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In Situ Forming of Nitric Oxide and Electric Stimulus for Nerve Therapy by Wireless Chargeable Gold Yarn‐Dynamos

Endogenous signals, namely nitric oxide (NO) and electrons, play a crucial role in regulating cell fate as well as the vascular and neuronal systems. Unfortunately, utilizing NO and electrical stimulation in clinical settings can be challenging due to NO's short half‐life and the invasive elect...

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Autores principales: Chiang, Min‐Ren, Lin, Ya‐Hui, Zhao, Wei‐Jie, Liu, Hsiu‐Ching, Hsu, Ru‐Siou, Chou, Tsu‐Chin, Lu, Tsai‐Te, Lee, I‐Chi, Liao, Lun‐De, Chiou, Shih‐Hwa, Chu, Li‐An, Hu, Shang‐Hsiu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10667856/
https://www.ncbi.nlm.nih.gov/pubmed/37867218
http://dx.doi.org/10.1002/advs.202303566
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author Chiang, Min‐Ren
Lin, Ya‐Hui
Zhao, Wei‐Jie
Liu, Hsiu‐Ching
Hsu, Ru‐Siou
Chou, Tsu‐Chin
Lu, Tsai‐Te
Lee, I‐Chi
Liao, Lun‐De
Chiou, Shih‐Hwa
Chu, Li‐An
Hu, Shang‐Hsiu
author_facet Chiang, Min‐Ren
Lin, Ya‐Hui
Zhao, Wei‐Jie
Liu, Hsiu‐Ching
Hsu, Ru‐Siou
Chou, Tsu‐Chin
Lu, Tsai‐Te
Lee, I‐Chi
Liao, Lun‐De
Chiou, Shih‐Hwa
Chu, Li‐An
Hu, Shang‐Hsiu
author_sort Chiang, Min‐Ren
collection PubMed
description Endogenous signals, namely nitric oxide (NO) and electrons, play a crucial role in regulating cell fate as well as the vascular and neuronal systems. Unfortunately, utilizing NO and electrical stimulation in clinical settings can be challenging due to NO's short half‐life and the invasive electrodes required for electrical stimulation. Additionally, there is a lack of tools to spatiotemporally control gas release and electrical stimulation. To address these issues, an “electromagnetic messenger” approach that employs on‐demand high‐frequency magnetic field (HFMF) to trigger NO release and electrical stimulation for restoring brain function in cases of traumatic brain injury is introduced. The system comprises a NO donor (poly(S‐nitrosoglutathione), pGSNO)‐conjugated on a gold yarn‐dynamos (GY) and embedded in an implantable silk in a microneedle. When subjected to HFMF, conductive GY induces eddy currents that stimulate the release of NO from pGSNO. This process significantly enhances neural stem cell (NSC) synapses' differentiation and growth. The combined strategy of using NO and electrical stimulation to inhibit inflammation, angiogenesis, and neuronal interrogation in traumatic brain injury is demonstrated in vivo.
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spelling pubmed-106678562023-10-22 In Situ Forming of Nitric Oxide and Electric Stimulus for Nerve Therapy by Wireless Chargeable Gold Yarn‐Dynamos Chiang, Min‐Ren Lin, Ya‐Hui Zhao, Wei‐Jie Liu, Hsiu‐Ching Hsu, Ru‐Siou Chou, Tsu‐Chin Lu, Tsai‐Te Lee, I‐Chi Liao, Lun‐De Chiou, Shih‐Hwa Chu, Li‐An Hu, Shang‐Hsiu Adv Sci (Weinh) Research Articles Endogenous signals, namely nitric oxide (NO) and electrons, play a crucial role in regulating cell fate as well as the vascular and neuronal systems. Unfortunately, utilizing NO and electrical stimulation in clinical settings can be challenging due to NO's short half‐life and the invasive electrodes required for electrical stimulation. Additionally, there is a lack of tools to spatiotemporally control gas release and electrical stimulation. To address these issues, an “electromagnetic messenger” approach that employs on‐demand high‐frequency magnetic field (HFMF) to trigger NO release and electrical stimulation for restoring brain function in cases of traumatic brain injury is introduced. The system comprises a NO donor (poly(S‐nitrosoglutathione), pGSNO)‐conjugated on a gold yarn‐dynamos (GY) and embedded in an implantable silk in a microneedle. When subjected to HFMF, conductive GY induces eddy currents that stimulate the release of NO from pGSNO. This process significantly enhances neural stem cell (NSC) synapses' differentiation and growth. The combined strategy of using NO and electrical stimulation to inhibit inflammation, angiogenesis, and neuronal interrogation in traumatic brain injury is demonstrated in vivo. John Wiley and Sons Inc. 2023-10-22 /pmc/articles/PMC10667856/ /pubmed/37867218 http://dx.doi.org/10.1002/advs.202303566 Text en © 2023 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Chiang, Min‐Ren
Lin, Ya‐Hui
Zhao, Wei‐Jie
Liu, Hsiu‐Ching
Hsu, Ru‐Siou
Chou, Tsu‐Chin
Lu, Tsai‐Te
Lee, I‐Chi
Liao, Lun‐De
Chiou, Shih‐Hwa
Chu, Li‐An
Hu, Shang‐Hsiu
In Situ Forming of Nitric Oxide and Electric Stimulus for Nerve Therapy by Wireless Chargeable Gold Yarn‐Dynamos
title In Situ Forming of Nitric Oxide and Electric Stimulus for Nerve Therapy by Wireless Chargeable Gold Yarn‐Dynamos
title_full In Situ Forming of Nitric Oxide and Electric Stimulus for Nerve Therapy by Wireless Chargeable Gold Yarn‐Dynamos
title_fullStr In Situ Forming of Nitric Oxide and Electric Stimulus for Nerve Therapy by Wireless Chargeable Gold Yarn‐Dynamos
title_full_unstemmed In Situ Forming of Nitric Oxide and Electric Stimulus for Nerve Therapy by Wireless Chargeable Gold Yarn‐Dynamos
title_short In Situ Forming of Nitric Oxide and Electric Stimulus for Nerve Therapy by Wireless Chargeable Gold Yarn‐Dynamos
title_sort in situ forming of nitric oxide and electric stimulus for nerve therapy by wireless chargeable gold yarn‐dynamos
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10667856/
https://www.ncbi.nlm.nih.gov/pubmed/37867218
http://dx.doi.org/10.1002/advs.202303566
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