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评估具有高通量动态范围的微阵列单细胞定量分析的单分子检测方法。

Evaluating single molecule detection methods for microarrays with high dynamic range for quantitative single cell analysis.

机构信息

Department Chemistry, Institute of Chemical Biology, Imperial College London, London, SW7 2AZ, UK.

出版信息

Sci Rep. 2017 Dec 20;7(1):17957. doi: 10.1038/s41598-017-18303-z.

Abstract

Single molecule microarrays have been used in quantitative proteomics, in particular, single cell analysis requiring high sensitivity and ultra-low limits of detection. In this paper, several image analysis methods are evaluated for their ability to accurately enumerate single molecules bound to a microarray spot. Crucially, protein abundance in single cells can vary significantly and may span several orders of magnitude. This poses a challenge to single molecule image analysis. In order to quantitatively assess the performance of each method, synthetic image datasets are generated with known ground truth whereby the number of single molecules varies over 5 orders of magnitude with a range of signal to noise ratios. Experiments were performed on synthetic datasets whereby the number of single molecules per spot corresponds to realistic single cell distributions whose ground truth summary statistics are known. The methods of image analysis are assessed in their ability to accurately estimate the distribution parameters. It is shown that super-resolution image analysis methods can significantly improve counting accuracy and better cope with single molecule congestion. The results highlight the challenge posed by quantitative single cell analysis and the implications to performing such analyses using microarray based approaches are discussed.

摘要

单分子微阵列已被用于定量蛋白质组学,特别是需要高灵敏度和超低检测限的单细胞分析。本文评估了几种图像分析方法,以确定它们准确计数与微阵列斑点结合的单分子的能力。至关重要的是,单细胞中的蛋白质丰度可能有很大差异,可能跨越几个数量级。这对单分子图像分析提出了挑战。为了定量评估每种方法的性能,使用具有已知真实值的合成图像数据集生成,其中单分子的数量在 5 个数量级范围内变化,具有不同的信噪比。在实验中,对每个斑点的单分子数量对应于已知真实统计数据的现实单细胞分布的合成数据集进行了实验。评估了图像分析方法准确估计分布参数的能力。结果表明,超分辨率图像分析方法可以显著提高计数的准确性,并更好地应对单分子拥挤。结果突出了定量单细胞分析所带来的挑战,并讨论了使用基于微阵列的方法进行此类分析的影响。

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