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流式细胞术和荧光激活细胞分选中的非特异性探针结合和自动门控。

Nonspecific probe binding and automatic gating in flow cytometry and fluorescence activated cell sorting (FACS).

机构信息

Department of Biomathematics, UCLA, Los Angeles, CA, 90095-1766, USA.

Department of Mathematics, UCLA, Los Angeles, CA, 90095-1555, USA.

出版信息

Math Biosci Eng. 2019 May 21;16(5):4477-4490. doi: 10.3934/mbe.2019223.

Abstract

Flow cytometry is extensively used in cell biology to differentiate cells of interest (mutants) from control cells (wild-types). For mutant cells characterized by expression of a distinct membrane surface structure, fluorescent marker probes can be designed to bind specifically to these structures while the cells are in suspension, resulting in a sufficiently high fluorescence intensity measurement by the cytometer to identify a mutant cell. However, cell membranes may have relatively weak, nonspecific binding affinity to the probes, resulting in false positive results. Furthermore, the same effect would be present on mutant cells, allowing both specific and nonspecific binding to a single cell. We derive and analyze a kinetic model of fluorescent probe binding dynamics by tracking populations of mutant and wild-type cells with differing numbers of probes bound specifically and nonspecifically. By assuming the suspension is in chemical equilibrium prior to cytometry, we use a two-species Langmuir adsorption model to analyze the confounding effects of non-specific binding on the assay. Furthermore, we analytically derive an expectation maximization method to infer an appropriate estimate of the total number of mutant cells as an alternative to existing, heuristic methods. Lastly, using our model, we propose a new method to infer physical and experimental parameters from existing protocols. Our results provide improved ways to quantitatively analyze flow cytometry data.

摘要

流式细胞术广泛应用于细胞生物学,用于区分有兴趣的细胞(突变体)和对照细胞(野生型)。对于通过表达独特的膜表面结构来表征的突变细胞,可以设计荧光标记探针来特异性结合这些结构,而细胞处于悬浮状态,从而通过细胞计测量到足够高的荧光强度以识别突变细胞。然而,细胞膜与探针的结合亲和力可能相对较弱,具有非特异性,从而导致假阳性结果。此外,相同的效果也会出现在突变细胞上,允许特异性和非特异性结合到单个细胞上。我们通过跟踪具有不同数量特异性和非特异性结合探针的突变体和野生型细胞群体,推导出并分析了荧光探针结合动力学的动力学模型。通过假设在进行细胞术之前悬浮液处于化学平衡状态,我们使用双物种 Langmuir 吸附模型来分析非特异性结合对测定的混杂影响。此外,我们还推导出了一种期望最大化方法,以替代现有启发式方法来推断突变体细胞的总数的适当估计。最后,我们使用模型提出了一种从现有方案推断物理和实验参数的新方法。我们的结果提供了改进的方法来定量分析流式细胞术数据。

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