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用于评估和控制生物功能的共轭聚合物。

Conjugated Polymers for Assessing and Controlling Biological Functions.

机构信息

School of Materials Science and Engineering, UNSW Sydney, Sydney, NSW, 2052, Australia.

Department of Micro and Nanosystems, KTH Royal Institute of Technology, 10044, Stockholm, Sweden.

出版信息

Adv Mater. 2019 May;31(22):e1806712. doi: 10.1002/adma.201806712. Epub 2019 Mar 12.

Abstract

The field of organic bioelectronics is advancing rapidly in the development of materials and devices to precisely monitor and control biological signals. Electronics and biology can interact on multiple levels: organs, complex tissues, cells, cell membranes, proteins, and even small molecules. Compared to traditional electronic materials such as metals and inorganic semiconductors, conjugated polymers (CPs) have several key advantages for biological interactions: tunable physiochemical properties, adjustable form factors, and mixed conductivity (ionic and electronic). Herein, the use of CPs in five biologically oriented research topics, electrophysiology, tissue engineering, drug release, biosensing, and molecular bioelectronics, is discussed. In electrophysiology, implantable devices with CP coating or CP-only electrodes are showing improvements in signal performance and tissue interfaces. CP-based scaffolds supply highly favorable static or even dynamic interfaces for tissue engineering. CPs also enable delivery of drugs through a variety of mechanisms and form factors. For biosensing, CPs offer new possibilities to incorporate biological sensing elements in a conducting matrix. Molecular bioelectronics is today used to incorporate (opto)electronic functions in living tissue. Under each topic, the limits of the utility of CPs are discussed and, overall, the major challenges toward implementation of CPs and their devices to real-world applications are highlighted.

摘要

有机生物电子学领域在开发材料和设备方面取得了快速进展,这些材料和设备可精确监测和控制生物信号。电子学和生物学可以在多个层面上相互作用:器官、复杂组织、细胞、细胞膜、蛋白质,甚至小分子。与金属和无机半导体等传统电子材料相比,共轭聚合物 (CP) 在生物相互作用方面具有几个关键优势:可调节的物理化学性质、可调的形态因子和混合导电性(离子和电子)。本文讨论了 CP 在五个面向生物学的研究主题中的应用,包括电生理学、组织工程、药物释放、生物传感和分子生物电子学。在电生理学中,具有 CP 涂层或仅 CP 电极的植入式设备在信号性能和组织界面方面显示出改善。基于 CP 的支架为组织工程提供了非常理想的静态甚至动态界面。CP 还可通过多种机制和形态因子来输送药物。对于生物传感,CP 为在导电基质中纳入生物传感元件提供了新的可能性。分子生物电子学如今用于将(光电)电子功能整合到活组织中。在每个主题下,都讨论了 CP 的应用局限性,总体而言,突出了将 CP 及其器件应用于实际应用的主要挑战。

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