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In Vivo Quantitative Assessment of Myocardial Structure, Function, Perfusion and Viability Using Cardiac Micro-computed Tomography
Published on: February 16, 2016
State-of-the-Art of Myocardial Perfusion by CMR: A Practical View
Guillem Pons-Lladó1, Peter Kellman2
1Head (Emeritus), Cardiac Imaging Unit, Cardiology Department, Hospital de Sant Pau, Universitat Autònoma de Barcelona, Clínica Creu Banca, 08034 Barcelona, Spain.
Insights
Quantitative perfusion (QP) using Cardiovascular Magnetic Resonance (CMR) offers an automated method for assessing inducible ischemia in ischemic heart disease (IHD). This advanced technique provides accurate myocardial blood flow and perfusion reserve measurements, improving patient diagnosis and prognosis.
Area of Science:
- Cardiovascular Imaging
- Medical Diagnostics
- Radiology
Background:
- Ischemic heart disease (IHD) poses a significant public health challenge, necessitating accurate diagnosis and prognostic stratification.
- While coronary angiography is established, assessing myocardial necrosis, function, and inducible ischemia is crucial for comprehensive patient management.
- Cardiovascular Magnetic Resonance (CMR) is a multiparametric imaging technique vital for evaluating these critical aspects of IHD.
Purpose of the Study:
- To review the application of myocardial perfusion CMR sequences for detecting and grading inducible ischemia.
- To highlight the advancements in quantitative perfusion (QP) CMR, particularly its automated dual-sequence strategy.
- To discuss the integration of automated QP CMR into diagnostic workflows for IHD patients.
Main Methods:
- Utilizing a dual-sequence strategy for signal intensity conversion to contrast agent concentration.
- Implementing automated processes for myocardial blood flow (MBF) calculation, pixel-wise flow mapping, and myocardial segmentation using machine learning.
- Acquiring perfusion data at both vasodilator stress and rest to determine stress/rest MBF and myocardial perfusion reserve (MPR).
Main Results:
- Quantitative perfusion (QP) provides automated calculation of myocardial blood flow (MBF) and myocardial perfusion reserve (MPR).
- Dual-sequence QP has demonstrated successful validation against reference methods and significant prognostic value in large studies.
- The automated nature of QP eliminates operator dependency, enabling seamless integration into automated diagnostic workflows.
Conclusions:
- Automated quantitative perfusion CMR is a significant advancement for assessing inducible ischemia in ischemic heart disease.
- This technique offers reliable and validated measurements of myocardial blood flow and perfusion reserve.
- The automation facilitates integration into future fully automated diagnostic workflows for IHD management.
Abstract:
Ischemic heart disease (IHD) outstands among diseases threatening public health. Essential for its management are the continuous advances in medical and interventional therapies, although a prompt and accurate diagnosis and prognostic stratification are equally important. Besides information on the anatomy of coronary arteries, well covered nowadays by invasive and non-invasive angiographic techniques, there are also other components of the disease with clinical impact, as the presence of myocardial necrosis, the extent of pump function impairment, and the presence and extent of inducible myocardial ischemia, that must be considered in every patient. Cardiovascular Magnetic Resonance (CMR) is a multiparametric diagnostic imaging technique that provides reliable information on these issues. Regarding the detection and grading of inducible ischemia in particular, the technique has been widely adopted in the form of myocardial perfusion sequences under vasodilator stress, which is the subject of this review. While the analysis of images is conventionally performed by visual inspection of dynamic first-pass studies, with the inherent dependency on the operator capability, the recent introduction of a reliable application of quantitative perfusion (QP) represents a significant advance in the field. QP is based on a dual-sequence strategy for conversion of signal intensities into contrast agent concentration units and includes a full automatization of processes such as myocardial blood flow (MBF) calculation (in mL/min/g), generation of a pixel-wise flow mapping, myocardial segmentation, based on machine learning, and allocation of MBF values to myocardial segments. The acquisition of this protocol during induced vasodilation and at rest gives values of stress/rest MBF (in mL/min/g) and myocardial perfusion reserve (MPR), both global and per segment. Dual-sequence QP has been successfully validated against different reference methods, and its prognostic value has been shown in large longitudinal studies. The fact of the whole process being automated, without operator interaction, permits to conceive new interesting scenarios of integration of CMR into systems of entirely automated diagnostic workflow in patients with IHD.
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