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电化学刺激在生物电子医学中的发展。

Electrochemically stimulating developments in bioelectronic medicine.

作者信息

Sanjuan-Alberte Paola, Alexander Morgan R, Hague Richard J M, Rawson Frankie J

机构信息

1Regenerative Medicine and Cellular Therapies, School of Pharmacy, University of Nottingham, Nottingham, NG7 2QL UK.

2Centre for Additive Manufacturing, School of Engineering, University of Nottingham, Nottingham, NG7 2QL UK.

出版信息

Bioelectron Med. 2018 Mar 15;4:1. doi: 10.1186/s42234-018-0001-z. eCollection 2018.

Abstract

Cellular homeostasis is in part controlled by biological generated electrical activity. By interfacing biology with electronic devices this electrical activity can be modulated to actuate cellular behaviour. There are current limitations in merging electronics with biology sufficiently well to target and sense specific electrically active components of cells. By addressing this limitation, researchers give rise to new capabilities for facilitating the two-way transduction signalling mechanisms between the electronic and cellular components. This is required to allow significant advancement of bioelectronic technology which offers new ways of treating and diagnosing diseases. Most of the progress that has been achieved to date in developing bioelectronic therapeutics stimulate neural communication, which ultimately orchestrates organ function back to a healthy state. Some devices used in therapeutics include cochlear and retinal implants and vagus nerve stimulators. However, all cells can be impacted by electrical inputs which gives rise to the opportunity to broaden the use of bioelectronic medicine for treating disease. Electronic actuation of non-excitable cells has been shown to lead to 'programmed' cell behaviour via application of electronic input which alter key biological processes. A neglected form of cellular electrical communication which has not yet been considered when developing bioelectronic therapeutics is faradaic currents. These are generated during redox reactions. A precedent of electrochemical technology being used to modulate these reactions, thereby controlling cell behaviour, has already been set. In this mini review we highlight the current state of the art of electronic routes to modulating cell behaviour and identify new ways in which electrochemistry could be used to contribute to the new field of bioelectronic medicine.

摘要

细胞内稳态部分受生物产生的电活动控制。通过将生物学与电子设备连接,这种电活动可以被调节以驱动细胞行为。目前在将电子学与生物学充分融合以靶向和感知细胞特定的电活性成分方面存在局限性。通过解决这一局限性,研究人员产生了促进电子和细胞成分之间双向转导信号机制的新能力。这是生物电子技术取得重大进展所必需的,生物电子技术提供了治疗和诊断疾病的新方法。迄今为止,在开发生物电子疗法方面取得的大多数进展都刺激了神经通信,最终使器官功能恢复到健康状态。治疗中使用的一些设备包括耳蜗植入物、视网膜植入物和迷走神经刺激器。然而,所有细胞都可能受到电输入的影响,这为扩大生物电子医学在疾病治疗中的应用提供了机会。通过施加改变关键生物过程的电子输入,已证明对非兴奋性细胞的电子驱动会导致“编程”细胞行为。在开发生物电子疗法时尚未考虑的一种被忽视的细胞电通信形式是法拉第电流。这些电流在氧化还原反应过程中产生。电化学技术用于调节这些反应从而控制细胞行为的先例已经存在。在本综述中,我们强调了调节细胞行为的电子途径的当前技术水平,并确定了电化学可用于为生物电子医学新领域做出贡献的新方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4afc/7098225/765039f30ea2/42234_2018_1_Fig1_HTML.jpg

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