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首页> 外文期刊>Journal of Controlled Release: Official Journal of the Controlled Release Society >Minimizing biases associated with tracking analysis of submicron particles in heterogeneous biological fluids
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Minimizing biases associated with tracking analysis of submicron particles in heterogeneous biological fluids

机译:最大限度地减少与异质生物流体中亚微米颗粒的跟踪分析相关的偏差

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摘要

Tracking the dynamic motion of individual nanoparticles or viruses offers quantitative insights into their real-time behavior and fate in different biological environments. Indeed, particle tracking is a powerful tool that has facilitated the development of drug carriers with enhanced penetration of mucus, brain tissues and other extracellular matrices. Nevertheless, heterogeneity is a hallmark of nanoparticle diffusion in such complex environments: identical particles can exhibit strongly hindered or unobstructed diffusion within microns of each other. The common practice in 2D particle tracking, namely analyzing all trackable particle traces with equal weighting, naturally biases towards rapidly diffusing sub-populations at shorter time scales. This in turn results in misrepresentation of particle behavior and a systematic underestimate of the time necessary for a population of nanoparticles to diffuse specific distances. We show here via both computational simulation and experimental data that this bias can be rigorously corrected by weighing the contribution by each particle trace on a 'frame-by-frame' basis. We believe this methodology presents an important step towards objective and accurate assessment of the heterogeneous transport behavior of submicron drug carriers and pathogens in biological environments. (C) 2015 Elsevier B.V. All rights reserved.
机译:跟踪单个纳米粒子或病毒的动态运动,可以定量了解它们在不同生物环境中的实时行为和命运。的确,粒子跟踪是一种强大的工具,它通过增加粘液,脑组织和其他细胞外基质的渗透促进了药物载体的开发。然而,异质性是纳米粒子在这种复杂环境中扩散的标志:相同的粒子在彼此之间的微米内可能会表现出强烈的阻碍或畅通无阻的扩散。 2D粒子跟踪的常规做法,即以相等的权重分析所有可跟踪的粒子迹线,自然会倾向于在较短的时间尺度上快速扩散子种群。反过来,这会导致对粒子行为的错误描述,并导致系统地低估了纳米粒子群扩散特定距离所需的时间。我们在这里通过计算仿真和实验数据表明,可以通过在“逐帧”的基础上权衡每个粒子迹线的贡献来严格纠正此偏差。我们认为,这种方法论为朝着客观和准确评估生物环境中亚微米药物载体和病原体的异质运输行为迈出了重要的一步。 (C)2015 Elsevier B.V.保留所有权利。

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