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Liver‐Inspired Polyetherketoneketone Scaffolds Simulate Regenerative Signals and Mobilize Anti‐Inflammatory Reserves to Reprogram Macrophage Metabolism for Boosted Osteoporotic Osseointegration

Tissue regeneration is regulated by morphological clues of implants in bone defect repair. Engineered morphology can boost regenerative biocascades that conquer challenges such as material bioinertness and pathological microenvironments. Herein, a correlation between the liver extracellular skeleton...

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Autores principales: Gu, Hao, Zhu, Yuhui, Yang, Jiawei, Jiang, Ruixue, Deng, Yuwei, Li, Anshuo, Fang, Yingjing, Wu, Qianju, Tu, Honghuan, Chang, Haishuang, Wen, Jin, Jiang, Xinquan
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/PMC10477864/
https://www.ncbi.nlm.nih.gov/pubmed/37400369
http://dx.doi.org/10.1002/advs.202302136
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author Gu, Hao
Zhu, Yuhui
Yang, Jiawei
Jiang, Ruixue
Deng, Yuwei
Li, Anshuo
Fang, Yingjing
Wu, Qianju
Tu, Honghuan
Chang, Haishuang
Wen, Jin
Jiang, Xinquan
author_facet Gu, Hao
Zhu, Yuhui
Yang, Jiawei
Jiang, Ruixue
Deng, Yuwei
Li, Anshuo
Fang, Yingjing
Wu, Qianju
Tu, Honghuan
Chang, Haishuang
Wen, Jin
Jiang, Xinquan
author_sort Gu, Hao
collection PubMed
description Tissue regeneration is regulated by morphological clues of implants in bone defect repair. Engineered morphology can boost regenerative biocascades that conquer challenges such as material bioinertness and pathological microenvironments. Herein, a correlation between the liver extracellular skeleton morphology and the regenerative signaling, namely hepatocyte growth factor receptor (MET), is found to explain the mystery of rapid liver regeneration. Inspired by this unique structure, a biomimetic morphology is prepared on polyetherketoneketone (PEKK) via femtosecond laser etching and sulfonation. The morphology reproduces MET signaling in macrophages, causing positive immunoregulation and optimized osteogenesis. Moreover, the morphological clue activates an anti‐inflammatory reserve (arginase‐2) to translocate retrogradely from mitochondria to the cytoplasm due to the difference in spatial binding of heat shock protein 70. This translocation enhances oxidative respiration and complex II activity, reprogramming the metabolism of energy and arginine. The importance of MET signaling and arginase‐2 in the anti‐inflammatory repair of biomimetic scaffolds is also verified via chemical inhibition and gene knockout. Altogether, this study not only provides a novel biomimetic scaffold for osteoporotic bone defect repair that can simulate regenerative signals, but also reveals the significance and feasibility of strategies to mobilize anti‐inflammatory reserves in bone regeneration.
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spelling pubmed-104778642023-09-06 Liver‐Inspired Polyetherketoneketone Scaffolds Simulate Regenerative Signals and Mobilize Anti‐Inflammatory Reserves to Reprogram Macrophage Metabolism for Boosted Osteoporotic Osseointegration Gu, Hao Zhu, Yuhui Yang, Jiawei Jiang, Ruixue Deng, Yuwei Li, Anshuo Fang, Yingjing Wu, Qianju Tu, Honghuan Chang, Haishuang Wen, Jin Jiang, Xinquan Adv Sci (Weinh) Research Articles Tissue regeneration is regulated by morphological clues of implants in bone defect repair. Engineered morphology can boost regenerative biocascades that conquer challenges such as material bioinertness and pathological microenvironments. Herein, a correlation between the liver extracellular skeleton morphology and the regenerative signaling, namely hepatocyte growth factor receptor (MET), is found to explain the mystery of rapid liver regeneration. Inspired by this unique structure, a biomimetic morphology is prepared on polyetherketoneketone (PEKK) via femtosecond laser etching and sulfonation. The morphology reproduces MET signaling in macrophages, causing positive immunoregulation and optimized osteogenesis. Moreover, the morphological clue activates an anti‐inflammatory reserve (arginase‐2) to translocate retrogradely from mitochondria to the cytoplasm due to the difference in spatial binding of heat shock protein 70. This translocation enhances oxidative respiration and complex II activity, reprogramming the metabolism of energy and arginine. The importance of MET signaling and arginase‐2 in the anti‐inflammatory repair of biomimetic scaffolds is also verified via chemical inhibition and gene knockout. Altogether, this study not only provides a novel biomimetic scaffold for osteoporotic bone defect repair that can simulate regenerative signals, but also reveals the significance and feasibility of strategies to mobilize anti‐inflammatory reserves in bone regeneration. John Wiley and Sons Inc. 2023-07-03 /pmc/articles/PMC10477864/ /pubmed/37400369 http://dx.doi.org/10.1002/advs.202302136 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
Gu, Hao
Zhu, Yuhui
Yang, Jiawei
Jiang, Ruixue
Deng, Yuwei
Li, Anshuo
Fang, Yingjing
Wu, Qianju
Tu, Honghuan
Chang, Haishuang
Wen, Jin
Jiang, Xinquan
Liver‐Inspired Polyetherketoneketone Scaffolds Simulate Regenerative Signals and Mobilize Anti‐Inflammatory Reserves to Reprogram Macrophage Metabolism for Boosted Osteoporotic Osseointegration
title Liver‐Inspired Polyetherketoneketone Scaffolds Simulate Regenerative Signals and Mobilize Anti‐Inflammatory Reserves to Reprogram Macrophage Metabolism for Boosted Osteoporotic Osseointegration
title_full Liver‐Inspired Polyetherketoneketone Scaffolds Simulate Regenerative Signals and Mobilize Anti‐Inflammatory Reserves to Reprogram Macrophage Metabolism for Boosted Osteoporotic Osseointegration
title_fullStr Liver‐Inspired Polyetherketoneketone Scaffolds Simulate Regenerative Signals and Mobilize Anti‐Inflammatory Reserves to Reprogram Macrophage Metabolism for Boosted Osteoporotic Osseointegration
title_full_unstemmed Liver‐Inspired Polyetherketoneketone Scaffolds Simulate Regenerative Signals and Mobilize Anti‐Inflammatory Reserves to Reprogram Macrophage Metabolism for Boosted Osteoporotic Osseointegration
title_short Liver‐Inspired Polyetherketoneketone Scaffolds Simulate Regenerative Signals and Mobilize Anti‐Inflammatory Reserves to Reprogram Macrophage Metabolism for Boosted Osteoporotic Osseointegration
title_sort liver‐inspired polyetherketoneketone scaffolds simulate regenerative signals and mobilize anti‐inflammatory reserves to reprogram macrophage metabolism for boosted osteoporotic osseointegration
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10477864/
https://www.ncbi.nlm.nih.gov/pubmed/37400369
http://dx.doi.org/10.1002/advs.202302136
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