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Published on: June 14, 2016
Myocardial Fibrosis and Cardiac Decompensation in Aortic Stenosis
Calvin W L Chin1, Russell J Everett2, Jacek Kwiecinski3
1BHF/Centre for Cardiovascular Science, University of Edinburgh, Edinburgh, United Kingdom; Department of Cardiovascular Science, National Heart Center, Singapore.
Insights
Cardiac MRI reveals that myocardial fibrosis and extracellular volume expansion in aortic stenosis patients predict left ventricular decompensation and mortality. This aids in monitoring valve disease and optimizing treatment timing.
Area of Science:
- Cardiology
- Radiology
- Biomedical Engineering
Background:
- Progressive myocardial fibrosis is key in aortic stenosis progression to heart failure.
- Diffuse fibrosis correlates with extracellular volume expansion, detectable via T1 mapping.
- Late gadolinium enhancement (LGE) specifically identifies replacement fibrosis.
Purpose of the Study:
- To investigate the extracellular compartment and myocardial fibrosis in aortic stenosis using cardiac magnetic resonance (CMR).
- To assess the association of these findings with left ventricular decompensation and mortality.
- To establish CMR's role in tracking myocardial health in valve disease.
Main Methods:
- A prospective observational study of 203 subjects (166 with aortic stenosis, 37 controls).
- Comprehensive phenotypic characterization using CMR to quantify indexed extracellular volume (iECV) and identify LGE.
- All-cause mortality was tracked over a mean follow-up of 2.9 years.
Main Results:
- iECV correlated well with diffuse histological fibrosis (r=0.87, p<0.001).
- Patients with aortic stenosis showed increased iECV compared to controls (23.6 vs. 16.1 ml/m², p<0.001).
- Categorization by iECV and LGE revealed progressive left ventricular decompensation and significantly increased mortality risk across groups (p=0.009).
Conclusions:
- CMR effectively detects ventricular decompensation in aortic stenosis by identifying myocardial extracellular expansion and replacement fibrosis.
- These CMR findings are valuable for monitoring myocardial health in valve disease.
- This approach can help optimize the timing for valve replacement surgery.
Objectives:
Cardiac magnetic resonance (CMR) was used to investigate the extracellular compartment and myocardial fibrosis in patients with aortic stenosis, as well as their association with other measures of left ventricular decompensation and mortality.
Background:
Progressive myocardial fibrosis drives the transition from hypertrophy to heart failure in aortic stenosis. Diffuse fibrosis is associated with extracellular volume expansion that is detectable by T1 mapping, whereas late gadolinium enhancement (LGE) detects replacement fibrosis.
Methods:
In a prospective observational cohort study, 203 subjects (166 with aortic stenosis [69 years; 69% male]; 37 healthy volunteers [68 years; 65% male]) underwent comprehensive phenotypic characterization with clinical imaging and biomarker evaluation. On CMR, we quantified the total extracellular volume of the myocardium indexed to body surface area (iECV). The iECV upper limit of normal from the control group (22.5 ml/m2) was used to define extracellular compartment expansion. Areas of replacement mid-wall LGE were also identified. All-cause mortality was determined during 2.9 ± 0.8 years of follow up.
Results:
iECV demonstrated a good correlation with diffuse histological fibrosis on myocardial biopsies (r = 0.87; p < 0.001; n = 11) and was increased in patients with aortic stenosis (23.6 ± 7.2 ml/m2 vs. 16.1 ± 3.2 ml/m2 in control subjects; p < 0.001). iECV was used together with LGE to categorize patients with normal myocardium (iECV <22.5 ml/m2; 51% of patients), extracellular expansion (iECV ≥22.5 ml/m2; 22%), and replacement fibrosis (presence of mid-wall LGE, 27%). There was evidence of increasing hypertrophy, myocardial injury, diastolic dysfunction, and longitudinal systolic dysfunction consistent with progressive left ventricular decompensation (all p < 0.05) across these groups. Moreover, this categorization was of prognostic value with stepwise increases in unadjusted all-cause mortality (8 deaths/1,000 patient-years vs. 36 deaths/1,000 patient-years vs. 71 deaths/1,000 patient-years, respectively; p = 0.009).
Conclusions:
CMR detects ventricular decompensation in aortic stenosis through the identification of myocardial extracellular expansion and replacement fibrosis. This holds major promise in tracking myocardial health in valve disease and for optimizing the timing of valve replacement. (The Role of Myocardial Fibrosis in Patients With Aortic Stenosis; NCT01755936).
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