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In Situ Sustained Macrophage-Targeted Nanomicelle–Hydrogel Microspheres for Inhibiting Osteoarthritis

There are still challenges in applying drug nanocarriers for in situ sustained macrophage targeting and regulation, due to the rapid clearance of nanocarriers and burst drug release in vivo. Herein, a nanomicelle–hydrogel microsphere, characterized by its macrophage-targeted nanosized secondary stru...

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Autores principales: Li, XiaoXiao, Li, Xingchen, Yang, Jielai, Du, Yawei, Chen, Liang, Zhao, Gang, Ye, Tingjun, Zhu, Yuan, Xu, Xiangyang, Deng, Lianfu, Cui, Wenguo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10202383/
https://www.ncbi.nlm.nih.gov/pubmed/37223475
http://dx.doi.org/10.34133/research.0131
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author Li, XiaoXiao
Li, Xingchen
Yang, Jielai
Du, Yawei
Chen, Liang
Zhao, Gang
Ye, Tingjun
Zhu, Yuan
Xu, Xiangyang
Deng, Lianfu
Cui, Wenguo
author_facet Li, XiaoXiao
Li, Xingchen
Yang, Jielai
Du, Yawei
Chen, Liang
Zhao, Gang
Ye, Tingjun
Zhu, Yuan
Xu, Xiangyang
Deng, Lianfu
Cui, Wenguo
author_sort Li, XiaoXiao
collection PubMed
description There are still challenges in applying drug nanocarriers for in situ sustained macrophage targeting and regulation, due to the rapid clearance of nanocarriers and burst drug release in vivo. Herein, a nanomicelle–hydrogel microsphere, characterized by its macrophage-targeted nanosized secondary structure that allows it to accurately bind to M1 macrophages through active endocytosis, is employed for in situ sustained macrophage targeting and regulation, and addresses the insufficient osteoarthritis therapeutic efficacy caused by rapid clearance of drug nanocarriers. The 3-dimensional structure of a microsphere can prevent the rapid escape and clearance of a nanomicelle, thus keeping it in joints, while the ligand-guided secondary structure can carry drugs to accurately target and enter M1 macrophages, and release drugs via the transition from hydrophobicity to hydrophilicity of nanomicelles under inflammatory stimulation inside the macrophages. The experiments show that the nanomicelle–hydrogel microsphere can in situ sustainably target and regulate M1 macrophages for more than 14 days in joints, and attenuate local “cytokine storm” by continuous M1 macrophage apoptosis promotion and polarization inhibition. This micro/nano-hydrogel system shows excellent ability to sustainably target and regulate macrophage, realizes the improvement of drug utilization and efficacy inside the macrophage, and thereby can be a potential platform for treating macrophage-related diseases.
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spelling pubmed-102023832023-05-23 In Situ Sustained Macrophage-Targeted Nanomicelle–Hydrogel Microspheres for Inhibiting Osteoarthritis Li, XiaoXiao Li, Xingchen Yang, Jielai Du, Yawei Chen, Liang Zhao, Gang Ye, Tingjun Zhu, Yuan Xu, Xiangyang Deng, Lianfu Cui, Wenguo Research (Wash D C) Research Article There are still challenges in applying drug nanocarriers for in situ sustained macrophage targeting and regulation, due to the rapid clearance of nanocarriers and burst drug release in vivo. Herein, a nanomicelle–hydrogel microsphere, characterized by its macrophage-targeted nanosized secondary structure that allows it to accurately bind to M1 macrophages through active endocytosis, is employed for in situ sustained macrophage targeting and regulation, and addresses the insufficient osteoarthritis therapeutic efficacy caused by rapid clearance of drug nanocarriers. The 3-dimensional structure of a microsphere can prevent the rapid escape and clearance of a nanomicelle, thus keeping it in joints, while the ligand-guided secondary structure can carry drugs to accurately target and enter M1 macrophages, and release drugs via the transition from hydrophobicity to hydrophilicity of nanomicelles under inflammatory stimulation inside the macrophages. The experiments show that the nanomicelle–hydrogel microsphere can in situ sustainably target and regulate M1 macrophages for more than 14 days in joints, and attenuate local “cytokine storm” by continuous M1 macrophage apoptosis promotion and polarization inhibition. This micro/nano-hydrogel system shows excellent ability to sustainably target and regulate macrophage, realizes the improvement of drug utilization and efficacy inside the macrophage, and thereby can be a potential platform for treating macrophage-related diseases. AAAS 2023-05-02 /pmc/articles/PMC10202383/ /pubmed/37223475 http://dx.doi.org/10.34133/research.0131 Text en Copyright © 2023 XiaoXiao Li et al. https://creativecommons.org/licenses/by/4.0/Exclusive licensee Science and Technology Review Publishing House. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution License 4.0 (CC BY 4.0) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Li, XiaoXiao
Li, Xingchen
Yang, Jielai
Du, Yawei
Chen, Liang
Zhao, Gang
Ye, Tingjun
Zhu, Yuan
Xu, Xiangyang
Deng, Lianfu
Cui, Wenguo
In Situ Sustained Macrophage-Targeted Nanomicelle–Hydrogel Microspheres for Inhibiting Osteoarthritis
title In Situ Sustained Macrophage-Targeted Nanomicelle–Hydrogel Microspheres for Inhibiting Osteoarthritis
title_full In Situ Sustained Macrophage-Targeted Nanomicelle–Hydrogel Microspheres for Inhibiting Osteoarthritis
title_fullStr In Situ Sustained Macrophage-Targeted Nanomicelle–Hydrogel Microspheres for Inhibiting Osteoarthritis
title_full_unstemmed In Situ Sustained Macrophage-Targeted Nanomicelle–Hydrogel Microspheres for Inhibiting Osteoarthritis
title_short In Situ Sustained Macrophage-Targeted Nanomicelle–Hydrogel Microspheres for Inhibiting Osteoarthritis
title_sort in situ sustained macrophage-targeted nanomicelle–hydrogel microspheres for inhibiting osteoarthritis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10202383/
https://www.ncbi.nlm.nih.gov/pubmed/37223475
http://dx.doi.org/10.34133/research.0131
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