首页> 外文会议>SPIE Conference on Advanced Biomedical and Clinical Diagnostic and Surgical Guidance Systems >Simultaneous, noninvasive, in vivo, continuous monitoring of hematocrit, vascular volume, hemoglobin oxygen saturation, pulse rate and breathing rate in humans and other animal models using a single light source
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Simultaneous, noninvasive, in vivo, continuous monitoring of hematocrit, vascular volume, hemoglobin oxygen saturation, pulse rate and breathing rate in humans and other animal models using a single light source

机译:同时,非侵入性,体内,连续监测血细胞比容,血管体积,血红蛋白氧饱和,脉搏率和人类的呼吸率和其他动物模型使用单个光源

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摘要

We previously reported a new algorithm "PV[O]H" for continuous, noninvasive, in vivo monitoring of hematocrit changes in blood and have since shown its utility for monitoring in humans during 1) hemodialysis, 2) orthostatic perturbations and 3) during blood loss and fluid replacement in a rat model. We now show that the algorithm is sensitive to changes in hemoglobin oxygen saturation. We document the phenomenology of the effect and explain the effect using new results obtained from humans and rat models. The oxygen sensitivity derives from the differential absorption of autofluorescence originating in the static tissues by oxy and deoxy hemoglobin. Using this approach we show how to perform simultaneous, noninvasive, in vivo, continuous monitoring of hematocrit, vascular volume, hemoglobin oxygen saturation, pulse rate and breathing rate in mammals using a single light source. We suspect that monitoring of changes in this suite of vital signs can be provided with improved time response, sensitivity and precision compared to existing methodologies. Initial results also offer a more detailed glimpse into the systemic oxygen transport in the circulatory system of humans.
机译:我们之前报道了一种新的算法“PV [O] H”用于连续,非侵入性,体内监测血细胞比容的血液变化,并且由于在1)血液透析期间,在1)血液透析期间的血液透析期间的实用性以血液透析,2)在血液期间大鼠模型中的损失和流体替代。我们现在表明该算法对血红蛋白氧饱和度的变化很敏感。我们记录效果的现象学并使用从人和大鼠模型获得的新结果解释效果。氧敏感性来自氧杂环和脱氧血红蛋白的自发荧光的差异吸收。使用这种方法,我们展示了如何使用单个光源进行血细胞比容,血管容积,血红蛋白氧饱和度,脉搏率和呼吸速率的同时性,非侵入性,使用单个光源。我们怀疑,与现有方法相比,可以提供改善的时间响应,灵敏度和精确性的这种生命体征的变化监测。初始结果还提供了更详细的一瞥,进入人类循环系统的全身氧气运输。

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