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Imaging flow dynamics in murine coronary arteries with spectral domain optical Doppler tomography

Blood flow in murine epicardial and intra-myocardial coronary arteries was measured in vivo with spectral domain optical Doppler tomography (SD-ODT). Videos at frame rates up to 180 fps were collected and processed to extract phase shifts associated with moving erythrocytes in the coronary arteries....

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Autores principales: Hammer, Daniel X., Mujat, Mircea, Ferguson, R. Daniel, Iftimia, Nicusor, Escobedo, Daniel, Jenkins, J. Travis, Lim, Hyunji, Milner, Thomas E., Feldman, Marc D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Optical Society of America 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3345800/
https://www.ncbi.nlm.nih.gov/pubmed/22574259
http://dx.doi.org/10.1364/BOE.3.000701
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author Hammer, Daniel X.
Mujat, Mircea
Ferguson, R. Daniel
Iftimia, Nicusor
Escobedo, Daniel
Jenkins, J. Travis
Lim, Hyunji
Milner, Thomas E.
Feldman, Marc D.
author_facet Hammer, Daniel X.
Mujat, Mircea
Ferguson, R. Daniel
Iftimia, Nicusor
Escobedo, Daniel
Jenkins, J. Travis
Lim, Hyunji
Milner, Thomas E.
Feldman, Marc D.
author_sort Hammer, Daniel X.
collection PubMed
description Blood flow in murine epicardial and intra-myocardial coronary arteries was measured in vivo with spectral domain optical Doppler tomography (SD-ODT). Videos at frame rates up to 180 fps were collected and processed to extract phase shifts associated with moving erythrocytes in the coronary arteries. Radial averaging centered on the vessel lumen provided spatial smoothing of phase noise in a single cross-sectional frame for instantaneous peak velocity measurement without distortion of the flow profile. Temporal averaging synchronized to the cardiac cycle (i.e., gating) was also performed to reduce phase noise, although resulting in lower flow profiles. The vessel angle with respect to incident imaging beam was measured with three-dimensional raster scans collected from the same region as the high speed cross-sectional scans. The variability in peak phase measurement was 10-15% from cycle to cycle on a single animal but larger for measurements among animals. The inter-subject variability is attributed to factors related to real physiological and anatomical differences, instrumentation variables, and measurement error. The measured peak instantaneous flow velocity in a ~40-µm diameter vessel was 23.5 mm/s (28 kHz Doppler phase shift). In addition to measurement of the flow velocity, we observed several dynamic features of the vessel and surrounding myocardium in the intensity and phase sequences, including asymmetric vessel deformation and rapid flow reversal immediately following maximum flow, in confirmation of known coronary artery flow dynamics. SD-ODT is an optical imaging tool that can provide in vivo measures of structural and functional information on cardiac function in small animals.
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spelling pubmed-33458002012-05-09 Imaging flow dynamics in murine coronary arteries with spectral domain optical Doppler tomography Hammer, Daniel X. Mujat, Mircea Ferguson, R. Daniel Iftimia, Nicusor Escobedo, Daniel Jenkins, J. Travis Lim, Hyunji Milner, Thomas E. Feldman, Marc D. Biomed Opt Express Optical Coherence Tomography Blood flow in murine epicardial and intra-myocardial coronary arteries was measured in vivo with spectral domain optical Doppler tomography (SD-ODT). Videos at frame rates up to 180 fps were collected and processed to extract phase shifts associated with moving erythrocytes in the coronary arteries. Radial averaging centered on the vessel lumen provided spatial smoothing of phase noise in a single cross-sectional frame for instantaneous peak velocity measurement without distortion of the flow profile. Temporal averaging synchronized to the cardiac cycle (i.e., gating) was also performed to reduce phase noise, although resulting in lower flow profiles. The vessel angle with respect to incident imaging beam was measured with three-dimensional raster scans collected from the same region as the high speed cross-sectional scans. The variability in peak phase measurement was 10-15% from cycle to cycle on a single animal but larger for measurements among animals. The inter-subject variability is attributed to factors related to real physiological and anatomical differences, instrumentation variables, and measurement error. The measured peak instantaneous flow velocity in a ~40-µm diameter vessel was 23.5 mm/s (28 kHz Doppler phase shift). In addition to measurement of the flow velocity, we observed several dynamic features of the vessel and surrounding myocardium in the intensity and phase sequences, including asymmetric vessel deformation and rapid flow reversal immediately following maximum flow, in confirmation of known coronary artery flow dynamics. SD-ODT is an optical imaging tool that can provide in vivo measures of structural and functional information on cardiac function in small animals. Optical Society of America 2012-03-13 /pmc/articles/PMC3345800/ /pubmed/22574259 http://dx.doi.org/10.1364/BOE.3.000701 Text en ©2012 Optical Society of America http://creativecommons.org/licenses/by-nc-nd/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-Noncommercial-No Derivative Works 3.0 Unported License, which permits download and redistribution, provided that the original work is properly cited. This license restricts the article from being modified or used commercially.
spellingShingle Optical Coherence Tomography
Hammer, Daniel X.
Mujat, Mircea
Ferguson, R. Daniel
Iftimia, Nicusor
Escobedo, Daniel
Jenkins, J. Travis
Lim, Hyunji
Milner, Thomas E.
Feldman, Marc D.
Imaging flow dynamics in murine coronary arteries with spectral domain optical Doppler tomography
title Imaging flow dynamics in murine coronary arteries with spectral domain optical Doppler tomography
title_full Imaging flow dynamics in murine coronary arteries with spectral domain optical Doppler tomography
title_fullStr Imaging flow dynamics in murine coronary arteries with spectral domain optical Doppler tomography
title_full_unstemmed Imaging flow dynamics in murine coronary arteries with spectral domain optical Doppler tomography
title_short Imaging flow dynamics in murine coronary arteries with spectral domain optical Doppler tomography
title_sort imaging flow dynamics in murine coronary arteries with spectral domain optical doppler tomography
topic Optical Coherence Tomography
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3345800/
https://www.ncbi.nlm.nih.gov/pubmed/22574259
http://dx.doi.org/10.1364/BOE.3.000701
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