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Flexible and Stretchable Bioelectronics

Medical science technology has improved tremendously over the decades with the invention of robotic surgery, gene editing, immune therapy, etc. However, scientists are now recognizing the significance of ‘biological circuits’ i.e., bodily innate electrical systems for the healthy functioning of the...

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Autores principales: Chitrakar, Chandani, Hedrick, Eric, Adegoke, Lauren, Ecker, Melanie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8911085/
https://www.ncbi.nlm.nih.gov/pubmed/35268893
http://dx.doi.org/10.3390/ma15051664
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author Chitrakar, Chandani
Hedrick, Eric
Adegoke, Lauren
Ecker, Melanie
author_facet Chitrakar, Chandani
Hedrick, Eric
Adegoke, Lauren
Ecker, Melanie
author_sort Chitrakar, Chandani
collection PubMed
description Medical science technology has improved tremendously over the decades with the invention of robotic surgery, gene editing, immune therapy, etc. However, scientists are now recognizing the significance of ‘biological circuits’ i.e., bodily innate electrical systems for the healthy functioning of the body or for any disease conditions. Therefore, the current trend in the medical field is to understand the role of these biological circuits and exploit their advantages for therapeutic purposes. Bioelectronics, devised with these aims, work by resetting, stimulating, or blocking the electrical pathways. Bioelectronics are also used to monitor the biological cues to assess the homeostasis of the body. In a way, they bridge the gap between drug-based interventions and medical devices. With this in mind, scientists are now working towards developing flexible and stretchable miniaturized bioelectronics that can easily conform to the tissue topology, are non-toxic, elicit no immune reaction, and address the issues that drugs are unable to solve. Since the bioelectronic devices that come in contact with the body or body organs need to establish an unobstructed interface with the respective site, it is crucial that those bioelectronics are not only flexible but also stretchable for constant monitoring of the biological signals. Understanding the challenges of fabricating soft stretchable devices, we review several flexible and stretchable materials used as substrate, stretchable electrical conduits and encapsulation, design modifications for stretchability, fabrication techniques, methods of signal transmission and monitoring, and the power sources for these stretchable bioelectronics. Ultimately, these bioelectronic devices can be used for wide range of applications from skin bioelectronics and biosensing devices, to neural implants for diagnostic or therapeutic purposes.
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spelling pubmed-89110852022-03-11 Flexible and Stretchable Bioelectronics Chitrakar, Chandani Hedrick, Eric Adegoke, Lauren Ecker, Melanie Materials (Basel) Review Medical science technology has improved tremendously over the decades with the invention of robotic surgery, gene editing, immune therapy, etc. However, scientists are now recognizing the significance of ‘biological circuits’ i.e., bodily innate electrical systems for the healthy functioning of the body or for any disease conditions. Therefore, the current trend in the medical field is to understand the role of these biological circuits and exploit their advantages for therapeutic purposes. Bioelectronics, devised with these aims, work by resetting, stimulating, or blocking the electrical pathways. Bioelectronics are also used to monitor the biological cues to assess the homeostasis of the body. In a way, they bridge the gap between drug-based interventions and medical devices. With this in mind, scientists are now working towards developing flexible and stretchable miniaturized bioelectronics that can easily conform to the tissue topology, are non-toxic, elicit no immune reaction, and address the issues that drugs are unable to solve. Since the bioelectronic devices that come in contact with the body or body organs need to establish an unobstructed interface with the respective site, it is crucial that those bioelectronics are not only flexible but also stretchable for constant monitoring of the biological signals. Understanding the challenges of fabricating soft stretchable devices, we review several flexible and stretchable materials used as substrate, stretchable electrical conduits and encapsulation, design modifications for stretchability, fabrication techniques, methods of signal transmission and monitoring, and the power sources for these stretchable bioelectronics. Ultimately, these bioelectronic devices can be used for wide range of applications from skin bioelectronics and biosensing devices, to neural implants for diagnostic or therapeutic purposes. MDPI 2022-02-23 /pmc/articles/PMC8911085/ /pubmed/35268893 http://dx.doi.org/10.3390/ma15051664 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Chitrakar, Chandani
Hedrick, Eric
Adegoke, Lauren
Ecker, Melanie
Flexible and Stretchable Bioelectronics
title Flexible and Stretchable Bioelectronics
title_full Flexible and Stretchable Bioelectronics
title_fullStr Flexible and Stretchable Bioelectronics
title_full_unstemmed Flexible and Stretchable Bioelectronics
title_short Flexible and Stretchable Bioelectronics
title_sort flexible and stretchable bioelectronics
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8911085/
https://www.ncbi.nlm.nih.gov/pubmed/35268893
http://dx.doi.org/10.3390/ma15051664
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