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Updated: Jun 13, 2025

Diffusion Imaging in the Rat Cervical Spinal Cord
Published on: April 7, 2015
Cardiac diffusion-weighted and tensor imaging: A consensus statement from the special interest group of the Society
Erica Dall'Armellina1, Daniel B Ennis2, Leon Axel3
1Biomedical Imaging Science Department, Leeds Institute of Cardiovascular and Metabolic Medicine, Leeds, UK.
Insights
Cardiac diffusion tensor imaging (cDTI) offers a novel way to visualize heart microstructure. This technique is feasible, reproducible, and provides unique insights into myocardial pathophysiology.
Area of Science:
- Cardiovascular Magnetic Resonance (CMR)
- Cardiac Microstructure Imaging
Background:
- Cardiac diffusion-weighted imaging (cDWI) and diffusion tensor imaging (cDTI) are emerging clinical tools.
- These techniques assess the 3D microstructure of the heart by tracking water molecule displacement.
Purpose of the Study:
- To provide recommendations for clinical and research cDWI and cDTI.
- To introduce cardiac microstructure and its role in cardiac physiology and pathophysiology.
Main Methods:
- Quantification of microstructural changes using metrics like mean diffusivity (MD), fractional anisotropy (FA), helix angle (HA), transverse angle (TA), and sheetlet angles (E2A).
- Focus on terminology, acquisition, postprocessing, data analysis, and interpretation of biomarkers.
Main Results:
- Cardiac diffusion tensor imaging (cDTI) is demonstrated to be feasible, accurate, and reproducible.
- The study highlights the potential of cDTI to offer unique insights into myocardial pathophysiology.
Conclusions:
- Despite challenges and the need for technical improvements, cDTI is a valuable tool for understanding the heart.
- cDTI provides unique insights into myocardial pathophysiology, aiding both clinical and research applications.
Abstract:
Thanks to recent developments in cardiovascular magnetic resonance (CMR), cardiac diffusion-weighted magnetic resonance is fast emerging in a range of clinical applications. Cardiac diffusion-weighted imaging (cDWI) and diffusion tensor imaging (cDTI) now enable investigators and clinicians to assess and quantify the tridimensional microstructure of the heart. Free-contrast DWI is uniquely sensitized to the presence and displacement of water molecules within the myocardial tissue, including the intracellular, extracellular, and intravascular spaces. CMR can determine changes in microstructure by quantifying: a) mean diffusivity (MD)-measuring the magnitude of diffusion; b) fractional anisotropy (FA)-specifying the directionality of diffusion; c) helix angle (HA) and transverse angle (TA)-indicating the orientation of the cardiomyocytes; d) absolute sheetlet angle (E2A) and E2A mobility-measuring the alignment and systolic-diastolic mobility of the sheetlets, respectively. This document provides recommendations for both clinical and research cDWI and cDTI, based on published evidence when available and expert consensus when not. It introduces the cardiac microstructure focusing on the cardiomyocytes and their role in cardiac physiology and pathophysiology. It highlights methods, observations, and recommendations in terminology, acquisition schemes, postprocessing pipelines, data analysis, and interpretation of the different biomarkers. Despite the ongoing challenges discussed in the document and the need for ongoing technical improvements, it is clear that cDTI is indeed feasible, can be accurately and reproducibly performed and, most importantly, can provide unique insights into myocardial pathophysiology.
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