Cargando…

An electroactive hybrid biointerface for enhancing neuronal differentiation and axonal outgrowth on bio-subretinal chip

Retinal prostheses offer viable vision restoration therapy for patients with blindness. However, a critical requirement for maintaining the stable performance of electrical stimulation and signal transmission is the biocompatibility of the electrode interface. Here, we demonstrated a functionalized...

Descripción completa

Detalles Bibliográficos
Autores principales: Yang, Jia-Wei, Chen, Chong-You, Yu, Zih-Yu, Chung, Johnson H.Y., Liu, Xiao, Wu, Chung-Yu, Chen, Guan-Yu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9018446/
https://www.ncbi.nlm.nih.gov/pubmed/35464741
http://dx.doi.org/10.1016/j.mtbio.2022.100253
_version_ 1784689051418230784
author Yang, Jia-Wei
Chen, Chong-You
Yu, Zih-Yu
Chung, Johnson H.Y.
Liu, Xiao
Wu, Chung-Yu
Chen, Guan-Yu
author_facet Yang, Jia-Wei
Chen, Chong-You
Yu, Zih-Yu
Chung, Johnson H.Y.
Liu, Xiao
Wu, Chung-Yu
Chen, Guan-Yu
author_sort Yang, Jia-Wei
collection PubMed
description Retinal prostheses offer viable vision restoration therapy for patients with blindness. However, a critical requirement for maintaining the stable performance of electrical stimulation and signal transmission is the biocompatibility of the electrode interface. Here, we demonstrated a functionalized electrode-neuron biointerface composed of an annealed graphene oxide-collagen (aGO-COL) composite and neuronal cells. The aGO-COL exhibited an electroactive 3D crumpled surface structure and enhanced the differentiation efficiency of PC-12 ​cells. It is integrated into a photovoltaic self-powered retinal chip to develop a biohybrid retinal implant that facilitates biocompatibility and tissue regeneration. Moreover, aGO-COL micropatterns fabricated via 3D bioprinting can be used to create neuronal cell microarrays, which supports the possibility of retaining the high spatial resolution achieved through electrical stimulation of the retinal chip. This study paves the way for the next generation of biohybrid retinal implants based on biointerfaces.
format Online
Article
Text
id pubmed-9018446
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-90184462022-04-21 An electroactive hybrid biointerface for enhancing neuronal differentiation and axonal outgrowth on bio-subretinal chip Yang, Jia-Wei Chen, Chong-You Yu, Zih-Yu Chung, Johnson H.Y. Liu, Xiao Wu, Chung-Yu Chen, Guan-Yu Mater Today Bio Full Length Article Retinal prostheses offer viable vision restoration therapy for patients with blindness. However, a critical requirement for maintaining the stable performance of electrical stimulation and signal transmission is the biocompatibility of the electrode interface. Here, we demonstrated a functionalized electrode-neuron biointerface composed of an annealed graphene oxide-collagen (aGO-COL) composite and neuronal cells. The aGO-COL exhibited an electroactive 3D crumpled surface structure and enhanced the differentiation efficiency of PC-12 ​cells. It is integrated into a photovoltaic self-powered retinal chip to develop a biohybrid retinal implant that facilitates biocompatibility and tissue regeneration. Moreover, aGO-COL micropatterns fabricated via 3D bioprinting can be used to create neuronal cell microarrays, which supports the possibility of retaining the high spatial resolution achieved through electrical stimulation of the retinal chip. This study paves the way for the next generation of biohybrid retinal implants based on biointerfaces. Elsevier 2022-04-05 /pmc/articles/PMC9018446/ /pubmed/35464741 http://dx.doi.org/10.1016/j.mtbio.2022.100253 Text en © 2022 Published by Elsevier Ltd. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Full Length Article
Yang, Jia-Wei
Chen, Chong-You
Yu, Zih-Yu
Chung, Johnson H.Y.
Liu, Xiao
Wu, Chung-Yu
Chen, Guan-Yu
An electroactive hybrid biointerface for enhancing neuronal differentiation and axonal outgrowth on bio-subretinal chip
title An electroactive hybrid biointerface for enhancing neuronal differentiation and axonal outgrowth on bio-subretinal chip
title_full An electroactive hybrid biointerface for enhancing neuronal differentiation and axonal outgrowth on bio-subretinal chip
title_fullStr An electroactive hybrid biointerface for enhancing neuronal differentiation and axonal outgrowth on bio-subretinal chip
title_full_unstemmed An electroactive hybrid biointerface for enhancing neuronal differentiation and axonal outgrowth on bio-subretinal chip
title_short An electroactive hybrid biointerface for enhancing neuronal differentiation and axonal outgrowth on bio-subretinal chip
title_sort electroactive hybrid biointerface for enhancing neuronal differentiation and axonal outgrowth on bio-subretinal chip
topic Full Length Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9018446/
https://www.ncbi.nlm.nih.gov/pubmed/35464741
http://dx.doi.org/10.1016/j.mtbio.2022.100253
work_keys_str_mv AT yangjiawei anelectroactivehybridbiointerfaceforenhancingneuronaldifferentiationandaxonaloutgrowthonbiosubretinalchip
AT chenchongyou anelectroactivehybridbiointerfaceforenhancingneuronaldifferentiationandaxonaloutgrowthonbiosubretinalchip
AT yuzihyu anelectroactivehybridbiointerfaceforenhancingneuronaldifferentiationandaxonaloutgrowthonbiosubretinalchip
AT chungjohnsonhy anelectroactivehybridbiointerfaceforenhancingneuronaldifferentiationandaxonaloutgrowthonbiosubretinalchip
AT liuxiao anelectroactivehybridbiointerfaceforenhancingneuronaldifferentiationandaxonaloutgrowthonbiosubretinalchip
AT wuchungyu anelectroactivehybridbiointerfaceforenhancingneuronaldifferentiationandaxonaloutgrowthonbiosubretinalchip
AT chenguanyu anelectroactivehybridbiointerfaceforenhancingneuronaldifferentiationandaxonaloutgrowthonbiosubretinalchip
AT yangjiawei electroactivehybridbiointerfaceforenhancingneuronaldifferentiationandaxonaloutgrowthonbiosubretinalchip
AT chenchongyou electroactivehybridbiointerfaceforenhancingneuronaldifferentiationandaxonaloutgrowthonbiosubretinalchip
AT yuzihyu electroactivehybridbiointerfaceforenhancingneuronaldifferentiationandaxonaloutgrowthonbiosubretinalchip
AT chungjohnsonhy electroactivehybridbiointerfaceforenhancingneuronaldifferentiationandaxonaloutgrowthonbiosubretinalchip
AT liuxiao electroactivehybridbiointerfaceforenhancingneuronaldifferentiationandaxonaloutgrowthonbiosubretinalchip
AT wuchungyu electroactivehybridbiointerfaceforenhancingneuronaldifferentiationandaxonaloutgrowthonbiosubretinalchip
AT chenguanyu electroactivehybridbiointerfaceforenhancingneuronaldifferentiationandaxonaloutgrowthonbiosubretinalchip