IEEE Trans Biomed Eng. 2021 Jan;68(1):340-349. doi: 10.1109/TBME.2020.2995364. Epub 2020 Dec 21.
Cell counting and characterization is fundamental for medicine, science and technology. Coulter-type microfluidic devices are effective and automated systems for cell/particle analysis, based on the electrical sensing zone principle. However, their throughput and accuracy are limited by coincidences (i.e., two or more particles passing through the sensing zone nearly simultaneously), which reduce the observed number of particles and may lead to errors in the measured particle properties. In this work, a novel approach for coincidence resolution in microfluidic impedance cytometry is proposed.
The approach relies on: (i) a microchannel comprising two electrical sensing zones and (ii) a model of the signals generated by coinciding particles. Maximum a posteriori probability (MAP) estimation is used to identify the model parameters and therefore characterize individual particle properties.
Quantitative performance assessment on synthetic data streams shows a counting sensitivity of 97% and a positive predictive value of 99% at concentrations of 2×10 particles/ml. An application to red blood cell analysis shows accurate particle characterization up to a throughput of about 2500 particles/s. An original formula providing the expected number of coinciding particles is derived, and good agreement is found between experimental results and theoretical predictions.
The proposed cytometer enables the decomposition of signals generated by coinciding particles into individual particle contributions, by using a Bayesian approach.
This system can be profitably used in applications where accurate counting and characterization of cell/particle suspensions over a broad range of concentrations is required.
细胞计数和特征分析是医学、科学和技术的基础。库尔特(Coulter)型微流控设备是一种基于电感应区原理的有效且自动化的细胞/颗粒分析系统。然而,其通量和准确性受到符合事件(即两个或更多颗粒几乎同时通过感应区)的限制,这会减少观察到的颗粒数量,并可能导致测量颗粒特性的误差。在这项工作中,提出了一种用于微流控阻抗细胞术符合事件解析的新方法。
该方法依赖于:(i)包含两个电感应区的微通道和(ii)符合颗粒产生的信号模型。最大后验概率(MAP)估计用于识别模型参数,从而对单个颗粒特性进行特征分析。
在合成数据流上进行的定量性能评估显示,在 2×10 个颗粒/ml 的浓度下,计数灵敏度为 97%,阳性预测值为 99%。对红细胞分析的应用表明,在约 2500 个颗粒/s 的通量下,可以准确地对颗粒特性进行特征分析。推导出了一个原始公式,用于提供符合事件中预期的符合颗粒数量,实验结果与理论预测之间存在良好的一致性。
所提出的细胞仪能够通过使用贝叶斯方法,将符合事件产生的信号分解为单个颗粒的贡献。
该系统可广泛应用于需要对细胞/颗粒悬浮液进行精确计数和特征分析的应用中。