Cargando…

3D-Printed Gastric Resident Electronics

Long-term implantation of biomedical electronics into the human body enables advanced diagnostic and therapeutic functionalities. However, most long-term resident electronics devices require invasive procedures for implantation as well as a specialized receiver for communication. Here, a gastric res...

Descripción completa

Detalles Bibliográficos
Autores principales: Kong, Yong Lin, Zou, Xingyu, McCandler, Caitlin A., Kirtane, Ameya R., Ning, Shen, Zhou, Jianlin, Abid, Abubakar, Jafari, Mousa, Rogner, Jaimie, Minahan, Daniel, Collins, Joy E., McDonnell, Shane, Cleveland, Cody, Bensel, Taylor, Tamang, Siid, Arrick, Graham, Gimbel, Alla, Hua, Tiffany, Ghosh, Udayan, Soares, Vance, Wang, Nancy, Wahane, Aniket, Hayward, Alison, Zhang, Shiyi, Smith, Brian R., Langer, Robert, Traverso, Giovanni
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Wiley-VCH Verlag GmbH & Co. KGaA 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6988123/
https://www.ncbi.nlm.nih.gov/pubmed/32010758
http://dx.doi.org/10.1002/admt.201800490
_version_ 1783492200291631104
author Kong, Yong Lin
Zou, Xingyu
McCandler, Caitlin A.
Kirtane, Ameya R.
Ning, Shen
Zhou, Jianlin
Abid, Abubakar
Jafari, Mousa
Rogner, Jaimie
Minahan, Daniel
Collins, Joy E.
McDonnell, Shane
Cleveland, Cody
Bensel, Taylor
Tamang, Siid
Arrick, Graham
Gimbel, Alla
Hua, Tiffany
Ghosh, Udayan
Soares, Vance
Wang, Nancy
Wahane, Aniket
Hayward, Alison
Zhang, Shiyi
Smith, Brian R.
Langer, Robert
Traverso, Giovanni
author_facet Kong, Yong Lin
Zou, Xingyu
McCandler, Caitlin A.
Kirtane, Ameya R.
Ning, Shen
Zhou, Jianlin
Abid, Abubakar
Jafari, Mousa
Rogner, Jaimie
Minahan, Daniel
Collins, Joy E.
McDonnell, Shane
Cleveland, Cody
Bensel, Taylor
Tamang, Siid
Arrick, Graham
Gimbel, Alla
Hua, Tiffany
Ghosh, Udayan
Soares, Vance
Wang, Nancy
Wahane, Aniket
Hayward, Alison
Zhang, Shiyi
Smith, Brian R.
Langer, Robert
Traverso, Giovanni
author_sort Kong, Yong Lin
collection PubMed
description Long-term implantation of biomedical electronics into the human body enables advanced diagnostic and therapeutic functionalities. However, most long-term resident electronics devices require invasive procedures for implantation as well as a specialized receiver for communication. Here, a gastric resident electronic (GRE) system that leverages the anatomical space offered by the gastric environment to enable residence of an orally delivered platform of such devices within the human body is presented. The GRE is capable of directly interfacing with portable consumer personal electronics through Bluetooth, a widely adopted wireless protocol. In contrast to the passive day-long gastric residence achieved with prior ingestible electronics, advancement in multimaterial prototyping enables the GRE to reside in the hostile gastric environment for a maximum of 36 d and maintain ≈15 d of wireless electronics communications as evidenced by the studies in a porcine model. Indeed, the synergistic integration of reconfigurable gastric-residence structure, drug release modules, and wireless electronics could ultimately enable the next-generation remote diagnostic and automated therapeutic strategies.
format Online
Article
Text
id pubmed-6988123
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Wiley-VCH Verlag GmbH & Co. KGaA
record_format MEDLINE/PubMed
spelling pubmed-69881232020-01-29 3D-Printed Gastric Resident Electronics Kong, Yong Lin Zou, Xingyu McCandler, Caitlin A. Kirtane, Ameya R. Ning, Shen Zhou, Jianlin Abid, Abubakar Jafari, Mousa Rogner, Jaimie Minahan, Daniel Collins, Joy E. McDonnell, Shane Cleveland, Cody Bensel, Taylor Tamang, Siid Arrick, Graham Gimbel, Alla Hua, Tiffany Ghosh, Udayan Soares, Vance Wang, Nancy Wahane, Aniket Hayward, Alison Zhang, Shiyi Smith, Brian R. Langer, Robert Traverso, Giovanni Adv Mater Technol Communication Long-term implantation of biomedical electronics into the human body enables advanced diagnostic and therapeutic functionalities. However, most long-term resident electronics devices require invasive procedures for implantation as well as a specialized receiver for communication. Here, a gastric resident electronic (GRE) system that leverages the anatomical space offered by the gastric environment to enable residence of an orally delivered platform of such devices within the human body is presented. The GRE is capable of directly interfacing with portable consumer personal electronics through Bluetooth, a widely adopted wireless protocol. In contrast to the passive day-long gastric residence achieved with prior ingestible electronics, advancement in multimaterial prototyping enables the GRE to reside in the hostile gastric environment for a maximum of 36 d and maintain ≈15 d of wireless electronics communications as evidenced by the studies in a porcine model. Indeed, the synergistic integration of reconfigurable gastric-residence structure, drug release modules, and wireless electronics could ultimately enable the next-generation remote diagnostic and automated therapeutic strategies. Wiley-VCH Verlag GmbH & Co. KGaA 2018-12-13 2019 /pmc/articles/PMC6988123/ /pubmed/32010758 http://dx.doi.org/10.1002/admt.201800490 Text en © 2019 The Authors. Published by WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim http://creativecommons.org/licenses/by/4.0/ This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Communication
Kong, Yong Lin
Zou, Xingyu
McCandler, Caitlin A.
Kirtane, Ameya R.
Ning, Shen
Zhou, Jianlin
Abid, Abubakar
Jafari, Mousa
Rogner, Jaimie
Minahan, Daniel
Collins, Joy E.
McDonnell, Shane
Cleveland, Cody
Bensel, Taylor
Tamang, Siid
Arrick, Graham
Gimbel, Alla
Hua, Tiffany
Ghosh, Udayan
Soares, Vance
Wang, Nancy
Wahane, Aniket
Hayward, Alison
Zhang, Shiyi
Smith, Brian R.
Langer, Robert
Traverso, Giovanni
3D-Printed Gastric Resident Electronics
title 3D-Printed Gastric Resident Electronics
title_full 3D-Printed Gastric Resident Electronics
title_fullStr 3D-Printed Gastric Resident Electronics
title_full_unstemmed 3D-Printed Gastric Resident Electronics
title_short 3D-Printed Gastric Resident Electronics
title_sort 3d-printed gastric resident electronics
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6988123/
https://www.ncbi.nlm.nih.gov/pubmed/32010758
http://dx.doi.org/10.1002/admt.201800490
work_keys_str_mv AT kongyonglin 3dprintedgastricresidentelectronics
AT zouxingyu 3dprintedgastricresidentelectronics
AT mccandlercaitlina 3dprintedgastricresidentelectronics
AT kirtaneameyar 3dprintedgastricresidentelectronics
AT ningshen 3dprintedgastricresidentelectronics
AT zhoujianlin 3dprintedgastricresidentelectronics
AT abidabubakar 3dprintedgastricresidentelectronics
AT jafarimousa 3dprintedgastricresidentelectronics
AT rognerjaimie 3dprintedgastricresidentelectronics
AT minahandaniel 3dprintedgastricresidentelectronics
AT collinsjoye 3dprintedgastricresidentelectronics
AT mcdonnellshane 3dprintedgastricresidentelectronics
AT clevelandcody 3dprintedgastricresidentelectronics
AT benseltaylor 3dprintedgastricresidentelectronics
AT tamangsiid 3dprintedgastricresidentelectronics
AT arrickgraham 3dprintedgastricresidentelectronics
AT gimbelalla 3dprintedgastricresidentelectronics
AT huatiffany 3dprintedgastricresidentelectronics
AT ghoshudayan 3dprintedgastricresidentelectronics
AT soaresvance 3dprintedgastricresidentelectronics
AT wangnancy 3dprintedgastricresidentelectronics
AT wahaneaniket 3dprintedgastricresidentelectronics
AT haywardalison 3dprintedgastricresidentelectronics
AT zhangshiyi 3dprintedgastricresidentelectronics
AT smithbrianr 3dprintedgastricresidentelectronics
AT langerrobert 3dprintedgastricresidentelectronics
AT traversogiovanni 3dprintedgastricresidentelectronics