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Optical Control of Living Cells Electrical Activity by Conjugated Polymers

机译:共轭聚合物对活细胞电活动的光学控制

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摘要

Hybrid interfaces between organic semiconductors and living tissues represent a new tool for in-vitro and in-vivo applications. In particular, conjugated polymers display several optimal properties as substrates for biological systems, such as good biocompatibility, excellent mechanical properties, cheap and easy processing technology, and possibility of deposition on light, thin and flexible substrates. These materials have been employed for cellular interfaces like neural probes, transistors for excitation and recording of neural activity, biosensors and actuators for drug release. Recent experiments have also demonstrated the possibility to use conjugated polymers for all-optical modulation of the electrical activity of cells. Several in-vitro study cases have been reported, including primary neuronal networks, astrocytes and secondary line cells. Moreover, signal photo-transduction mediated by organic polymers has been shown to restore light sensitivity in degenerated retinas, suggesting that these devices may be used for artificial retinal prosthesis in the future. All in all, light sensitive conjugated polymers represent a new approach for optical modulation of cellular activity.In this work, all the steps required to fabricate a bio-polymer interface for optical excitation of living cells are described. The function of the active interface is to transduce the light stimulus into a modulation of the cell membrane potential. As a study case, useful for in-vitro studies, a polythiophene thin film is used as the functional, light absorbing layer, and Human Embryonic Kidney (HEK-293) cells are employed as the biological component of the interface. Practical examples of successful control of the cell membrane potential upon stimulation with light pulses of different duration are provided. In particular, it is shown that both depolarizing and hyperpolarizing effects on the cell membrane can be achieved depending on the duration of the light stimulus. The reported protocol is of general validity and can be straightforwardly extended to other biological preparations.
机译:有机半导体和活组织之间的混合界面代表了一种用于体外和体内应用的新工具。尤其是,共轭聚合物作为生物系统的底物表现出几种最佳性能,例如良好的生物相容性,优异的机械性能,廉价且易于加工的技术,以及可能沉积在轻薄,薄而柔软的底物上。这些材料已用于细胞界面,例如神经探针,用于激发和记录神经活动的晶体管,生物传感器和用于药物释放的致动器。最近的实验也证明了使用共轭聚合物对细胞的电活动进行全光调制的可能性。已经报道了几个体外研究病例,包括初级神经元网络,星形胶质细胞和次级系细胞。此外,已经显示出由有机聚合物介导的信号光转导可恢复退化的视网膜中的光敏感性,这表明这些装置将来可用于人工视网膜假体。总而言之,光敏共轭聚合物代表了一种光调制细胞活性的新方法。在这项工作中,描述了制造生物聚合物界面以进行活细胞光激发所需的所有步骤。主动界面的功能是将光刺激转换为细胞膜电位的调节。作为研究案例,对于体外研究有用,将聚噻吩薄膜用作功能性光吸收层,并使用人类胚胎肾脏(HEK-293)细胞作为界面的生物成分。提供了用不同持续时间的光脉冲刺激成功控制细胞膜电位的实例。特别地,显示出可以根据光刺激的持续时间实现对细胞膜的去极化和超极化作用。报告的协议具有一般有效性,可以直接扩展到其他生物制剂。

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