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在纳米尺度上解析亲水性碲化镉量子点与带正电膜之间的相互作用。

Resolving the interactions between hydrophilic CdTe quantum dots and positively charged membranes at the nanoscale.

作者信息

Villanueva M E, Bar L, Porcar L, Gerelli Y, Losada-Pérez P

机构信息

Experimental Soft Matter and Thermal Physics (EST) Group, Department of Physics, Université libre de Bruxelles, Boulevard du Triomphe CP223, 1050 Brussels, Belgium.

Large-Scale Structure Group, Institut Laue-Langevin, 71 avenue des Martyrs, 38000 Grenoble, France.

出版信息

J Colloid Interface Sci. 2025 Jan;677(Pt A):620-631. doi: 10.1016/j.jcis.2024.07.220. Epub 2024 Aug 3.

Abstract

The use of quantum dot nanoparticles (QDs) in bio-applications has gained quite some interest and requires a deep understanding of their interactions with model cell membranes. This involves assessing the extent of nanoparticle disruption of the membrane and how it depends on both nanoparticle and membrane physicochemical properties. Surface charge plays an important role in nanoparticle adsorption, which is primarily driven by electrostatic interactions; yet, once adsorbed, most reported works overlook the subsequent spatial nanoparticle insertion and location within the membrane. There is therefore a need for studies to assess the mutual role of membrane and nanoparticle charge into membrane structure and stability at the nanoscale, with a view to better design and control the functionality of these nanomaterials. In this work, we have resolved the extent of the interactions between hydrophilic, negatively charged CdTe QDs and positively charged lipid bilayers. A multiscale combination of surface-sensitive techniques enabled probing how surface charge mediates QD adsorption and membrane reorganization. Increasing membrane surface charge results into a larger adsorption of oppositely charged QDs, concomitantly inducing structural changes. Hydration of the membrane hydrophobic parts by QDs goes deeper into the inner leaflet with increasing membrane charge, resulting in supported lipid bilayers with decreased nanomechanical stability.

摘要

量子点纳米颗粒(QDs)在生物应用中的使用已引起了相当大的关注,并且需要深入了解它们与模型细胞膜的相互作用。这涉及评估纳米颗粒对膜的破坏程度以及它如何取决于纳米颗粒和膜的物理化学性质。表面电荷在纳米颗粒吸附中起着重要作用,吸附主要由静电相互作用驱动;然而,一旦吸附,大多数已报道的工作都忽略了随后纳米颗粒在膜内的空间插入和位置。因此,需要进行研究以评估膜和纳米颗粒电荷在纳米尺度上对膜结构和稳定性的相互作用,以期更好地设计和控制这些纳米材料的功能。在这项工作中,我们解析了亲水性、带负电荷的碲化镉量子点与带正电荷的脂质双层之间相互作用的程度。表面敏感技术的多尺度组合能够探究表面电荷如何介导量子点吸附和膜重组。增加膜表面电荷会导致带相反电荷的量子点有更大的吸附量,同时诱导结构变化。随着膜电荷增加,量子点对膜疏水部分的水合作用会更深地深入到内叶,导致支撑的脂质双层纳米力学稳定性降低。

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