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Hydrogel-Based Stimuli-Responsive Micromotors for Biomedicine

The rapid development of medical micromotors draws a beautiful blueprint for the noninvasive or minimally invasive diagnosis and therapy. By combining stimuli-sensitive hydrogel materials, micromotors are bestowed with new characteristics such as stimuli-responsive shape transformation/morphing, exc...

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Autores principales: Zhou, Huaijuan, Dong, Guozhao, Gao, Ge, Du, Ran, Tang, Xiaoying, Ma, Yining, Li, Jinhua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9579945/
https://www.ncbi.nlm.nih.gov/pubmed/36285306
http://dx.doi.org/10.34133/2022/9852853
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author Zhou, Huaijuan
Dong, Guozhao
Gao, Ge
Du, Ran
Tang, Xiaoying
Ma, Yining
Li, Jinhua
author_facet Zhou, Huaijuan
Dong, Guozhao
Gao, Ge
Du, Ran
Tang, Xiaoying
Ma, Yining
Li, Jinhua
author_sort Zhou, Huaijuan
collection PubMed
description The rapid development of medical micromotors draws a beautiful blueprint for the noninvasive or minimally invasive diagnosis and therapy. By combining stimuli-sensitive hydrogel materials, micromotors are bestowed with new characteristics such as stimuli-responsive shape transformation/morphing, excellent biocompatibility and biodegradability, and drug loading ability. Actuated by chemical fuels or external fields (e.g., magnetic field, ultrasound, light, and electric field), hydrogel-based stimuli-responsive (HBSR) micromotors can be utilized to load therapeutic agents into the hydrogel networks or directly grip the target cargos (e.g., drug-loaded particles, cells, and thrombus), transport them to sites of interest (e.g., tumor area and diseased tissues), and unload the cargos or execute a specific task (e.g., cell capture, targeted sampling, and removal of blood clots) in response to a stimulus (e.g., change of temperature, pH, ion strength, and chemicals) in the physiological environment. The high flexibility, adaptive capacity, and shape morphing property enable the HBSR micromotors to complete specific medical tasks in complex physiological scenarios, especially in confined, hard-to-reach tissues, and vessels of the body. Herein, this review summarizes the current progress in hydrogel-based medical micromotors with stimuli responsiveness. The thermo-responsive, photothermal-responsive, magnetocaloric-responsive, pH-responsive, ionic-strength-responsive, and chemoresponsive micromotors are discussed in detail. Finally, current challenges and future perspectives for the development of HBSR micromotors in the biomedical field are discussed.
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spelling pubmed-95799452022-10-24 Hydrogel-Based Stimuli-Responsive Micromotors for Biomedicine Zhou, Huaijuan Dong, Guozhao Gao, Ge Du, Ran Tang, Xiaoying Ma, Yining Li, Jinhua Cyborg Bionic Syst Review Article The rapid development of medical micromotors draws a beautiful blueprint for the noninvasive or minimally invasive diagnosis and therapy. By combining stimuli-sensitive hydrogel materials, micromotors are bestowed with new characteristics such as stimuli-responsive shape transformation/morphing, excellent biocompatibility and biodegradability, and drug loading ability. Actuated by chemical fuels or external fields (e.g., magnetic field, ultrasound, light, and electric field), hydrogel-based stimuli-responsive (HBSR) micromotors can be utilized to load therapeutic agents into the hydrogel networks or directly grip the target cargos (e.g., drug-loaded particles, cells, and thrombus), transport them to sites of interest (e.g., tumor area and diseased tissues), and unload the cargos or execute a specific task (e.g., cell capture, targeted sampling, and removal of blood clots) in response to a stimulus (e.g., change of temperature, pH, ion strength, and chemicals) in the physiological environment. The high flexibility, adaptive capacity, and shape morphing property enable the HBSR micromotors to complete specific medical tasks in complex physiological scenarios, especially in confined, hard-to-reach tissues, and vessels of the body. Herein, this review summarizes the current progress in hydrogel-based medical micromotors with stimuli responsiveness. The thermo-responsive, photothermal-responsive, magnetocaloric-responsive, pH-responsive, ionic-strength-responsive, and chemoresponsive micromotors are discussed in detail. Finally, current challenges and future perspectives for the development of HBSR micromotors in the biomedical field are discussed. AAAS 2022-10-07 /pmc/articles/PMC9579945/ /pubmed/36285306 http://dx.doi.org/10.34133/2022/9852853 Text en Copyright © 2022 Huaijuan Zhou et al. https://creativecommons.org/licenses/by/4.0/Exclusive Licensee Beijing Institute of Technology Press. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Review Article
Zhou, Huaijuan
Dong, Guozhao
Gao, Ge
Du, Ran
Tang, Xiaoying
Ma, Yining
Li, Jinhua
Hydrogel-Based Stimuli-Responsive Micromotors for Biomedicine
title Hydrogel-Based Stimuli-Responsive Micromotors for Biomedicine
title_full Hydrogel-Based Stimuli-Responsive Micromotors for Biomedicine
title_fullStr Hydrogel-Based Stimuli-Responsive Micromotors for Biomedicine
title_full_unstemmed Hydrogel-Based Stimuli-Responsive Micromotors for Biomedicine
title_short Hydrogel-Based Stimuli-Responsive Micromotors for Biomedicine
title_sort hydrogel-based stimuli-responsive micromotors for biomedicine
topic Review Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9579945/
https://www.ncbi.nlm.nih.gov/pubmed/36285306
http://dx.doi.org/10.34133/2022/9852853
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