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本文引用的文献

1
Assessment of the best flow model to characterize diffuse correlation spectroscopy data acquired directly on the brain.评估用于表征直接在大脑上采集的扩散相关光谱数据的最佳流动模型。
Biomed Opt Express. 2015 Oct 7;6(11):4288-301. doi: 10.1364/BOE.6.004288. eCollection 2015 Nov 1.
2
Diffuse Optics for Tissue Monitoring and Tomography.用于组织监测和断层扫描的漫射光学
Rep Prog Phys. 2010 Jul;73(7). doi: 10.1088/0034-4885/73/7/076701.
3
Multidistance diffuse correlation spectroscopy for simultaneous estimation of blood flow index and optical properties.用于同时估计血流指数和光学特性的多距离扩散相关光谱技术。
J Biomed Opt. 2015 May;20(5):55001. doi: 10.1117/1.JBO.20.5.055001.
4
Neurophotonics: non-invasive optical techniques for monitoring brain functions.神经光子学:用于监测脑功能的非侵入性光学技术。
Funct Neurol. 2014 Oct-Dec;29(4):223-30.
5
Diffuse correlation spectroscopy for non-invasive, micro-vascular cerebral blood flow measurement.漫射相关光谱法用于非侵入式、微血管脑血流测量。
Neuroimage. 2014 Jan 15;85 Pt 1(0 1):51-63. doi: 10.1016/j.neuroimage.2013.06.017. Epub 2013 Jun 14.
6
On the normalization of cerebral blood flow.脑血流的正常化。
J Cereb Blood Flow Metab. 2013 May;33(5):669-72. doi: 10.1038/jcbfm.2013.39. Epub 2013 Mar 13.
7
Due to intravascular multiple sequential scattering, Diffuse Correlation Spectroscopy of tissue primarily measures relative red blood cell motion within vessels.由于血管内的多次连续散射,组织的扩散相关光谱主要测量血管内相对红细胞的运动。
Biomed Opt Express. 2011 Jul 1;2(7):2047-54. doi: 10.1364/BOE.2.002047. Epub 2011 Jun 24.
8
Diffusing-wave spectroscopy with dynamic contrast variation: disentangling the effects of blood flow and extravascular tissue shearing on signals from deep tissue.动态对比变化的扩散波谱学:解析血流和血管外组织剪切对深部组织信号的影响。
Biomed Opt Express. 2010 Nov 29;1(5):1502-1513. doi: 10.1364/BOE.1.001502.
9
Validation of diffuse correlation spectroscopy measurements of rodent cerebral blood flow with simultaneous arterial spin labeling MRI; towards MRI-optical continuous cerebral metabolic monitoring.啮齿动物脑血流的扩散相关光谱测量与同步动脉自旋标记MRI的验证;迈向MRI-光学连续脑代谢监测
Biomed Opt Express. 2010 Aug 10;1(2):553-565. doi: 10.1364/BOE.1.000553.
10
Laser Doppler blood flowmetry using two wavelengths: Monte Carlo simulations and measurements.使用两种波长的激光多普勒血流仪:蒙特卡罗模拟与测量
Appl Opt. 1994 Jun 1;33(16):3549-58. doi: 10.1364/AO.33.003549.

建立与血流的漫射相关光谱信号关系。

Establishing the diffuse correlation spectroscopy signal relationship with blood flow.

机构信息

MGH/HST Athinoula A. Martinos Center for Biomedical Imaging , Department of Radiology, Massachusetts General Hospital, Harvard Medical School, Charlestown, Massachusetts 02129, United States.

出版信息

Neurophotonics. 2016 Jul;3(3):031412. doi: 10.1117/1.NPh.3.3.031412. Epub 2016 Jun 13.

DOI:10.1117/1.NPh.3.3.031412
PMID:27335889
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4904065/
Abstract

Diffuse correlation spectroscopy (DCS) measurements of blood flow rely on the sensitivity of the temporal autocorrelation function of diffusively scattered light to red blood cell (RBC) mean square displacement (MSD). For RBCs flowing with convective velocity [Formula: see text], the autocorrelation is expected to decay exponentially with [Formula: see text], where [Formula: see text] is the delay time. RBCs also experience shear-induced diffusion with a diffusion coefficient [Formula: see text] and an MSD of [Formula: see text]. Surprisingly, experimental data primarily reflect diffusive behavior. To provide quantitative estimates of the relative contributions of convective and diffusive movements, we performed Monte Carlo simulations of light scattering through tissue of varying vessel densities. We assumed laminar vessel flow profiles and accounted for shear-induced diffusion effects. In agreement with experimental data, we found that diffusive motion dominates the correlation decay for typical DCS measurement parameters. Furthermore, our model offers a quantitative relationship between the RBC diffusion coefficient and absolute tissue blood flow. We thus offer, for the first time, theoretical support for the empirically accepted ability of the DCS blood flow index ([Formula: see text]) to quantify tissue perfusion. We find [Formula: see text] to be linearly proportional to blood flow, but with a proportionality modulated by the hemoglobin concentration and the average blood vessel diameter.

摘要

漫射相关光谱(DCS)测量血流依赖于扩散散射光的时间自相关函数对红细胞(RBC)均方位移(MSD)的灵敏度。对于以对流速度[Formula: see text]流动的 RBC,自相关预计会随[Formula: see text]指数衰减,其中[Formula: see text]是延迟时间。RBC 还会受到剪切诱导扩散的影响,扩散系数为[Formula: see text],MSD 为[Formula: see text]。令人惊讶的是,实验数据主要反映了扩散行为。为了定量估计对流和扩散运动的相对贡献,我们通过模拟组织中不同血管密度的光散射来进行蒙特卡罗模拟。我们假设血管流动剖面为层流,并考虑了剪切诱导扩散效应。与实验数据一致,我们发现对于典型的 DCS 测量参数,扩散运动主导了相关衰减。此外,我们的模型提供了 RBC 扩散系数与绝对组织血流之间的定量关系。因此,我们首次为 DCS 血流指数([Formula: see text])定量评估组织灌注的经验接受能力提供了理论支持。我们发现[Formula: see text]与血流呈线性正比关系,但这种比例关系受到血红蛋白浓度和平均血管直径的调制。