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Two-dimensional flow nanometry of biological nanoparticles for accurate determination of their size and emission intensity

机译:生物纳米颗粒的二维流式纳米技术,可准确测定其尺寸和发射强度

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Biological nanoparticles (BNPs) are of high interest due to their key role in various biological processes and use as biomarkers. BNP size and composition are decisive for their functions, but simultaneous determination of both properties with high accuracy remains challenging. Optical microscopy allows precise determination of fluorescence/scattering intensity, but not the size of individual BNPs. The latter is better determined by tracking their random motion in bulk, but the limited illumination volume for tracking this motion impedes reliable intensity determination. Here, we show that by attaching BNPs to a supported lipid bilayer, subjecting them to hydrodynamic flows and tracking their motion via surface-sensitive optical imaging enable determination of their diffusion coefficients and flow-induced drifts, from which accurate quantification of both BNP size and emission intensity can be made. For vesicles, the accuracy of this approach is demonstrated by resolving the expected radius-squared dependence of their fluorescence intensity for radii down to 15?nm.
机译:由于生物纳米颗粒(BNP)在各种生物过程中的关键作用以及用作生物标志物,因此备受关注。 BNP的大小和组成对其功能起决定性作用,但是同时高精度确定两种性质仍然具有挑战性。光学显微镜可以精确测定荧光/散射强度,但不能确定单个BNP的大小。通过整体跟踪它们的随机运动可以更好地确定后者,但是用于跟踪此运动的有限照明量会阻碍可靠的强度确定。在这里,我们表明,通过将BNPs附着到支持的脂质双层上,使其经受流体动力流动并通过表面敏感的光学成像跟踪其运动,可以确定其扩散系数和流动引起的漂移,从而可以准确定量BNP的大小和可以产生发射强度。对于囊泡,通过解决半径小于15nm的荧光强度的预期半径平方依赖性,可以证明这种方法的准确性。

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