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使用石英纳米移液器对聚合物纳米颗粒和病毒进行无校准尺寸测量和定量分析。

Calibration-less sizing and quantitation of polymeric nanoparticles and viruses with quartz nanopipets.

作者信息

Terejánszky Péter, Makra István, Fürjes Péter, Gyurcsányi Róbert E

机构信息

MTA-BME "Lendület" Chemical Nanosensors Research Group, Department of Inorganic and Analytical Chemistry, Budapest University of Technology and Economics , Szt. Gellért tér 4, Budapest, 1111 Hungary.

出版信息

Anal Chem. 2014 May 20;86(10):4688-97. doi: 10.1021/ac500184z. Epub 2014 May 7.

Abstract

The feasibility of using quartz nanopipets as simple and cost-effective Coulter counters for calibration-less quantitation and sizing of nanoparticles by resistive pulsing sensing (RPS) was investigated. A refined theory was implemented to calculate the size distribution of nanoparticles based on the amplitude of resistive pulses caused by their translocation through nanopipets of known geometry. The RPS provided diameters of monodisperse latex nanoparticles agreed within the experimental error with those measured by using scanning electron microscopy (SEM), dynamic light scattering (DLS), and nanoparticle tracking analysis (NTA). The nanopipet-based counter, by detecting individual nanoparticles, could resolve with similar resolution as SEM mixtures of monodisperse nanoparticles having partially overlapping size distributions, which could not be discriminated by DLS or NTA. Furthermore, by calculating the hydrodynamic resistance of the nanopipets and consequently the volume flow through the tip enabled for the first time the calibration-less determination of nanoparticle concentrations with nanopipets. The calibration-less methodology is applied to sizing and quantitation of inactivated poliovirus of ~26 nm diameter, which is the smallest size spherical shape virus ever measured by resistive pulse sensing.

摘要

研究了使用石英纳米吸管作为简单且经济高效的库尔特计数器,通过电阻脉冲传感(RPS)对纳米颗粒进行无校准定量和尺寸测量的可行性。实施了一种精细理论,根据已知几何形状的纳米吸管中纳米颗粒迁移引起的电阻脉冲幅度来计算纳米颗粒的尺寸分布。RPS提供的单分散乳胶纳米颗粒直径在实验误差范围内与使用扫描电子显微镜(SEM)、动态光散射(DLS)和纳米颗粒跟踪分析(NTA)测量的结果一致。基于纳米吸管的计数器通过检测单个纳米颗粒,能够以与SEM类似的分辨率分辨具有部分重叠尺寸分布的单分散纳米颗粒混合物,而DLS或NTA无法区分这些混合物。此外,通过计算纳米吸管的流体动力学阻力以及因此通过尖端的体积流量,首次实现了使用纳米吸管对纳米颗粒浓度进行无校准测定。这种无校准方法应用于直径约26 nm的灭活脊髓灰质炎病毒的尺寸测量和定量,这是通过电阻脉冲传感测量的最小尺寸球形病毒。

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