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首页> 外文期刊>Biomedical Microdevices >Multiscale modeling of protein transport in silicon membrane nanochannels. Part 2. From molecular parameters to a predictive continuum diffusion model
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Multiscale modeling of protein transport in silicon membrane nanochannels. Part 2. From molecular parameters to a predictive continuum diffusion model

机译:硅膜纳米通道中蛋白质转运的多尺度建模。第2部分。从分子参数到预测性连续扩散模型

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摘要

Transport and surface interactions of proteins in nanopore membranes play a key role in many processes of biomedical importance. Although the use of porous materials provides a large surface-to-volume ratio, the efficiency of the operations is often determined by transport behavior, and this is complicated by the fact that transport paths (i.e., the pores) are frequently of molecular dimensions. Under these conditions, a protein diffusion can be slower than predicted from Fick law. The main contribution of this paper is the development of a mathematical model of this phenomenon, whose parameters are computed via molecular modeling, as described Part 1. Our multiscale modeling methodology, validated by using experimental results related to the diffusion of lysozyme molecules, constitutes an "ab initio" recipe, for which no experimental data are needed to predict the protein release, and can be tailored in principle to match any different protein and any different surface, thus filling gap between the nano and the macroscale.
机译:蛋白质在纳米孔膜中的转运和表面相互作用在许多具有生物医学重要性的过程中起着关键作用。尽管使用多孔材料提供了较大的表面积与体积之比,但是操作的效率通常取决于传输行为,并且由于传输路径(即孔)通常具有分子尺寸这一事实而使操作复杂化。在这些条件下,蛋白质扩散的速度可能比Fick定律所预测的要慢。本文的主要贡献是开发了该现象的数学模型,该模型的参数是通过分子建模来计算的,如第1部分所述。我们的多尺度建模方法通过使用与溶菌酶分子扩散有关的实验结果进行了验证,构成了一种“从头开始”的配方,不需要任何实验数据即可预测蛋白质的释放,并且可以原则上进行定制以匹配任何不同的蛋白质和任何不同的表面,从而填补了纳米级和宏观级之间的空白。

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