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水解生物材料中水扩散的原子级建模。

Atomistic modeling of water diffusion in hydrolytic biomaterials.

机构信息

Biomechanics Group, Department of Bioengineering, Politecnico di Milano, Via Golgi 39, 20133 Milan, Italy.

出版信息

J Mol Model. 2012 Apr;18(4):1495-502. doi: 10.1007/s00894-011-1176-3. Epub 2011 Jul 23.

Abstract

One of the most promising applications of hydrolytically degrading biomaterials is their use as drug release carriers. These uses, however, require that the degradation and diffusion of drug are reliably predicted, which is complex to achieve through present experimental methods. Atomistic modeling can help in the knowledge-based design of degrading biomaterials with tuned drug delivery properties, giving insights on the small molecules diffusivity at intermediate states of the degradation process. We present here an atomistic-based approach to investigate the diffusion of water (through which hydrolytic degradation occurs) in degrading bulk models of poly(lactic acid) or PLA. We determine the water diffusion coefficient for different swelling states of the polymeric matrix (from almost dry to pure water) and for different degrees of degradation. We show that water diffusivity is highly influenced by the swelling degree, while little or not influenced by the degradation state. This approach, giving water diffusivity for different states of the matrix, can be combined with diffusion-reaction analytical methods in order to predict the degradation path on longer time scales. Furthermore, atomistic approach can be used to investigate diffusion of other relevant small molecules, eventually leading to the a priori knowledge of degradable biomaterials transport properties, helping the design of the drug delivery systems.

摘要

水解降解生物材料最有前途的应用之一是将其用作药物释放载体。然而,这些用途要求可靠地预测药物的降解和扩散,这通过目前的实验方法很难实现。原子建模可以帮助基于知识设计具有可调药物输送性能的降解生物材料,为降解过程中间状态下小分子的扩散提供见解。我们在这里提出了一种基于原子的方法来研究水解降解的聚乳酸(PLA)块状模型中水分子(通过水解降解发生)的扩散。我们确定了不同溶胀状态(从几乎干燥到纯水)和不同降解程度下的水扩散系数。我们表明,水的扩散系数受溶胀程度的影响很大,而受降解状态的影响很小或没有。这种方法可以为基质的不同状态提供水的扩散系数,与扩散-反应分析方法相结合,可以预测更长时间尺度上的降解路径。此外,原子方法可用于研究其他相关小分子的扩散,最终可以预先了解可降解生物材料的传输性能,有助于药物输送系统的设计。

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