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3D printed pore morphology mediates bone marrow stem cell behaviors via RhoA/ROCK2 signaling pathway for accelerating bone regeneration

Bone bionics and structural engineering have sparked a broad interest in optimizing artificial scaffolds for better bone regeneration. However, the mechanism behind scaffold pore morphology-regulated bone regeneration remains unclear, making the structure design of scaffolds for bone repair challeng...

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Autores principales: Lu, Qiji, Diao, Jingjing, Wang, Yingqu, Feng, Jianlang, Zeng, Fansen, Yang, Yan, Kuang, Yudi, Zhao, Naru, Wang, Yingjun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10036893/
https://www.ncbi.nlm.nih.gov/pubmed/36969106
http://dx.doi.org/10.1016/j.bioactmat.2023.02.025
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author Lu, Qiji
Diao, Jingjing
Wang, Yingqu
Feng, Jianlang
Zeng, Fansen
Yang, Yan
Kuang, Yudi
Zhao, Naru
Wang, Yingjun
author_facet Lu, Qiji
Diao, Jingjing
Wang, Yingqu
Feng, Jianlang
Zeng, Fansen
Yang, Yan
Kuang, Yudi
Zhao, Naru
Wang, Yingjun
author_sort Lu, Qiji
collection PubMed
description Bone bionics and structural engineering have sparked a broad interest in optimizing artificial scaffolds for better bone regeneration. However, the mechanism behind scaffold pore morphology-regulated bone regeneration remains unclear, making the structure design of scaffolds for bone repair challenging. To address this issue, we have carefully assessed diverse cell behaviors of bone mesenchymal stem cells (BMSCs) on the β-tricalcium phosphate (β-TCP) scaffolds with three representative pore morphologies (i.e., cross column, diamond, and gyroid pore unit, respectively). Among the scaffolds, BMSCs on the β-TCP scaffold with diamond pore unit (designated as D-scaffold) demonstrated enhanced cytoskeletal forces, elongated nucleus, faster cell mobility, and better osteogenic differentiation potential (for example, the alkaline phosphatase expression level in D-scaffold were 1.5–2 times higher than other groups). RNA-sequencing analysis and signaling pathway intervention revealed that Ras homolog gene family A (RhoA)/Rho-associated kinase-2 (ROCK2) has in-depth participated in the pore morphology-mediated BMSCs behaviors, indicating an important role of mechanical signaling transduction in scaffold-cell interactions. Finally, femoral condyle defect repair results showed that D-scaffold could effectively promote endogenous bone regeneration, of which the osteogenesis rate was 1.2–1.8 times higher than the other groups. Overall, this work provides insights into pore morphology-mediated bone regeneration mechanisms for developing novel bioadaptive scaffold designs.
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spelling pubmed-100368932023-03-25 3D printed pore morphology mediates bone marrow stem cell behaviors via RhoA/ROCK2 signaling pathway for accelerating bone regeneration Lu, Qiji Diao, Jingjing Wang, Yingqu Feng, Jianlang Zeng, Fansen Yang, Yan Kuang, Yudi Zhao, Naru Wang, Yingjun Bioact Mater Article Bone bionics and structural engineering have sparked a broad interest in optimizing artificial scaffolds for better bone regeneration. However, the mechanism behind scaffold pore morphology-regulated bone regeneration remains unclear, making the structure design of scaffolds for bone repair challenging. To address this issue, we have carefully assessed diverse cell behaviors of bone mesenchymal stem cells (BMSCs) on the β-tricalcium phosphate (β-TCP) scaffolds with three representative pore morphologies (i.e., cross column, diamond, and gyroid pore unit, respectively). Among the scaffolds, BMSCs on the β-TCP scaffold with diamond pore unit (designated as D-scaffold) demonstrated enhanced cytoskeletal forces, elongated nucleus, faster cell mobility, and better osteogenic differentiation potential (for example, the alkaline phosphatase expression level in D-scaffold were 1.5–2 times higher than other groups). RNA-sequencing analysis and signaling pathway intervention revealed that Ras homolog gene family A (RhoA)/Rho-associated kinase-2 (ROCK2) has in-depth participated in the pore morphology-mediated BMSCs behaviors, indicating an important role of mechanical signaling transduction in scaffold-cell interactions. Finally, femoral condyle defect repair results showed that D-scaffold could effectively promote endogenous bone regeneration, of which the osteogenesis rate was 1.2–1.8 times higher than the other groups. Overall, this work provides insights into pore morphology-mediated bone regeneration mechanisms for developing novel bioadaptive scaffold designs. KeAi Publishing 2023-03-20 /pmc/articles/PMC10036893/ /pubmed/36969106 http://dx.doi.org/10.1016/j.bioactmat.2023.02.025 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Lu, Qiji
Diao, Jingjing
Wang, Yingqu
Feng, Jianlang
Zeng, Fansen
Yang, Yan
Kuang, Yudi
Zhao, Naru
Wang, Yingjun
3D printed pore morphology mediates bone marrow stem cell behaviors via RhoA/ROCK2 signaling pathway for accelerating bone regeneration
title 3D printed pore morphology mediates bone marrow stem cell behaviors via RhoA/ROCK2 signaling pathway for accelerating bone regeneration
title_full 3D printed pore morphology mediates bone marrow stem cell behaviors via RhoA/ROCK2 signaling pathway for accelerating bone regeneration
title_fullStr 3D printed pore morphology mediates bone marrow stem cell behaviors via RhoA/ROCK2 signaling pathway for accelerating bone regeneration
title_full_unstemmed 3D printed pore morphology mediates bone marrow stem cell behaviors via RhoA/ROCK2 signaling pathway for accelerating bone regeneration
title_short 3D printed pore morphology mediates bone marrow stem cell behaviors via RhoA/ROCK2 signaling pathway for accelerating bone regeneration
title_sort 3d printed pore morphology mediates bone marrow stem cell behaviors via rhoa/rock2 signaling pathway for accelerating bone regeneration
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10036893/
https://www.ncbi.nlm.nih.gov/pubmed/36969106
http://dx.doi.org/10.1016/j.bioactmat.2023.02.025
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