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Structural impact of cations on lipid bilayer models: Nanomechanical properties by AFM-force spectroscopy

机译:阳离子对脂质双层模型的结构影响:AFM力光谱法的纳米力学性能

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Atomic Force Microscopy (AFM) has become an invaluable tool for studying the micro- and nanoworlds. As a stand-alone, high-resolution imaging technique and force transducer, it defies most other surface instrumentation in ease of use, sensitivity and versatility. The main strength of AFM relies on the possibility to operate in an aqueous environment on a wide variety of biological samples, from single molecules – DNA or proteins – to macromolecular assemblies like biological membranes. Understanding the effect of mechanical stress on membranes is of primary importance in biophysics, since cells are known to perform their function under a complex combination of forces. In the later years, AFM-based Force-Spectroscopy (AFM-FS) has provided a new vista on membrane mechanics in a confined area within the nanometer realm, where most of the specific molecular interactions take place. Lipid membranes are electrostatically charged entities that physiologically coexist with electrolyte solutions. Thus, specific interactions with ions are a matter of considerable interest. The distribution of ions in the solution and their interaction with the membranes are factors that substantially modify the structure and dynamics of the cell membranes. Furthermore, signaling processes are modified by the membrane capability of retaining ions. Supported Lipid Bilayers (SLBs) are a versatile tool to investigate phospholipid membranes mimicking biological surfaces. In the present contribution, we review selected experiments on the mechanical stability of SLBs as models of lipid membranes by means of AFM-FS, with special focus on the effect of cations and ionic strength in the overall nanomechanical stability.
机译:原子力显微镜(AFM)已成为研究微观和纳米世界的宝贵工具。作为一种独立的高分辨率成像技术和力传感器,它在易用性,灵敏性和多功能性方面不及大多数其他表面仪器。 AFM的主要优势在于能否在水性环境中对多种生物样品进行操作,从单分子(DNA或蛋白质)到大分子装配体(如生物膜)。在生物物理学中,了解机械应力对膜的影响至关重要,因为已知细胞会在复杂的力组合下执行其功能。在随后的几年中,基于AFM的力谱法(AFM-FS)在大多数特定分子相互作用发生的纳米域内的受限区域中,为膜力学提供了新的视野。脂质膜是带静电的实体,与电解质溶液在生理上共存。因此,与离子的特定相互作用是令人关注的问题。溶液中离子的分布及其与细胞膜的相互作用是实质上改变细胞膜结构和动力学的因素。此外,发信号过程被保留离子的膜能力所修饰。受支持的脂质双层(SLB)是研究模仿生物表面的磷脂膜的多功能工具。在目前的贡献中,我们通过AFM-FS综述了选择的SLBs作为脂质膜模型的机械稳定性的实验,特别关注阳离子和离子强度对整体纳米机械稳定性的影响。

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