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Time-resolved optical spectroscopic quantification of the red blood cell damages caused by the cardiovascular devices

机译:心血管装置引起的红细胞损伤的时间分辨光学光谱定量

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Cardiovascular devices such as heart-lung machine generate un-physiological level of shear stress to damage red blood cells, leading to hemolysis. The diagnostic techniques of cell damages, however, have not yet been established. In this study, the time-resolved optical spectroscopy was applied to quantify red blood cell (RBC) damages caused by the extracorporeal circulation system. Experimentally, the fresh porcine blood was subjected to varying degrees of shear stress in the rotary blood pump, followed with measurement of the time-resolved transmission characteristics using the pico-second pulses at 651 nm. The propagated optical energy through the blood specimen was detected using a streak camera. The data were analyzed in terms of the mean cell volume (MCV) and mean cell hemoglobin concentration (MCHC) measured separately versus the energy and propagation time of the light pulses. The results showed that as the circulation time increased, the MCV increased with decrease in MCHC. It was speculated that the older RBCs with smaller size and fragile membrane properties had been selectively destroyed by the shear stress. The time-resolved optical spectroscopy is a useful technique in quantifying the RBCs' damages by measuring the energy and propagation time of the ultra-short light pulses through the blood.
机译:心血管装置,如心肺机,产生了不抗红细胞的剪切应力的未生理水平,导致溶血。然而,尚未建立细胞损害的诊断技术。在该研究中,施用时间分辨光学光谱法量化由体外循环系统引起的红细胞(RBC)损坏。通过实验,将新鲜的猪血血液在旋转泵中进行不同程度的剪切应力,然后使用651nm处的微微第二脉冲测量时间分辨的传动特性。使用连杆摄像头检测通过血液标本的传播光能。根据平均细胞体积(MCV)和平均细胞血红蛋白浓度(MCHC)分别分别进行分析数据与光脉冲的能量和传播时间相比。结果表明,随着循环时间增加,MCV随MCHC的降低而增加。据推测,通过剪切应力选择性地破坏了具有较小尺寸和脆性膜特性的较小RBC。时间分辨光学光谱是通过测量通过血液的超短光脉冲的能量和传播时间来量化RBCS损坏的有用技术。

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