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Development of an image Mean Square Displacement (iMSD)-based method as a novel approach to study the intracellular trafficking of nanoparticles

机译:基于图像均方位移(iMSD)的方法的开发,作为研究纳米粒子细胞内运输的一种新方法

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摘要

Fluorescence microscopy and spectroscopy techniques are commonly used to investigate complex and interacting biological systems (e.g. proteins and nanoparticles in living cells), since these techniques can explore intracellular dynamics with high time resolution at the nanoscale. Here we extended one of the Image Correlation Spectroscopy (ICS) methods, i.e. the image Mean Square Displacement, in order to study 2-dimensional diffusive and flow motion in confined systems, whose driving speed is uniformly distributed in a variable angular range. Although these conditions are not deeply investigated in the current literature, they can be commonly found in the intracellular trafficking of nanocarriers, which diffuse in the cytoplasm and/or may move along the cytoskeleton in different directions. The proposed approach could reveal the underlying system's symmetry using methods derived from fluorescence correlation concepts and could recover dynamic and geometric features which are commonly done by single particle analyses. Furthermore, it improves the characterization of low-speed flow motions, when compared to SpatioTemporal Image Correlation Spectroscopy (STICS). Although we present a specific example (lipoplexes in living cells), the emphasis is in the discussion of the method, its basic assumptions and its validation on numeric simulations.
机译:荧光显微镜和光谱技术通常用于研究复杂且相互作用的生物系统(例如活细胞中的蛋白质和纳米粒子),因为这些技术可以在纳米级以高时间分辨率探索细胞内动力学。在这里,我们扩展了一种图像相关光谱(ICS)方法,即图像均方位移,以研究其驱动速度在可变角度范围内均匀分布的受限系统中的二维扩散和流动运动。尽管在当前文献中没有对这些条件进行深入研究,但是它们通常可以在细胞内运输的纳米载体中发现,所述纳米载体在细胞质中扩散和/或可以沿细胞骨架向不同方向移动。所提出的方法可以使用衍生自荧光相关概念的方法来揭示底层系统的对称性,并且可以恢复通常通过单颗粒分析完成的动态和几何特征。此外,与时空图像相关光谱法(STICS)相比,它改善了低速流动运动的特性。尽管我们提供了一个特定的示例(活细胞中的脂质复合体),但重点在于方法的讨论,其基本假设及其在数值模拟中的验证。

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