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首页> 外文期刊>Analytical and bioanalytical chemistry >Modeling the relative impact of capsular tissue effects on implanted glucose sensor time lag and signal attenuation
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Modeling the relative impact of capsular tissue effects on implanted glucose sensor time lag and signal attenuation

机译:对荚膜组织效应对植入的葡萄糖传感器时滞和信号衰减的相对影响进行建模

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摘要

Little is known mechanistically about why implanted glucose sensors lag behind blood glucose levels in both the time to peak sensor response and the magnitude of peak sensor response. A mathematical model of glucose transport from capillaries through surrounding tissue to the sensor surface was constructed to address how different aspects of the tissue affect glucose transport to an implanted sensor. Physiologically relevant values of capsule diffusion coefficient, capsule porosity, cellular glucose consumption, capsule thickness, and subcutaneous vessel density were used as inputs to create simulated sensor traces that mimic experimental instances of time lag and concentration attenuation relative to a given blood glucose profile. Using logarithmic sensitivity analysis, each parameter was analyzed to study the effect of these variables on both lag and attenuation. Results identify capsule thickness as the strongest determinant of sensor time lag, while subcutaneous vessel density and capsule porosity had the largest effects on attenuation of glucose that reaches the sensor surface. These findings provide mechanistic insight for the rational design of sensor modifications that may alleviate the deleterious consequences of tissue effects on implanted sensor performance.
机译:在机械上对为何植入的葡萄糖传感器在达到峰值传感器响应的时间和峰值传感器响应的幅度上都落后于血糖水平了解得很少。构造了从毛细血管穿过周围组织到传感器表面的葡萄糖转运的数学模型,以解决组织的不同方面如何影响葡萄糖向植入式传感器的转运。胶囊扩散系数,胶囊孔隙率,细胞葡萄糖消耗,胶囊厚度和皮下血管密度的生理相关值用作输入,以创建模拟传感器迹线,以模拟相对于给定血糖曲线的时滞和浓度衰减的实验实例。使用对数灵敏度分析,分析每个参数以研究这些变量对滞后和衰减的影响。结果确定胶囊厚度是传感器时间滞后的最强决定因素,而皮下血管密度和胶囊孔隙度对到达传感器表面的葡萄糖衰减影响最大。这些发现为合理设计传感器改型提供了机械方面的见解,可以减轻组织效应对植入传感器性能的有害影响。

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