Conjugated Polymers for Assessing and Controlling Biological Functions
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. Compa...
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Veröffentlicht in: | Advanced materials (Weinheim) 2019-05, Vol.31 (22), p.e1806712-n/a |
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Sprache: | eng |
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Zusammenfassung: | 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.
Conjugated polymers provide functional and versatile interfaces with biological systems at many levels. Recent progress in leveraging conjugated polymers to assess and control biological functions is reviewed, focusing on electrophysiology, tissue engineering, drug delivery, biosensors, and molecular bioelectronics. A perspective is given on the future steps needed to move these technologies from the laboratory to real‐world applications. |
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ISSN: | 0935-9648 1521-4095 1521-4095 |
DOI: | 10.1002/adma.201806712 |