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Quantifying uncertainties in the microvascular transport of nanoparticles

机译:量化纳米颗粒微血管运输中的不确定性

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The character of nanoparticle dispersion in the microvasculature is a driving factor in nanoparticle-based therapeutics and bio-sensing. It is difficult, with current experimental and engineering capability, to understand dispersion of nanoparticles because their vascular system is more complex than mouse models and because nanoparticle dispersion is so sensitive to in vivo environments. Furthermore, uncertainty cannot be ignored due to the high variation of location-specific vessel characteristics as well as variation across patients. In this paper, a computational method that considers uncertainty is developed to predict nanoparticle dispersion and transport characteristics in the microvasculature with a three step process. First, a computer simulation method is developed to predict blood flow and the dispersion of nanoparticles in the microvessels. Second, experiments for nanoparticle dispersion coefficients are combined with results from the computer model to suggest the true values of its unknown and unmeasurable parameters-red blood cell deformability and red blood cell interaction-using the Bayesian statistical framework. Third, quantitative predictions for nanoparticle transport in the tumor microvasculature aremade that consider uncertainty in the vessel diameter, flow velocity, and hematocrit. Our results show that nanoparticle transport is highly sensitive to the microvasculature.
机译:纳米颗粒在微脉管系统中的分散特性是基于纳米颗粒的治疗方法和生物传感的驱动因素。以当前的实验和工程能力,很难理解纳米粒子的分散,因为它们的血管系统比小鼠模型更复杂,并且因为纳米粒子的分散对体内环境非常敏感。此外,由于特定位置的血管特征的高度变化以及患者之间的变化,不确定性也不容忽视。在本文中,开发了一种考虑不确定性的计算方法,通过三步过程来预测纳米颗粒在微脉管系统中的分散和传输特性。首先,开发了一种计算机模拟方法来预测血液流动和纳米颗粒在微血管中的分散。其次,将纳米粒子弥散系数的实验与计算机模型的结果相结合,以使用贝叶斯统计框架显示其未知和无法测量的参数(红细胞变形性和红细胞相互作用)的真实值。第三,考虑到血管直径,流速和血细胞比容的不确定性,对肿瘤微脉管系统中的纳米颗粒运输进行了定量预测。我们的结果表明,纳米颗粒运输对微脉管系统高度敏感。

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