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3D organic bioelectronics for electrical monitoring of human adult stem cells

Three-dimensional in vitro stem cell models have enabled a fundamental understanding of cues that direct stem cell fate. While sophisticated 3D tissues can be generated, technology that can accurately monitor these complex models in a high-throughput and non-invasive manner is not well adapted. Here...

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Autores principales: Savva, Achilleas, Saez, Janire, Withers, Aimee, Barberio, Chiara, Stoeger, Verena, Elias-Kirma, Shani, Lu, Zixuan, Moysidou, Chrysanthi-Maria, Kallitsis, Konstantinos, Pitsalidis, Charalampos, Owens, Róisín M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10464098/
https://www.ncbi.nlm.nih.gov/pubmed/37318042
http://dx.doi.org/10.1039/d3mh00785e
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author Savva, Achilleas
Saez, Janire
Withers, Aimee
Barberio, Chiara
Stoeger, Verena
Elias-Kirma, Shani
Lu, Zixuan
Moysidou, Chrysanthi-Maria
Kallitsis, Konstantinos
Pitsalidis, Charalampos
Owens, Róisín M.
author_facet Savva, Achilleas
Saez, Janire
Withers, Aimee
Barberio, Chiara
Stoeger, Verena
Elias-Kirma, Shani
Lu, Zixuan
Moysidou, Chrysanthi-Maria
Kallitsis, Konstantinos
Pitsalidis, Charalampos
Owens, Róisín M.
author_sort Savva, Achilleas
collection PubMed
description Three-dimensional in vitro stem cell models have enabled a fundamental understanding of cues that direct stem cell fate. While sophisticated 3D tissues can be generated, technology that can accurately monitor these complex models in a high-throughput and non-invasive manner is not well adapted. Here we show the development of 3D bioelectronic devices based on the electroactive polymer poly(3,4-ethylenedioxythiophene)-poly(styrenesulfonate)–(PEDOT:PSS) and their use for non-invasive, electrical monitoring of stem cell growth. We show that the electrical, mechanical and wetting properties as well as the pore size/architecture of 3D PEDOT:PSS scaffolds can be fine-tuned simply by changing the processing crosslinker additive. We present a comprehensive characterization of both 2D PEDOT:PSS thin films of controlled thicknesses, and 3D porous PEDOT:PSS structures made by the freeze-drying technique. By slicing the bulky scaffolds we generate homogeneous, porous 250 μm thick PEDOT:PSS slices, constituting biocompatible 3D constructs able to support stem cell cultures. These multifunctional slices are attached on indium-tin oxide substrates (ITO) with the help of an electrically active adhesion layer, enabling 3D bioelectronic devices with a characteristic and reproducible, frequency dependent impedance response. This response changes drastically when human adipose derived stem cells (hADSCs) grow within the porous PEDOT:PSS network as revealed by fluorescence microscopy. The increase of cell population within the PEDOT:PSS porous network impedes the charge flow at the interface between PEDOT:PSS and ITO, enabling the interface resistance (R(1)) to be used as a figure of merit to monitor the proliferation of stem cells. The non-invasive monitoring of stem cell growth allows for the subsequent differentiation 3D stem cell cultures into neuron like cells, as verified by immunofluorescence and RT-qPCR measurements. The strategy of controlling important properties of 3D PEDOT:PSS structures simply by altering processing parameters can be applied for development of a number of stem cell in vitro models as well as stem cell differentiation pathways. We believe the results presented here will advance 3D bioelectronic technology for both fundamental understanding of in vitro stem cell cultures as well as the development of personalized therapies.
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spelling pubmed-104640982023-08-30 3D organic bioelectronics for electrical monitoring of human adult stem cells Savva, Achilleas Saez, Janire Withers, Aimee Barberio, Chiara Stoeger, Verena Elias-Kirma, Shani Lu, Zixuan Moysidou, Chrysanthi-Maria Kallitsis, Konstantinos Pitsalidis, Charalampos Owens, Róisín M. Mater Horiz Chemistry Three-dimensional in vitro stem cell models have enabled a fundamental understanding of cues that direct stem cell fate. While sophisticated 3D tissues can be generated, technology that can accurately monitor these complex models in a high-throughput and non-invasive manner is not well adapted. Here we show the development of 3D bioelectronic devices based on the electroactive polymer poly(3,4-ethylenedioxythiophene)-poly(styrenesulfonate)–(PEDOT:PSS) and their use for non-invasive, electrical monitoring of stem cell growth. We show that the electrical, mechanical and wetting properties as well as the pore size/architecture of 3D PEDOT:PSS scaffolds can be fine-tuned simply by changing the processing crosslinker additive. We present a comprehensive characterization of both 2D PEDOT:PSS thin films of controlled thicknesses, and 3D porous PEDOT:PSS structures made by the freeze-drying technique. By slicing the bulky scaffolds we generate homogeneous, porous 250 μm thick PEDOT:PSS slices, constituting biocompatible 3D constructs able to support stem cell cultures. These multifunctional slices are attached on indium-tin oxide substrates (ITO) with the help of an electrically active adhesion layer, enabling 3D bioelectronic devices with a characteristic and reproducible, frequency dependent impedance response. This response changes drastically when human adipose derived stem cells (hADSCs) grow within the porous PEDOT:PSS network as revealed by fluorescence microscopy. The increase of cell population within the PEDOT:PSS porous network impedes the charge flow at the interface between PEDOT:PSS and ITO, enabling the interface resistance (R(1)) to be used as a figure of merit to monitor the proliferation of stem cells. The non-invasive monitoring of stem cell growth allows for the subsequent differentiation 3D stem cell cultures into neuron like cells, as verified by immunofluorescence and RT-qPCR measurements. The strategy of controlling important properties of 3D PEDOT:PSS structures simply by altering processing parameters can be applied for development of a number of stem cell in vitro models as well as stem cell differentiation pathways. We believe the results presented here will advance 3D bioelectronic technology for both fundamental understanding of in vitro stem cell cultures as well as the development of personalized therapies. The Royal Society of Chemistry 2023-06-08 /pmc/articles/PMC10464098/ /pubmed/37318042 http://dx.doi.org/10.1039/d3mh00785e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Savva, Achilleas
Saez, Janire
Withers, Aimee
Barberio, Chiara
Stoeger, Verena
Elias-Kirma, Shani
Lu, Zixuan
Moysidou, Chrysanthi-Maria
Kallitsis, Konstantinos
Pitsalidis, Charalampos
Owens, Róisín M.
3D organic bioelectronics for electrical monitoring of human adult stem cells
title 3D organic bioelectronics for electrical monitoring of human adult stem cells
title_full 3D organic bioelectronics for electrical monitoring of human adult stem cells
title_fullStr 3D organic bioelectronics for electrical monitoring of human adult stem cells
title_full_unstemmed 3D organic bioelectronics for electrical monitoring of human adult stem cells
title_short 3D organic bioelectronics for electrical monitoring of human adult stem cells
title_sort 3d organic bioelectronics for electrical monitoring of human adult stem cells
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10464098/
https://www.ncbi.nlm.nih.gov/pubmed/37318042
http://dx.doi.org/10.1039/d3mh00785e
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