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利用界面敏感振动光谱研究纳米粒子与脂质膜的相互作用。

Light on the interactions between nanoparticles and lipid membranes by interface-sensitive vibrational spectroscopy.

机构信息

Laboratory of Lasers and Spectroscopies (LLS), Namur Institute of Structured Matter (NISM) and NAmur Institute for Life Sciences (NARILIS), University of Namur (UNamur), Belgium.

出版信息

Colloids Surf B Biointerfaces. 2024 Sep;241:114013. doi: 10.1016/j.colsurfb.2024.114013. Epub 2024 Jun 6.

Abstract

Nanoparticles are produced in natural phenomena or synthesized artificially for technological applications. Their frequent contact with humans has been judged potentially harmful for health, and numerous studies are ongoing to understand the mechanisms of the toxicity of nanoparticles. At the macroscopic level, the toxicity can be established in vitro or in vivo by measuring the survival of cells. At the sub-microscopic level, scientists want to unveil the molecular mechanisms of the first interactions of nanoparticles with cells via the cell membrane, before the toxicity cascades within the whole cell. Unveiling a molecular understanding of the nanoparticle-membrane interface is a tricky challenge, because of the chemical complexity of this system and its nanosized dimensions buried within bulk macroscopic environments. In this review, we highlight how, in the last 10 years, second-order nonlinear optical (NLO) spectroscopy, and specifically vibrational sum frequency generation (SFG), has provided a new understanding of the structural, physicochemical, and dynamic properties of these biological interfaces, with molecular sensitivity. We will show how the intrinsic interfacial sensitivity of second-order NLO and the chemical information of vibrational SFG spectroscopy have revealed new knowledge of the molecular mechanisms that drive nanoparticles to interact with cell membranes, from both sides, the nanoparticles and the membrane properties.

摘要

纳米颗粒在自然现象中产生或为了技术应用而人工合成。由于它们经常与人类接触,因此被认为可能对健康有害,目前正在进行大量研究以了解纳米颗粒毒性的作用机制。在宏观水平上,可以通过测量细胞的存活率来在体外或体内建立毒性。在亚微观水平上,科学家们希望通过细胞膜揭示纳米颗粒与细胞的最初相互作用的分子机制,然后再研究整个细胞内的毒性级联。由于该系统的化学复杂性及其埋在宏观大块环境中的纳米尺寸,揭示纳米颗粒-膜界面的分子理解是一个棘手的挑战。在这篇综述中,我们强调了在过去 10 年中,二阶非线性光学(NLO)光谱,特别是振动和频产生(SFG)如何以分子灵敏度提供了对这些生物界面的结构,物理化学和动态特性的新理解。我们将展示二阶 NLO 的固有界面灵敏度以及振动 SFG 光谱的化学信息如何揭示了驱动纳米颗粒与细胞膜相互作用的分子机制的新知识,包括纳米颗粒和膜性质的两面。

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