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通过改变配体密度和表面电荷来调节配体包覆的纳米颗粒与相分离脂质双层之间的相互作用。

Modulating interactions between ligand-coated nanoparticles and phase-separated lipid bilayers by varying the ligand density and the surface charge.

机构信息

Center for Statistical and Theoretical Condensed Matter Physics and Department of Physics, Zhejiang Normal University, Jinhua 321004, P. R. China.

出版信息

Nanoscale. 2018 Feb 1;10(5):2481-2491. doi: 10.1039/c7nr06494b.

Abstract

The interactions between nanoparticles and lipid bilayers are critical in applications of nanoparticles in nanomedicine, cell imaging, toxicology, and elsewhere. Here, we investigate the interactions between nanoparticles coated with neutral and/or charged ligands and phase-separated lipid bilayers using coarse-grained molecular dynamics simulation. Both penetration and adsorption processes as well as the final distribution of the nanoparticles can be readily modulated by varying the ligand density and the surface charge of the nanoparticles. Completely hydrophobic (neutral) nanoparticles with larger size initially preferentially penetrate into the liquid-disordered region of the lipid bilayer and finally transfer into the liquid-ordered region; partially hydrophilic nanoparticles with low or moderate surface charge tend to either distribute in the liquid-disordered region or be adsorbed on the surface of the lipid bilayer, while strongly hydrophilic nanoparticles with high surface charge always reside on the surface of the lipid bilayer. Interactions of the nanoparticles with the lipid bilayers are affected by the surface charge of nanoparticles, hydrophobic mismatch, bending of the ligands, and the packing state of the lipids. Insight in these factors can be used to improve the efficiency of designing nanoparticles for specific applications.

摘要

纳米粒子与脂质双层之间的相互作用在纳米医学、细胞成像、毒理学等领域的纳米粒子应用中至关重要。在这里,我们使用粗粒分子动力学模拟研究了带有中性和/或带电配体的纳米粒子与相分离脂质双层之间的相互作用。通过改变配体密度和纳米粒子的表面电荷,可以很容易地调节纳米粒子的穿透和吸附过程以及最终分布。初始时,具有较大尺寸的完全疏水(中性)纳米粒子优先穿透脂质双层的无序液体区域,最终转移到有序液体区域;具有低或中等表面电荷的部分亲水纳米粒子倾向于分布在无序液体区域或被吸附在脂质双层的表面上,而具有高表面电荷的强亲水纳米粒子则始终位于脂质双层的表面上。纳米粒子与脂质双层的相互作用受纳米粒子表面电荷、疏水性失配、配体弯曲和脂质堆积状态的影响。了解这些因素可用于提高针对特定应用设计纳米粒子的效率。

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