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Gaussian curvature–driven direction of cell fate toward osteogenesis with triply periodic minimal surface scaffolds

Leaf photosynthesis, coral mineralization, and trabecular bone growth depend on triply periodic minimal surfaces (TPMSs) with hyperboloidal structure on every surface point with varying Gaussian curvatures. However, translation of this structure into tissue-engineered bone grafts is challenging. Thi...

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Autores principales: Yang, Yuhe, Xu, Tianpeng, Bei, Ho-Pan, Zhang, Lei, Tang, Chak-Yin, Zhang, Ming, Xu, Chenjie, Bian, Liming, Yeung, Kelvin Wai-Kwok, Fuh, Jerry Ying Hsi, Zhao, Xin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9564829/
https://www.ncbi.nlm.nih.gov/pubmed/36191194
http://dx.doi.org/10.1073/pnas.2206684119
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author Yang, Yuhe
Xu, Tianpeng
Bei, Ho-Pan
Zhang, Lei
Tang, Chak-Yin
Zhang, Ming
Xu, Chenjie
Bian, Liming
Yeung, Kelvin Wai-Kwok
Fuh, Jerry Ying Hsi
Zhao, Xin
author_facet Yang, Yuhe
Xu, Tianpeng
Bei, Ho-Pan
Zhang, Lei
Tang, Chak-Yin
Zhang, Ming
Xu, Chenjie
Bian, Liming
Yeung, Kelvin Wai-Kwok
Fuh, Jerry Ying Hsi
Zhao, Xin
author_sort Yang, Yuhe
collection PubMed
description Leaf photosynthesis, coral mineralization, and trabecular bone growth depend on triply periodic minimal surfaces (TPMSs) with hyperboloidal structure on every surface point with varying Gaussian curvatures. However, translation of this structure into tissue-engineered bone grafts is challenging. This article reports the design and fabrication of high-resolution three-dimensional TPMS scaffolds embodying biomimicking hyperboloidal topography with different Gaussian curvatures, composed of body inherent β-tricalcium phosphate, by stereolithography-based three-dimensional printing and sintering. The TPMS bone scaffolds show high porosity and interconnectivity. Notably, compared with conventional scaffolds, they can reduce stress concentration, leading to increased mechanical strength. They are also found to support the attachment, proliferation, osteogenic differentiation, and angiogenic paracrine function of human mesenchymal stem cells (hMSCs). Through transcriptomic analysis, we theorize that the hyperboloid structure induces cytoskeleton reorganization of hMSCs, expressing elongated morphology on the convex direction and strengthening the cytoskeletal contraction. The clinical therapeutic efficacy of the TPMS scaffolds assessed by rabbit femur defect and mouse subcutaneous implantation models demonstrate that the TPMS scaffolds augment new bone formation and neovascularization. In comparison with conventional scaffolds, our TPMS scaffolds successfully guide the cell fate toward osteogenesis through cell-level directional curvatures and demonstrate drastic yet quantifiable improvements in bone regeneration.
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spelling pubmed-95648292022-10-15 Gaussian curvature–driven direction of cell fate toward osteogenesis with triply periodic minimal surface scaffolds Yang, Yuhe Xu, Tianpeng Bei, Ho-Pan Zhang, Lei Tang, Chak-Yin Zhang, Ming Xu, Chenjie Bian, Liming Yeung, Kelvin Wai-Kwok Fuh, Jerry Ying Hsi Zhao, Xin Proc Natl Acad Sci U S A Physical Sciences Leaf photosynthesis, coral mineralization, and trabecular bone growth depend on triply periodic minimal surfaces (TPMSs) with hyperboloidal structure on every surface point with varying Gaussian curvatures. However, translation of this structure into tissue-engineered bone grafts is challenging. This article reports the design and fabrication of high-resolution three-dimensional TPMS scaffolds embodying biomimicking hyperboloidal topography with different Gaussian curvatures, composed of body inherent β-tricalcium phosphate, by stereolithography-based three-dimensional printing and sintering. The TPMS bone scaffolds show high porosity and interconnectivity. Notably, compared with conventional scaffolds, they can reduce stress concentration, leading to increased mechanical strength. They are also found to support the attachment, proliferation, osteogenic differentiation, and angiogenic paracrine function of human mesenchymal stem cells (hMSCs). Through transcriptomic analysis, we theorize that the hyperboloid structure induces cytoskeleton reorganization of hMSCs, expressing elongated morphology on the convex direction and strengthening the cytoskeletal contraction. The clinical therapeutic efficacy of the TPMS scaffolds assessed by rabbit femur defect and mouse subcutaneous implantation models demonstrate that the TPMS scaffolds augment new bone formation and neovascularization. In comparison with conventional scaffolds, our TPMS scaffolds successfully guide the cell fate toward osteogenesis through cell-level directional curvatures and demonstrate drastic yet quantifiable improvements in bone regeneration. National Academy of Sciences 2022-10-03 2022-10-11 /pmc/articles/PMC9564829/ /pubmed/36191194 http://dx.doi.org/10.1073/pnas.2206684119 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Physical Sciences
Yang, Yuhe
Xu, Tianpeng
Bei, Ho-Pan
Zhang, Lei
Tang, Chak-Yin
Zhang, Ming
Xu, Chenjie
Bian, Liming
Yeung, Kelvin Wai-Kwok
Fuh, Jerry Ying Hsi
Zhao, Xin
Gaussian curvature–driven direction of cell fate toward osteogenesis with triply periodic minimal surface scaffolds
title Gaussian curvature–driven direction of cell fate toward osteogenesis with triply periodic minimal surface scaffolds
title_full Gaussian curvature–driven direction of cell fate toward osteogenesis with triply periodic minimal surface scaffolds
title_fullStr Gaussian curvature–driven direction of cell fate toward osteogenesis with triply periodic minimal surface scaffolds
title_full_unstemmed Gaussian curvature–driven direction of cell fate toward osteogenesis with triply periodic minimal surface scaffolds
title_short Gaussian curvature–driven direction of cell fate toward osteogenesis with triply periodic minimal surface scaffolds
title_sort gaussian curvature–driven direction of cell fate toward osteogenesis with triply periodic minimal surface scaffolds
topic Physical Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9564829/
https://www.ncbi.nlm.nih.gov/pubmed/36191194
http://dx.doi.org/10.1073/pnas.2206684119
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