INDIUM TIN OXIDE MICRO-ELECTRODE ARRAY FOR NEURONAL STIMULTION AND RECORDING

Influence of applied electric field on biological cells has been widely investigated particularly for medical application, for example, to stimulate excitable neurons. Indium tin oxide (ITO), a transparent conducting semiconductor with biocompatible property, is used for electrical stimulating and e...

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Main Authors: Suthiwan Udomrat, Supeecha Kumkate, Permphan Dhurmasaroja, Tanakorn Osotchan, Theeraporn Puntheeranurak
Other Authors: Mahidol University
Format: Article
Published: 2022
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Online Access:https://repository.li.mahidol.ac.th/handle/123456789/73937
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spelling th-mahidol.739372022-08-04T11:01:04Z INDIUM TIN OXIDE MICRO-ELECTRODE ARRAY FOR NEURONAL STIMULTION AND RECORDING Suthiwan Udomrat Supeecha Kumkate Permphan Dhurmasaroja Tanakorn Osotchan Theeraporn Puntheeranurak Mahidol University Engineering Influence of applied electric field on biological cells has been widely investigated particularly for medical application, for example, to stimulate excitable neurons. Indium tin oxide (ITO), a transparent conducting semiconductor with biocompatible property, is used for electrical stimulating and electrochemical sensing the cell on the platform. In this work, ITO platform was developed by lithography micron-patterning and modified surface with protein coating. Surface morphology of the treated ITO surface was examined and biocompatibility was investigated by long period cell culture. SH-SY5Y, a human-neuroblastoma, was grown and subjected to 50 mV/ mm of steady state direct current electric field applying through the protein functionalized ITO platform for 30 min. The electrical treated cells exhibited morphological changes by extending neuronal processes length to 10. 75±30. 96 μm (n = 43) longer than the non-electrical treated cells. After electrical treatment, cell alignment following the electric field direction can also be observed. This work can demonstrate the biocompatibility and possibility use of treated ITO electrode for inducing cells morphological changes and controlling cell alignment. Furthermore, the fabricated ITO electrode can also demonstrate additional benefit of observing cellular activity by the means of electrical signal detection during the cellular progressions. 2022-08-04T04:01:04Z 2022-08-04T04:01:04Z 2022-01-01 Article Suranaree Journal of Science and Technology. Vol.29, No.1 (2022) 25870009 0858849X 2-s2.0-85130594145 https://repository.li.mahidol.ac.th/handle/123456789/73937 Mahidol University SCOPUS https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85130594145&origin=inward
institution Mahidol University
building Mahidol University Library
continent Asia
country Thailand
Thailand
content_provider Mahidol University Library
collection Mahidol University Institutional Repository
topic Engineering
spellingShingle Engineering
Suthiwan Udomrat
Supeecha Kumkate
Permphan Dhurmasaroja
Tanakorn Osotchan
Theeraporn Puntheeranurak
INDIUM TIN OXIDE MICRO-ELECTRODE ARRAY FOR NEURONAL STIMULTION AND RECORDING
description Influence of applied electric field on biological cells has been widely investigated particularly for medical application, for example, to stimulate excitable neurons. Indium tin oxide (ITO), a transparent conducting semiconductor with biocompatible property, is used for electrical stimulating and electrochemical sensing the cell on the platform. In this work, ITO platform was developed by lithography micron-patterning and modified surface with protein coating. Surface morphology of the treated ITO surface was examined and biocompatibility was investigated by long period cell culture. SH-SY5Y, a human-neuroblastoma, was grown and subjected to 50 mV/ mm of steady state direct current electric field applying through the protein functionalized ITO platform for 30 min. The electrical treated cells exhibited morphological changes by extending neuronal processes length to 10. 75±30. 96 μm (n = 43) longer than the non-electrical treated cells. After electrical treatment, cell alignment following the electric field direction can also be observed. This work can demonstrate the biocompatibility and possibility use of treated ITO electrode for inducing cells morphological changes and controlling cell alignment. Furthermore, the fabricated ITO electrode can also demonstrate additional benefit of observing cellular activity by the means of electrical signal detection during the cellular progressions.
author2 Mahidol University
author_facet Mahidol University
Suthiwan Udomrat
Supeecha Kumkate
Permphan Dhurmasaroja
Tanakorn Osotchan
Theeraporn Puntheeranurak
format Article
author Suthiwan Udomrat
Supeecha Kumkate
Permphan Dhurmasaroja
Tanakorn Osotchan
Theeraporn Puntheeranurak
author_sort Suthiwan Udomrat
title INDIUM TIN OXIDE MICRO-ELECTRODE ARRAY FOR NEURONAL STIMULTION AND RECORDING
title_short INDIUM TIN OXIDE MICRO-ELECTRODE ARRAY FOR NEURONAL STIMULTION AND RECORDING
title_full INDIUM TIN OXIDE MICRO-ELECTRODE ARRAY FOR NEURONAL STIMULTION AND RECORDING
title_fullStr INDIUM TIN OXIDE MICRO-ELECTRODE ARRAY FOR NEURONAL STIMULTION AND RECORDING
title_full_unstemmed INDIUM TIN OXIDE MICRO-ELECTRODE ARRAY FOR NEURONAL STIMULTION AND RECORDING
title_sort indium tin oxide micro-electrode array for neuronal stimultion and recording
publishDate 2022
url https://repository.li.mahidol.ac.th/handle/123456789/73937
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