...
首页> 外文期刊>Nanoscale >MD simulation study of direct permeation of a nanoparticle across the cell membrane under an external electric field
【24h】

MD simulation study of direct permeation of a nanoparticle across the cell membrane under an external electric field

机译:MD模拟研究的直接渗透纳米粒子穿过细胞膜下外部电场

获取原文
获取原文并翻译 | 示例

摘要

Nanoparticles (NPs) have been attracting much attention for biomedical and pharmaceutical applications. In most of the applications, NPs are required to translocate across the cell membrane and to reach the cell cytosol. Experimental studies have reported that by applying an electric field NPs can directly permeate across the cell membrane without the confinement of NPs by endocytic vesicles. However, damage to the cell can often be a concern. Understanding of the mechanism underlying the direct permeation of NPs under an external electric field can greatly contribute to the realization of a technology for the direct delivery of NPs. Here we investigated the permeation of a cationic gold NP across a phospholipid bilayer under an external electric field using a coarse-grained molecular dynamics simulation. When an external electric field that is equal to the membrane breakdown intensity was applied, a typical NP delivery by electroporation was shown: the cationic gold NP directly permeated across a lipid bilayer without membrane wrapping of the NP, while a persistent transmembrane pore was formed. However, when a specific range of the electric field that is lower than the membrane breakdown intensity was applied, a unique permeation pathway was exhibited: the generated transmembrane pore immediately resealed after the direct permeation of NP. Furthermore, we found that the affinity of the NP for the membrane surface is a key for the self-resealing of the pore. Our finding suggests that by applying an electric field in a suitable range NPs can be directly delivered into the cell with less cellular damage.
机译:纳米颗粒(NPs)已经吸引了关注生物医学和制药应用程序。需要把整个细胞膜,达到细胞胞质。实验研究报道,NPs可以直接施加电场跨细胞膜的渗透监禁NPs的内吞作用的囊泡。然而,破坏细胞通常可以担忧。潜在的直接渗透NPs下外部电场可以大大有助于直接的实现技术NPs交付。渗透的阳离子NP在黄金磷脂双分子层在外部电使用粗粒度的分子动力学领域模拟。等于膜破裂强度应用,一个典型的NP交付通过电穿孔直接显示:阳离子黄金NP弥漫在脂质双分子层膜包装的NP,而持久跨膜孔隙成立。特定范围的电场低于膜击穿强度应用,一个独特的渗透途径表现出:生成的跨膜孔隙立即重新封闭后,直接渗透NP。膜表面的NP是关键self-resealing孔隙。通过应用在一个合适的电场NPs范围可以直接交到细胞用更少的细胞损伤。

著录项

获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号