Department of Mechanical Engineering, University of Maryland, College Park, MD 20742, USA.
Department of Mechanical Engineering, University of Maryland, College Park, MD 20742, USA.
Colloids Surf B Biointerfaces. 2019 May 1;177:433-439. doi: 10.1016/j.colsurfb.2019.01.062. Epub 2019 Feb 1.
Making a nanoparticle (NP) approach and interact with a plasma membrane (PM) through the receptor-ligand interaction is key for applications like targeted drug delivery, cellular imaging, and theranostics. In this paper, we show that the van der Waals (vdW) interactions dominate the electrostatics ensuring that a gold NP approached the PM more spontaneously as compared to a silica NP. The negative σ (charge density) of a PM induces a negative electrostatic potential at the surface of the approaching gold NP and the silica NP; however, there is very little difference between these induced values due to a small electric double layer at the physiological salt concentration (c). Hence there is very little difference in the electrostatic repulsion between the two cases, while the PM-NP vdW attraction is much more for the gold NP as a result of a larger Hamaker constant. Therefore, in comparison to the gold NP, the silica NP would (a) undergo a promotion of the specific adhesion and a prevention of the non-specific adhesion simultaneously for a larger σ - c phase space including the physiological conditions, (b) necessitate a larger length of the ligands to trigger spontaneous receptor-ligand interactions, and (c) require a larger driving force for force-driven receptor-ligand interactions.
通过受体-配体相互作用使纳米颗粒(NP)与质膜(PM)接近和相互作用,是靶向药物输送、细胞成像和治疗等应用的关键。在本文中,我们表明范德华(vdW)相互作用主导静电相互作用,确保金 NP 比硅 NP 更自发地接近 PM。PM 的负 σ(电荷密度)在接近的金 NP 和硅 NP 的表面诱导出负静电位;然而,由于生理盐浓度(c)下的电双层很小,这些诱导值之间几乎没有差异。因此,两种情况下的静电排斥几乎没有差异,而 PM-NP vdW 吸引力对于金 NP 要大得多,因为 Hamaker 常数更大。因此,与金 NP 相比,硅 NP 将(a)在包括生理条件在内的更大 σ-c 相空间中同时经历特异性粘附的促进和非特异性粘附的预防,(b)需要更长的配体长度来触发自发的受体-配体相互作用,以及(c)需要更大的驱动力来进行力驱动的受体-配体相互作用。