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Integrated dynamic wet spinning of core-sheath hydrogel fibers for optical-to-brain/tissue communications

Hydrogel optical light-guides have received substantial interest for applications such as deep-tissue biosensors, optogenetic stimulation and photomedicine due to their biocompatibility, (micro)structure control and tissue-like Young's modulus. However, despite recent developments, large-scale...

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Autores principales: Chen, Guoyin, Wang, Gang, Tan, Xinrong, Hou, Kai, Meng, Qingshuo, Zhao, Peng, Wang, Shun, Zhang, Jiayi, Zhou, Zhan, Chen, Tao, Cheng, Yanhua, Hsiao, Benjamin S, Reichmanis, Elsa, Zhu, Meifang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8433079/
https://www.ncbi.nlm.nih.gov/pubmed/34691723
http://dx.doi.org/10.1093/nsr/nwaa209
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author Chen, Guoyin
Wang, Gang
Tan, Xinrong
Hou, Kai
Meng, Qingshuo
Zhao, Peng
Wang, Shun
Zhang, Jiayi
Zhou, Zhan
Chen, Tao
Cheng, Yanhua
Hsiao, Benjamin S
Reichmanis, Elsa
Zhu, Meifang
author_facet Chen, Guoyin
Wang, Gang
Tan, Xinrong
Hou, Kai
Meng, Qingshuo
Zhao, Peng
Wang, Shun
Zhang, Jiayi
Zhou, Zhan
Chen, Tao
Cheng, Yanhua
Hsiao, Benjamin S
Reichmanis, Elsa
Zhu, Meifang
author_sort Chen, Guoyin
collection PubMed
description Hydrogel optical light-guides have received substantial interest for applications such as deep-tissue biosensors, optogenetic stimulation and photomedicine due to their biocompatibility, (micro)structure control and tissue-like Young's modulus. However, despite recent developments, large-scale fabrication with a continuous synthetic methodology, which could produce core-sheath hydrogel fibers with the desired optical and mechanical properties suitable for deep-tissue applications, has yet to be achieved. In this study, we report a versatile concept of integrated light-triggered dynamic wet spinning capable of continuously producing core-sheath hydrogel optical fibers with tunable fiber diameters, and mechanical and optical propagation properties. Furthermore, this concept also exhibited versatility for various kinds of core-sheath functional fibers. The wet spinning synthetic procedure and fabrication process were optimized with the rational design of the core/sheath material interface compatibility [core = poly(ethylene glycol diacrylate-co-acrylamide); sheath = Ca-alginate], optical transparency, refractive index and spinning solution viscosity. The resulting hydrogel optical fibers exhibited desirable low optical attenuation (0.18 ± 0.01 dB cm(−1) with 650 nm laser light), excellent biocompatibility and tissue-like Young's modulus (<2.60 MPa). The optical waveguide hydrogel fibers were successfully employed for deep-tissue cancer therapy and brain optogenetic stimulation, confirming that they could serve as an efficient versatile tool for diverse deep-tissue therapy and brain optogenetic applications.
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spelling pubmed-84330792021-10-21 Integrated dynamic wet spinning of core-sheath hydrogel fibers for optical-to-brain/tissue communications Chen, Guoyin Wang, Gang Tan, Xinrong Hou, Kai Meng, Qingshuo Zhao, Peng Wang, Shun Zhang, Jiayi Zhou, Zhan Chen, Tao Cheng, Yanhua Hsiao, Benjamin S Reichmanis, Elsa Zhu, Meifang Natl Sci Rev Materials Science Hydrogel optical light-guides have received substantial interest for applications such as deep-tissue biosensors, optogenetic stimulation and photomedicine due to their biocompatibility, (micro)structure control and tissue-like Young's modulus. However, despite recent developments, large-scale fabrication with a continuous synthetic methodology, which could produce core-sheath hydrogel fibers with the desired optical and mechanical properties suitable for deep-tissue applications, has yet to be achieved. In this study, we report a versatile concept of integrated light-triggered dynamic wet spinning capable of continuously producing core-sheath hydrogel optical fibers with tunable fiber diameters, and mechanical and optical propagation properties. Furthermore, this concept also exhibited versatility for various kinds of core-sheath functional fibers. The wet spinning synthetic procedure and fabrication process were optimized with the rational design of the core/sheath material interface compatibility [core = poly(ethylene glycol diacrylate-co-acrylamide); sheath = Ca-alginate], optical transparency, refractive index and spinning solution viscosity. The resulting hydrogel optical fibers exhibited desirable low optical attenuation (0.18 ± 0.01 dB cm(−1) with 650 nm laser light), excellent biocompatibility and tissue-like Young's modulus (<2.60 MPa). The optical waveguide hydrogel fibers were successfully employed for deep-tissue cancer therapy and brain optogenetic stimulation, confirming that they could serve as an efficient versatile tool for diverse deep-tissue therapy and brain optogenetic applications. Oxford University Press 2020-08-31 /pmc/articles/PMC8433079/ /pubmed/34691723 http://dx.doi.org/10.1093/nsr/nwaa209 Text en © The Author(s) 2020. Published by Oxford University Press on behalf of China Science Publishing & Media Ltd. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Materials Science
Chen, Guoyin
Wang, Gang
Tan, Xinrong
Hou, Kai
Meng, Qingshuo
Zhao, Peng
Wang, Shun
Zhang, Jiayi
Zhou, Zhan
Chen, Tao
Cheng, Yanhua
Hsiao, Benjamin S
Reichmanis, Elsa
Zhu, Meifang
Integrated dynamic wet spinning of core-sheath hydrogel fibers for optical-to-brain/tissue communications
title Integrated dynamic wet spinning of core-sheath hydrogel fibers for optical-to-brain/tissue communications
title_full Integrated dynamic wet spinning of core-sheath hydrogel fibers for optical-to-brain/tissue communications
title_fullStr Integrated dynamic wet spinning of core-sheath hydrogel fibers for optical-to-brain/tissue communications
title_full_unstemmed Integrated dynamic wet spinning of core-sheath hydrogel fibers for optical-to-brain/tissue communications
title_short Integrated dynamic wet spinning of core-sheath hydrogel fibers for optical-to-brain/tissue communications
title_sort integrated dynamic wet spinning of core-sheath hydrogel fibers for optical-to-brain/tissue communications
topic Materials Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8433079/
https://www.ncbi.nlm.nih.gov/pubmed/34691723
http://dx.doi.org/10.1093/nsr/nwaa209
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