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Poisson-Nernst-Planck equations for simulating biomolecular diffusion-reaction processes II: size effects on ionic distributions and diffusion-reaction rates.

机译:用于模拟生物分子扩散反应过程的Poisson-Nernst-Planck方程II:大小对离子分布和扩散反应速率的影响。

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摘要

The effects of finite particle size on electrostatics, density profiles, and diffusion have been a long existing topic in the study of ionic solution. The previous size-modified Poisson-Boltzmann and Poisson-Nernst-Planck models are revisited in this article. In contrast to many previous works that can only treat particle species with a single uniform size or two sizes, we generalize the Borukhov model to obtain a size-modified Poisson-Nernst-Planck (SMPNP) model that is able to treat nonuniform particle sizes. The numerical tractability of the model is demonstrated as well. The main contributions of this study are as follows. 1), We show that an (arbitrarily) size-modified PB model is indeed implied by the SMPNP equations under certain boundary/interface conditions, and can be reproduced through numerical solutions of the SMPNP. 2), The size effects in the SMPNP effectively reduce the densities of highly concentrated counterions around the biomolecule. 3), The SMPNP is applied to the diffusion-reaction process for the first time, to our knowledge. In the case of low substrate density near the enzyme reactive site, it is observed that the rate coefficients predicted by SMPNP model are considerably larger than those by the PNP model, suggesting both ions and substrates are subject to finite size effects. 4), An accurate finite element method and a convergent Gummel iteration are developed for the numerical solution of the completely coupled nonlinear system of SMPNP equations.
机译:有限粒径对静电,密度分布和扩散的影响已成为离子溶液研究中长期存在的话题。本文将重新讨论以前的尺寸修改后的Poisson-Boltzmann模型和Poisson-Nernst-Planck模型。与许多以前只能处理一个或两个单一大小的粒子种类的工作相比,我们将Borukhov模型进行了概括,以获得能够处理非均匀粒度的尺寸修改后的Poisson-Nernst-Planck(SMPNP)模型。该模型的数值可处理性也得到了证明。这项研究的主要贡献如下。 1),我们表明,在某些边界/界面条件下,SMPNP方程确实隐含了一个(任意)尺寸修改的PB模型,并且可以通过SMPNP的数值解来进行再现。 2),SMPNP中的尺寸效应可有效降低生物分子周围高浓度抗衡离子的密度。 3),据我们所知,SMPNP首次应用于扩散反应过程。在酶反应位点附近底物密度低的情况下,可以观察到SMPNP模型预测的速率系数比PNP模型预测的速率系数大得多,这表明离子和底物都受到有限尺寸的影响。 4)针对完全耦合的非线性SMPNP方程组的数值解,开发了一种精确的有限元方法和收敛的Gummel迭代法。

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