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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >In Silico Study of Gold Nanoparticle Uptake into a Mammalian Cell: Interplay of Size, Shape, Surface Charge, and Aggregation
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In Silico Study of Gold Nanoparticle Uptake into a Mammalian Cell: Interplay of Size, Shape, Surface Charge, and Aggregation

机译:在金纳米粒子吸收到哺乳动物细胞的硅研究中:尺寸,形状,表面电荷和聚集的相互作用

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The study of interactions between Au nano structures and living cells is a fundamental aspect that can be applied for promising applications in nanomedicine. In the present work, we performed coarse-grained molecular dynamics (MD) simulations to observe the internalization pathways of Au nanostructures (nanospheres, nanocages, nanorods, nanoplates, and nanohexapods) into an idealized mammalian plasma membrane at an unprecedented level of complexity. Compared with a simple lipid bilayer model consisting of two lipid species, the different cellular uptake pathways of the gold nanoparticle (AuNP) were found. We highlight that the complexity of the lipid bilayer models plays an important role in the uptake pathway of nanoparticles (NPs). The permeability of aggregated AuNPs was much less than the NP counterpart. Spherical AuNPs showed pronounced size and surface charge dependence in their translocation through the plasma membrane. The translocation rates of different Au nanostructures were also evaluated, and we found that the Au nanohexapod exhibited highest cellular uptake. Understanding the interrelationship between size, shape, surface charge, and aggregation of Au nanostructures provides a clear view on the design of Au nanostructures for developing new diagnostic strategies and drug delivery.
机译:Au纳米结构和活细胞之间的相互作用的研究是一种基本方面,可以应用于纳米医生中的有前途的应用。在本作工作中,我们进行了粗粒化的分子动力学(MD)模拟,以观察Au纳米结构(纳米球,纳米镜,纳米码,纳米层,纳米液体和纳米糊涂体)的内化途径,以前所未有的复杂程度的含量。与由两种脂质物种组成的简单脂质双层模型相比,发现了金纳米粒子(AUNP)的不同细胞吸收途径。我们强调,脂双层模型的复杂性在纳米颗粒(NPS)的摄取途径中起着重要作用。聚集的aUnps的渗透性远小于NP对应物。球形AUNP通过质膜显示出明显的尺寸和表面电荷依赖性的易位。还评估了不同Au纳米结构的易位率,并且我们发现Au nanohexapod表现出最高的细胞摄取。理解Au纳米结构的尺寸,形状,表面电荷和聚集之间的相互关系提供了一种清晰的Au纳米结构设计,用于开发新的诊断策略和药物递送。

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