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Updated: Apr 27, 2026

In Vivo Quantitative Assessment of Myocardial Structure, Function, Perfusion and Viability Using Cardiac Micro-computed Tomography
Published on: February 16, 2016
Coronary microvascular dysfunction is related to abnormalities in myocardial structure and function in cardiac
Sharmila Dorbala1, Divya Vangala2, John Bruyere2
1Noninvasive Cardiovascular Imaging Program, Heart and Vascular Center, Departments of Radiology and Medicine (Cardiology), Brigham and Women's Hospital, Harvard Medical School, Boston, Massachusetts; Division of Nuclear Medicine and Molecular Imaging, Department of Radiology, Brigham and Women's Hospital, Harvard Medical School, Boston, Massachusetts; Cardiovascular Division and Cardiac Amyloidosis Program, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, Massachusetts.
Insights
Cardiac amyloidosis significantly impairs coronary microvascular function, leading to reduced blood flow and coronary flow reserve even without coronary artery disease. This dysfunction likely explains anginal symptoms in affected patients.
Area of Science:
- Cardiology
- Cardiovascular Imaging
- Amyloidosis Research
Background:
- Cardiac amyloidosis frequently causes angina, even without significant coronary artery disease (CAD).
- The underlying mechanism for angina in cardiac amyloidosis, particularly concerning microvascular function, remains incompletely understood.
Purpose of the Study:
- To investigate and test the hypothesis that coronary microvascular function is impaired in individuals diagnosed with cardiac amyloidosis.
- To compare microvascular function between patients with cardiac amyloidosis and those with hypertensive left ventricular hypertrophy (LVH).
Main Methods:
- Prospective enrollment of 31 subjects: 21 with cardiac amyloidosis (no epicardial CAD) and 10 with hypertensive LVH.
- Utilized N-13 ammonia positron emission tomography (PET) and 2D echocardiography for rest and vasodilator stress imaging.
- Quantified myocardial blood flow (MBF) at rest and peak hyperemia, calculating coronary flow reserve (CFR) adjusted for rate-pressure product.
Main Results:
- The cardiac amyloidosis group exhibited significantly lower rest MBF, stress MBF, and CFR compared to the LVH group.
- Minimal coronary vascular resistance was notably higher in the amyloidosis group.
- Over 95% of amyloidosis patients demonstrated reduced peak stress MBF, with amyloidosis diagnosis, increased left ventricular mass, and age identified as independent predictors of impaired coronary vasodilator function.
Conclusions:
- Coronary microvascular dysfunction is highly prevalent in cardiac amyloidosis, irrespective of epicardial CAD.
- This microvascular impairment offers a potential explanation for the anginal symptoms experienced by these patients.
- Further research is warranted to explore therapeutic strategies targeting amyloidosis to improve coronary vasomotion.
Objectives:
The purpose of this study was to test the hypothesis that coronary microvascular function is impaired in subjects with cardiac amyloidosis.
Background:
Effort angina is common in subjects with cardiac amyloidosis, even in the absence of epicardial coronary artery disease (CAD).
Methods:
Thirty-one subjects were prospectively enrolled in this study, including 21 subjects with definite cardiac amyloidosis without epicardial CAD and 10 subjects with hypertensive left ventricular hypertrophy (LVH). All subjects underwent rest and vasodilator stress N-13 ammonia positron emission tomography and 2-dimensional echocardiography. Global left ventricular myocardial blood flow (MBF) was quantified at rest and during peak hyperemia, and coronary flow reserve (CFR) was computed (peak stress MBF/rest MBF) adjusting for rest rate pressure product.
Results:
Compared with the LVH group, the amyloid group showed lower rest MBF (0.59 ± 0.15 ml/g/min vs. 0.88 ± 0.23 ml/g/min; p = 0.004), stress MBF (0.85 ± 0.29 ml/g/min vs. 1.85 ± 0.45 ml/g/min; p < 0.0001), and CFR (1.19 ± 0.38 vs. 2.23 ± 0.88; p < 0.0001) and higher minimal coronary vascular resistance (111 ± 40 ml/g/min/mm Hg vs. 70 ± 19 ml/g/min/mm Hg; p = 0.004). Of note, almost all subjects with amyloidosis (>95%) had significantly reduced peak stress MBF (<1.3 ml/g/min). In multivariable linear regression analyses, a diagnosis of amyloidosis, increased left ventricular mass, and age were the only independent predictors of impaired coronary vasodilator function.
Conclusions:
Coronary microvascular dysfunction is highly prevalent in subjects with cardiac amyloidosis, even in the absence of epicardial CAD, and may explain their anginal symptoms. Further study is required to understand whether specific therapy directed at amyloidosis may improve coronary vasomotion in amyloidosis.
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