CMR).
Background-In compensated aortic stenosis (AS), cardiac performance measured at the ventricular chamber is typically supranormal, whereas measurements at the myocardium are often impaired. We investigated intramyocardial mechanics after aortic valve replacement (AVR) and the effects relative to the presence or absence of coronary artery disease (CAD+ or CAD-), respectively.Methods and Results-Twenty-nine patients (46 to 91 years, 10 female) with late but not decompensated AS underwent cardiovascular MRI before AVR (PRE), with follow-up at 6 +/- 1 (EARLY) and 13 +/- 2 months (LATE) to determine radiofrequency tissue-tagged left ventricle (LV) transmural circumferential strain, torsion, structure, and function. At the myocardial level, concentric LV hypertrophy regressed 18% LATE (93 +/- 22 versus 77 +/- 17g/m(2); P<0.0001), whereas at the LV chamber level, ejection fraction was supranormal PRE, 67 +/- 6% (ranging as high as 83%) decreasing to 59 +/- 6% LATE (P<0.05), representing not dysfunction but a return to more normal LV physiology. Between the CAD+ and CAD- groups, intramyocardial strain was similar PRE (19 +/- 10 versus 20 +/- 10) but different LATE, with dichotomization specifically related to the CAD state. In the CAD- patients, strain increased to 23 +/- 10% (+20%), whereas in CAD+ patients it fell to 16 +/- 11% (-26%), representing a nearly 50% decline after AVR (P<0.05). This was particularly evident at the apex, where CAD- strain LATE improved 17%, whereas for CAD+ it decreased 2.5-fold. Transmural strain and myocardial torsion followed a similar pattern, critically dependent on CAD. AVR impacted LV geometry and mitral apparatus, resulting in decreased mitral regurgitation, negating the double valve consideration.Conclusions-In AS patients after AVR, reverse remodeling of the supranormal systolic function parallels improvement in cardiovascular MRI-derived regression of LV hypertrophy and LV intramyocardial strain. However, discordant effects are evident after AVR, driven by CAD status, suggesting that the typical AVR benefits are experienced disproportionately by those without CAD and not by those obliged to undergo concomitant coronary artery bypass grafting/AVR.
Spectroscopy is close to becoming an integral part of the clinical MR examination to achieve a complete morphological, functional, and metabolic evaluation of the human heart. 31P-NMR spectroscopy is used to noninvasively assess human myocardial energy metabolism. Abnormalities in the phosphocreatine (PCr) to ATP ratio are observed in ischemic heart disease, heart failure, transplanted hearts, and hypertrophic cardiomyopathy. NMR spectroscopy 31P spectra obtained at rest, during exercise or pharmacological stress allow the observation of the earliest metabolic responses of myocardial ischemia. 1 spectroscopy can evaluate the concentration of intracellular creatine and myocardial lipids as a means of evaluating myocardial viability. The increase in total 23Na in ischemic tissue provides information about the extent and location of viable tissue. Higher magnetic fields, gradient strength, and technological advances in pulse sequence and localization will result in better spatial and temporal resolution improving the clinical utility of the technique.