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Self-powered, light-controlled, bioresorbable platforms for programmed drug delivery

Degradable polymer matrices and porous scaffolds provide powerful mechanisms for passive, sustained release of drugs relevant to the treatment of a broad range of diseases and conditions. Growing interest is in active control of pharmacokinetics tailored to the needs of the patient via programmable...

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Autores principales: Zhang, Yamin, Liu, Fei, Zhang, Yuhe, Wang, Jin, D’Andrea, Dominic, Walters, Jordan B., Li, Shupeng, Yoon, Hong-Joon, Wu, Mingzheng, Li, Shuo, Hu, Ziying, Wang, Tong, Choi, Junhwan, Bailey, Keith, Dempsey, Elizabeth, Zhao, Kaiyu, Lantsova, Anastasia, Bouricha, Yasmine, Huang, Ivy, Guo, Hexia, Ni, Xinchen, Wu, Yunyun, Lee, Geumbee, Jiang, Fuchang, Huang, Yonggang, Franz, Colin K., Rogers, John A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10089205/
https://www.ncbi.nlm.nih.gov/pubmed/36888661
http://dx.doi.org/10.1073/pnas.2217734120
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author Zhang, Yamin
Liu, Fei
Zhang, Yuhe
Wang, Jin
D’Andrea, Dominic
Walters, Jordan B.
Li, Shupeng
Yoon, Hong-Joon
Wu, Mingzheng
Li, Shuo
Hu, Ziying
Wang, Tong
Choi, Junhwan
Bailey, Keith
Dempsey, Elizabeth
Zhao, Kaiyu
Lantsova, Anastasia
Bouricha, Yasmine
Huang, Ivy
Guo, Hexia
Ni, Xinchen
Wu, Yunyun
Lee, Geumbee
Jiang, Fuchang
Huang, Yonggang
Franz, Colin K.
Rogers, John A.
author_facet Zhang, Yamin
Liu, Fei
Zhang, Yuhe
Wang, Jin
D’Andrea, Dominic
Walters, Jordan B.
Li, Shupeng
Yoon, Hong-Joon
Wu, Mingzheng
Li, Shuo
Hu, Ziying
Wang, Tong
Choi, Junhwan
Bailey, Keith
Dempsey, Elizabeth
Zhao, Kaiyu
Lantsova, Anastasia
Bouricha, Yasmine
Huang, Ivy
Guo, Hexia
Ni, Xinchen
Wu, Yunyun
Lee, Geumbee
Jiang, Fuchang
Huang, Yonggang
Franz, Colin K.
Rogers, John A.
author_sort Zhang, Yamin
collection PubMed
description Degradable polymer matrices and porous scaffolds provide powerful mechanisms for passive, sustained release of drugs relevant to the treatment of a broad range of diseases and conditions. Growing interest is in active control of pharmacokinetics tailored to the needs of the patient via programmable engineering platforms that include power sources, delivery mechanisms, communication hardware, and associated electronics, most typically in forms that require surgical extraction after a period of use. Here we report a light-controlled, self-powered technology that bypasses key disadvantages of these systems, in an overall design that is bioresorbable. Programmability relies on the use of an external light source to illuminate an implanted, wavelength-sensitive phototransistor to trigger a short circuit in an electrochemical cell structure that includes a metal gate valve as its anode. Consequent electrochemical corrosion eliminates the gate, thereby opening an underlying reservoir to release a dose of drugs by passive diffusion into surrounding tissue. A wavelength-division multiplexing strategy allows release to be programmed from any one or any arbitrary combination of a collection of reservoirs built into an integrated device. Studies of various bioresorbable electrode materials define the key considerations and guide optimized choices in designs. In vivo demonstrations of programmed release of lidocaine adjacent the sciatic nerves in rat models illustrate the functionality in the context of pain management, an essential aspect of patient care that could benefit from the results presented here.
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spelling pubmed-100892052023-09-08 Self-powered, light-controlled, bioresorbable platforms for programmed drug delivery Zhang, Yamin Liu, Fei Zhang, Yuhe Wang, Jin D’Andrea, Dominic Walters, Jordan B. Li, Shupeng Yoon, Hong-Joon Wu, Mingzheng Li, Shuo Hu, Ziying Wang, Tong Choi, Junhwan Bailey, Keith Dempsey, Elizabeth Zhao, Kaiyu Lantsova, Anastasia Bouricha, Yasmine Huang, Ivy Guo, Hexia Ni, Xinchen Wu, Yunyun Lee, Geumbee Jiang, Fuchang Huang, Yonggang Franz, Colin K. Rogers, John A. Proc Natl Acad Sci U S A Physical Sciences Degradable polymer matrices and porous scaffolds provide powerful mechanisms for passive, sustained release of drugs relevant to the treatment of a broad range of diseases and conditions. Growing interest is in active control of pharmacokinetics tailored to the needs of the patient via programmable engineering platforms that include power sources, delivery mechanisms, communication hardware, and associated electronics, most typically in forms that require surgical extraction after a period of use. Here we report a light-controlled, self-powered technology that bypasses key disadvantages of these systems, in an overall design that is bioresorbable. Programmability relies on the use of an external light source to illuminate an implanted, wavelength-sensitive phototransistor to trigger a short circuit in an electrochemical cell structure that includes a metal gate valve as its anode. Consequent electrochemical corrosion eliminates the gate, thereby opening an underlying reservoir to release a dose of drugs by passive diffusion into surrounding tissue. A wavelength-division multiplexing strategy allows release to be programmed from any one or any arbitrary combination of a collection of reservoirs built into an integrated device. Studies of various bioresorbable electrode materials define the key considerations and guide optimized choices in designs. In vivo demonstrations of programmed release of lidocaine adjacent the sciatic nerves in rat models illustrate the functionality in the context of pain management, an essential aspect of patient care that could benefit from the results presented here. National Academy of Sciences 2023-03-08 2023-03-14 /pmc/articles/PMC10089205/ /pubmed/36888661 http://dx.doi.org/10.1073/pnas.2217734120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Physical Sciences
Zhang, Yamin
Liu, Fei
Zhang, Yuhe
Wang, Jin
D’Andrea, Dominic
Walters, Jordan B.
Li, Shupeng
Yoon, Hong-Joon
Wu, Mingzheng
Li, Shuo
Hu, Ziying
Wang, Tong
Choi, Junhwan
Bailey, Keith
Dempsey, Elizabeth
Zhao, Kaiyu
Lantsova, Anastasia
Bouricha, Yasmine
Huang, Ivy
Guo, Hexia
Ni, Xinchen
Wu, Yunyun
Lee, Geumbee
Jiang, Fuchang
Huang, Yonggang
Franz, Colin K.
Rogers, John A.
Self-powered, light-controlled, bioresorbable platforms for programmed drug delivery
title Self-powered, light-controlled, bioresorbable platforms for programmed drug delivery
title_full Self-powered, light-controlled, bioresorbable platforms for programmed drug delivery
title_fullStr Self-powered, light-controlled, bioresorbable platforms for programmed drug delivery
title_full_unstemmed Self-powered, light-controlled, bioresorbable platforms for programmed drug delivery
title_short Self-powered, light-controlled, bioresorbable platforms for programmed drug delivery
title_sort self-powered, light-controlled, bioresorbable platforms for programmed drug delivery
topic Physical Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10089205/
https://www.ncbi.nlm.nih.gov/pubmed/36888661
http://dx.doi.org/10.1073/pnas.2217734120
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