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A novel silicon membrane-based biosensing platform using distributive sensing strategy and artificial neural networks for feature analysis

机译:一种新型的基于硅膜的生物传感平台,使用分布式传感策略和人工神经网络进行特征分析

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摘要

A novel biosensing system based on a micromachined rectangular silicon membrane is proposed and investigated in this paper. Distributive sensing scheme is designed to monitor the dynamics of the sensing structure.An artificial neural network is used to process the measured data and to identify cell presence and density. Without specifying any particular bio-application, the investigation is mainly concentrated on the performance testing of this kind of biosensor as a general biosensing platform. The biosensing experiments on the microfabricated membranes involve seeding different cell densities onto the sensing surface of membrane, and measuring the corresponding dynamics information of each tested silicon membrane in the form of a series of frequency response functions (FRFs). All of those experiments are carried out in a cell culture medium to simulate a practical working environment. The EA.hy 926 endothelial cell lines are chosen in this paper for the bio-experiments. The EA.hy 926 endothelial cell lines represent a particular class of biological particles that have unregular shapes, non-uniform density and uncertain growth behaviour, which are difficult to monitor using the traditional biosensors. The final predicted results reveal that the methodology of a neural-network based algorithm to perform the feature identification of cells from distributive sensory measurement, has great potential in biosensing applications.
机译:提出并研究了一种基于微机械矩形硅膜的新型生物传感系统。设计了分布式传感方案来监视传感结构的动态,并使用人工神经网络处理测量数据并识别细胞的存在和密度。在没有指定任何特定生物应用的情况下,研究主要集中在这种生物传感器作为通用生物传感平台的性能测试上。在微细薄膜上的生物传感实验包括将不同的细胞密度播种到薄膜的传感表面上,并以一系列频率响应函数(FRF)的形式测量每个被测硅膜的相应动力学信息。所有这些实验都是在细胞培养基中进行的,以模拟实际的工作环境。本文针对生物学实验选择了EA.hy 926内皮细胞系。 EA.hy 926内皮细胞系代表一类特殊的生物颗粒,具有不规则的形状,不均匀的密度和不确定的生长行为,很难使用传统的生物传感器进行监测。最终的预测结果表明,基于神经网络的算法可从分布式感官测量中进行细胞特征识别的方法,在生物传感应用中具有巨大的潜力。

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