Spanu A, Tedesco M T, Martines L, Martinoia S, Bonfiglio A
Department of Bioengineering, Robotics and System Engineering, University of Genoa, Via all'Opera Pia 13, 16145 Genova (GE), Italy.
Department of Electrical and Electronic Engineering, University of Cagliari, Via Marengo, 09123 Cagliari (CA), Italy.
APL Bioeng. 2018 Dec 19;2(4):046105. doi: 10.1063/1.5050170. eCollection 2018 Dec.
Monitoring cell metabolism is considered a relevant methodology in several scientific fields ranging from fundamental biology research to neuro-toxicology. In the last 20 years, several neuro-pharmacological and neuro-toxicological approaches have been developed, with the intent of addressing the increasing demand for real-time, non-invasive systems capable of continuously and reliably monitoring cellular activity. In this paper, an Organic Charge Modulated Field Effect Transistor-based device is proposed as a promising tool for neuro-pharmacological applications, thanks to its ultra-high pH sensitivity and a simple fabrication technology. The preliminary characterization of this versatile organic device with primary neuronal cultures shows how these remarkable properties can be exploited for the realization of ultra-sensitive metabolic probes, which are both reference-less and low cost. These features, together with the already assessed capability of this sensor to also monitor the electrical activity of electrogenic cells, could provide important advances in the fabrication of multi-sensing lab-on-chip devices, thus opening up interesting perspectives in the neuro-pharmacological field.
监测细胞代谢被认为是从基础生物学研究到神经毒理学等多个科学领域的一种相关方法。在过去20年里,已经开发了几种神经药理学和神经毒理学方法,旨在满足对能够连续可靠地监测细胞活动的实时、非侵入性系统日益增长的需求。本文提出了一种基于有机电荷调制场效应晶体管的器件,由于其超高的pH敏感性和简单的制造技术,它有望成为神经药理学应用的工具。对这种多功能有机器件与原代神经元培养物的初步表征表明,这些卓越的特性可用于实现无参考且低成本的超灵敏代谢探针。这些特性,再加上该传感器已被评估的监测产电细胞电活动的能力,可为多传感芯片实验室设备的制造带来重要进展,从而在神经药理学领域开辟有趣的前景。