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Characterizing relationship between optical microangiography signals and capillary flow using microfluidic channelsopen access

Authors
Choi, Woo JuneQin, WanChen, Chieh-LiWang, JingangZhang, QinqinYang, XiaoqiGao, Bruce Z.Wang, Ruikang K.
Issue Date
Jul-2016
Publisher
Optica Publishing Group
Citation
BIOMEDICAL OPTICS EXPRESS, v.7, no.7, pp 2709 - 2728
Pages
20
Journal Title
BIOMEDICAL OPTICS EXPRESS
Volume
7
Number
7
Start Page
2709
End Page
2728
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/67972
DOI
10.1364/BOE.7.002709
ISSN
2156-7085
Abstract
Optical microangiography (OMAG) is a powerful optical angiographic tool to visualize micro-vascular flow in vivo. Despite numerous demonstrations for the past several years of the qualitative relationship between OMAG and flow, no convincing quantitative relationship has been proven. In this paper, we attempt to quantitatively correlate the OMAG signal with flow. Specifically, we develop a simplified analytical model of the complex OMAG, suggesting that the OMAG signal is a product of the number of particles in an imaging voxel and the decorrelation of OCT (optical coherence tomography) signal, determined by flow velocity, interframe time interval, and wavelength of the light source. Numerical simulation with the proposed model reveals that if the OCT amplitudes are correlated, the OMAG signal is related to a total number of particles across the imaging voxel cross-section per unit time (flux); otherwise it would be saturated but its strength is proportional to the number of particles in the imaging voxel (concentration). The relationship is validated using microfluidic flow phantoms with various preset flow metrics. This work suggests OMAG is a promising quantitative tool for the assessment of vascular flow. (C) 2016 Optical Society of America
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Choi, Woo June
창의ICT공과대학 (전자전기공학부)
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