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用于监测 3D 水凝胶组织模型中细胞活性的生物传感器。

Biosensors to Monitor Cell Activity in 3D Hydrogel-Based Tissue Models.

机构信息

National Research Council of Italy, Institute of Electronics, Computer and Telecommunication Engineering (IEIIT), 16149 Genoa, Italy.

Department of Computer Science, Bioengineering, Robotics and Systems Engineering (DIBRIS), University of Genoa, 16126 Genoa, Italy.

出版信息

Sensors (Basel). 2022 Feb 15;22(4):1517. doi: 10.3390/s22041517.

Abstract

Three-dimensional (3D) culture models have gained relevant interest in tissue engineering and drug discovery owing to their suitability to reproduce in vitro some key aspects of human tissues and to provide predictive information for in vivo tests. In this context, the use of hydrogels as artificial extracellular matrices is of paramount relevance, since they allow closer recapitulation of (patho)physiological features of human tissues. However, most of the analyses aimed at characterizing these models are based on time-consuming and endpoint assays, which can provide only static and limited data on cellular behavior. On the other hand, biosensing systems could be adopted to measure on-line cellular activity, as currently performed in bi-dimensional, i.e., monolayer, cell culture systems; however, their translation and integration within 3D hydrogel-based systems is not straight forward, due to the geometry and materials properties of these advanced cell culturing approaches. Therefore, researchers have adopted different strategies, through the development of biochemical, electrochemical and optical sensors, but challenges still remain in employing these devices. In this review, after examining recent advances in adapting existing biosensors from traditional cell monolayers to polymeric 3D cells cultures, we will focus on novel designs and outcomes of a range of biosensors specifically developed to provide real-time analysis of hydrogel-based cultures.

摘要

三维(3D)培养模型因其能够在体外重现人类组织的某些关键方面,并为体内测试提供预测信息,而在组织工程和药物发现领域引起了相关关注。在这种情况下,水凝胶作为人工细胞外基质的使用至关重要,因为它们能够更接近地再现人类组织的(病理)生理特征。然而,大多数旨在对这些模型进行表征的分析都基于耗时且终点测定,这些测定只能提供关于细胞行为的静态和有限数据。另一方面,生物传感系统可以用于在线测量细胞活性,就像目前在二维,即单层细胞培养系统中进行的那样;然而,由于这些先进细胞培养方法的几何形状和材料特性,将它们转化和整合到基于 3D 水凝胶的系统中并不容易。因此,研究人员通过开发生化、电化学和光学传感器采用了不同的策略,但在使用这些设备方面仍然存在挑战。在这篇综述中,在考察了将现有生物传感器从传统细胞单层适应到聚合物 3D 细胞培养的最新进展之后,我们将重点介绍专门为提供基于水凝胶培养的实时分析而开发的一系列生物传感器的新设计和新结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c0d2/8879987/7fe31725c08b/sensors-22-01517-g001.jpg

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