Osama M Abdullah1, Arnold David Gomez2,3, Samer Merchant2, Michael Heidinger4, Steven Poelzing5, Edward W Hsu2. 1. Department of Bioengineering, University of Utah, Salt Lake City, Utah, USA. osama.abdullah@utah.edu. 2. Department of Bioengineering, University of Utah, Salt Lake City, Utah, USA. 3. Division of Cardiothoracic Surgery, University of Utah, Salt Lake City, Utah, USA. 4. Nora Eccles Harrison Cardiovascular Research and Training Institute (CVRTI), University of Utah, Salt Lake City, Utah, USA. 5. Virginia Tech-Wake Forest University School of Biomedical Engineering and Sciences, Blacksburg, Virginia, USA.
Abstract
PURPOSE: To seek a better understanding of the effect of organized capillary flow on the MR diffusion-weighted signal. METHODS: A theoretical framework was proposed to describe the diffusion-weighted MR signal, which was then validated both numerically using a realistic model of capillary network and experimentally in an animal model of isolated perfused heart preparation with myocardial blood flow verified by means of direct arterial spin labeling measurements. RESULTS: Microcirculation in organized tissues gave rise to an MR signal that could be described as a combination of the bi-exponential behavior of conventional intravoxel incoherent motion (IVIM) theory and diffusion tensor imaging (DTI) -like anisotropy of the vascular signal, with the flow-related pseudo diffusivity represented as the linear algebraic product between the encoding directional unit vector and an appropriate tensor entity. Very good agreement between theoretical predictions and both numerical and experimental observations were found. CONCLUSION: These findings suggest that the DTI formalism of anisotropic spin motion can be incorporated into the classical IVIM theory to describe the MR signal arising from diffusion and microcirculation in organized tissues. Magn Reson Med 76:1252-1262, 2016.
PURPOSE: To seek a better understanding of the effect of organized capillary flow on the MR diffusion-weighted signal. METHODS: A theoretical framework was proposed to describe the diffusion-weighted MR signal, which was then validated both numerically using a realistic model of capillary network and experimentally in an animal model of isolated perfused heart preparation with myocardial blood flow verified by means of direct arterial spin labeling measurements. RESULTS: Microcirculation in organized tissues gave rise to an MR signal that could be described as a combination of the bi-exponential behavior of conventional intravoxel incoherent motion (IVIM) theory and diffusion tensor imaging (DTI) -like anisotropy of the vascular signal, with the flow-related pseudo diffusivity represented as the linear algebraic product between the encoding directional unit vector and an appropriate tensor entity. Very good agreement between theoretical predictions and both numerical and experimental observations were found. CONCLUSION: These findings suggest that the DTI formalism of anisotropic spin motion can be incorporated into the classical IVIM theory to describe the MR signal arising from diffusion and microcirculation in organized tissues. Magn Reson Med 76:1252-1262, 2016.
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