> We investigate the optical wavelength dependence in quantitative photoacoustic (QPA) assessment of red blood cell (RBC) aggregation and oxygen '/> <fi >In vitro</fi>In vitro photoacoustic spectroscopy of pulsatile blood flow: Probing the interrelationship between red blood cell aggregation and oxygen saturation
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In vitroIn vitro photoacoustic spectroscopy of pulsatile blood flow: Probing the interrelationship between red blood cell aggregation and oxygen saturation

机译:在体外体外 脉动血流的光声光谱:探测红细胞聚集与氧饱和度之间的相互关系

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> We investigate the optical wavelength dependence in quantitative photoacoustic (QPA) assessment of red blood cell (RBC) aggregation and oxygen saturation (sO 2 ) during pulsatile blood flow. Experimentally, the pulsatile flow was imaged with a 700 to 900 nm laser using the VevoLAZR. Theoretically, the photoacoustic (PA) signals were computed based on a Green's function integrated with a Monte Carlo simulation of radiant fluence. The pulsatile flow created periodic conditions of RBC aggregation/nonaggregation, altering the aggregate size, and, in turn, the sO 2 . The dynamic range, DR (a metric of change in PA power) from 700 to 900 nm for nonaggregated RBCs, was 5 dB for both experiment and theory. A significant difference in the DR for aggregated RBCs was 1.5 dB between experiment and theory. Comparing the DR at different wavelengths, the DR from nonaggregated to aggregated RBCs at 700 nm was significantly smaller than that at 900 nm for both experiment (4.0 dB 7.1 dB) and theory (5.3 dB 9.0 dB). These results demonstrate that RBC aggregation simultaneously affects the absorber size and the absorption coefficient in photoacoustic imaging (PAI) of pulsatile blood flow. This investigation elucidates how QPA spectroscopy can be used for probing hemodynamics and oxygen transport by PAI of blood flow.
机译: > 我们研究了红细胞(RBC)聚集和氧饱和度的定量光声(QPA)评估的光学波长依赖性(所以 2 )在脉动血流期间。通过实验,使用VEVOLAZR将脉动流用700至900nm激光器成像。从理论上讲,基于与辐射辐射辐射流量的蒙特卡罗模拟集成的绿色功能来计算光声(PA)信号。脉动流量创建了RBC聚合/非聚集的周期性条件,改变了聚集大小,然后又为此 2 。对于非共gratedRBC,动态范围,从700到900nm的PA POW的PA电源的度量)为5 dB,适用于实验和理论。在实验和理论之间,聚集的RBC的DR博士的显着差异为1.5 dB。比较不同波长的DR,从700nm的非聚集到聚集的RBC的DR显着小于900nm的实验(4.0dB <7.1dB)和理论(5.3dB <9.0 dB)。这些结果表明RBC聚集同时影响脉动血流光声成像(PAI)中的吸收体尺寸和吸收系数。该研究阐明了如何通过血流探测血流动力学和氧气运输的QPA光谱方法。

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