Cargando…

A novel decellularized matrix of Wnt signaling-activated osteocytes accelerates the repair of critical-sized parietal bone defects with osteoclastogenesis, angiogenesis, and neurogenesis

Cell source is the key to decellularized matrix (DM) strategy. This study compared 3 cell types, osteocytes with/without dominant active Wnt/β-catenin signaling (daCO and WTO) and bone marrow stromal cells (BMSCs) for their DMs in bone repair. Decellularization removes all organelles and >95% DNA...

Descripción completa

Detalles Bibliográficos
Autores principales: Wang, Xiaofang, Ma, Yufei, Chen, Jie, Liu, Yujiao, Liu, Guangliang, Wang, Pengtao, Wang, Bo, Taketo, Makoto M., Bellido, Teresita, Tu, Xiaolin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9411072/
https://www.ncbi.nlm.nih.gov/pubmed/36093329
http://dx.doi.org/10.1016/j.bioactmat.2022.07.017
_version_ 1784775238243844096
author Wang, Xiaofang
Ma, Yufei
Chen, Jie
Liu, Yujiao
Liu, Guangliang
Wang, Pengtao
Wang, Bo
Taketo, Makoto M.
Bellido, Teresita
Tu, Xiaolin
author_facet Wang, Xiaofang
Ma, Yufei
Chen, Jie
Liu, Yujiao
Liu, Guangliang
Wang, Pengtao
Wang, Bo
Taketo, Makoto M.
Bellido, Teresita
Tu, Xiaolin
author_sort Wang, Xiaofang
collection PubMed
description Cell source is the key to decellularized matrix (DM) strategy. This study compared 3 cell types, osteocytes with/without dominant active Wnt/β-catenin signaling (daCO and WTO) and bone marrow stromal cells (BMSCs) for their DMs in bone repair. Decellularization removes all organelles and >95% DNA, and retained >74% collagen and >71% GAG, maintains the integrity of cell basement membrane with dense boundaries showing oval and honeycomb structure in osteocytic DM and smooth but irregular shape in the BMSC-DM. DM produced higher cell survival rate (90%) and higher proliferative activity. In vitro, daCO-DM induces more and longer stress fibers in BMSCs, conducive to cell adhesion, spreading, and osteogenic differentiation. 8-wk after implantation of the critical-sized parietal bone defect model, daCO-DM formed tight structures, composed of a large number of densely-arranged type-I collagen under polarized light microscope, which is similar to and integrated with host bone. BV/TV (>54%) was 1.5, 2.9, and 3.5 times of WTO-DM, BMSC-DM, and none-DM groups, and N.Ob/T.Ar (3.2 × 10(2)/mm(2)) was 1.7, 2.9, and 3.3 times. At 4-wk, daCO-DM induced osteoclastogenesis, 2.3 times higher than WTO-DM; but BMSC-DM or none-DM didn't. daCO-DM increased the expression of RANKL and MCSF, Vegfa and Angpt1, and Ngf in BMSCs, which contributes to osteoclastogenesis, angiogenesis, and neurogenesis, respectively. daCO-DM promoted H-type vessel formation and nerve markers β3-tubulin and NeuN expression. Conclusion: daCO-DM produces metabolic and neurovascularized organoid bone to accelerate the repair of bone defects. These features are expected to achieve the effect of autologous bone transplantation, suitable for transformation application.
format Online
Article
Text
id pubmed-9411072
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher KeAi Publishing
record_format MEDLINE/PubMed
spelling pubmed-94110722022-09-08 A novel decellularized matrix of Wnt signaling-activated osteocytes accelerates the repair of critical-sized parietal bone defects with osteoclastogenesis, angiogenesis, and neurogenesis Wang, Xiaofang Ma, Yufei Chen, Jie Liu, Yujiao Liu, Guangliang Wang, Pengtao Wang, Bo Taketo, Makoto M. Bellido, Teresita Tu, Xiaolin Bioact Mater Article Cell source is the key to decellularized matrix (DM) strategy. This study compared 3 cell types, osteocytes with/without dominant active Wnt/β-catenin signaling (daCO and WTO) and bone marrow stromal cells (BMSCs) for their DMs in bone repair. Decellularization removes all organelles and >95% DNA, and retained >74% collagen and >71% GAG, maintains the integrity of cell basement membrane with dense boundaries showing oval and honeycomb structure in osteocytic DM and smooth but irregular shape in the BMSC-DM. DM produced higher cell survival rate (90%) and higher proliferative activity. In vitro, daCO-DM induces more and longer stress fibers in BMSCs, conducive to cell adhesion, spreading, and osteogenic differentiation. 8-wk after implantation of the critical-sized parietal bone defect model, daCO-DM formed tight structures, composed of a large number of densely-arranged type-I collagen under polarized light microscope, which is similar to and integrated with host bone. BV/TV (>54%) was 1.5, 2.9, and 3.5 times of WTO-DM, BMSC-DM, and none-DM groups, and N.Ob/T.Ar (3.2 × 10(2)/mm(2)) was 1.7, 2.9, and 3.3 times. At 4-wk, daCO-DM induced osteoclastogenesis, 2.3 times higher than WTO-DM; but BMSC-DM or none-DM didn't. daCO-DM increased the expression of RANKL and MCSF, Vegfa and Angpt1, and Ngf in BMSCs, which contributes to osteoclastogenesis, angiogenesis, and neurogenesis, respectively. daCO-DM promoted H-type vessel formation and nerve markers β3-tubulin and NeuN expression. Conclusion: daCO-DM produces metabolic and neurovascularized organoid bone to accelerate the repair of bone defects. These features are expected to achieve the effect of autologous bone transplantation, suitable for transformation application. KeAi Publishing 2022-08-16 /pmc/articles/PMC9411072/ /pubmed/36093329 http://dx.doi.org/10.1016/j.bioactmat.2022.07.017 Text en © 2022 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
Wang, Xiaofang
Ma, Yufei
Chen, Jie
Liu, Yujiao
Liu, Guangliang
Wang, Pengtao
Wang, Bo
Taketo, Makoto M.
Bellido, Teresita
Tu, Xiaolin
A novel decellularized matrix of Wnt signaling-activated osteocytes accelerates the repair of critical-sized parietal bone defects with osteoclastogenesis, angiogenesis, and neurogenesis
title A novel decellularized matrix of Wnt signaling-activated osteocytes accelerates the repair of critical-sized parietal bone defects with osteoclastogenesis, angiogenesis, and neurogenesis
title_full A novel decellularized matrix of Wnt signaling-activated osteocytes accelerates the repair of critical-sized parietal bone defects with osteoclastogenesis, angiogenesis, and neurogenesis
title_fullStr A novel decellularized matrix of Wnt signaling-activated osteocytes accelerates the repair of critical-sized parietal bone defects with osteoclastogenesis, angiogenesis, and neurogenesis
title_full_unstemmed A novel decellularized matrix of Wnt signaling-activated osteocytes accelerates the repair of critical-sized parietal bone defects with osteoclastogenesis, angiogenesis, and neurogenesis
title_short A novel decellularized matrix of Wnt signaling-activated osteocytes accelerates the repair of critical-sized parietal bone defects with osteoclastogenesis, angiogenesis, and neurogenesis
title_sort novel decellularized matrix of wnt signaling-activated osteocytes accelerates the repair of critical-sized parietal bone defects with osteoclastogenesis, angiogenesis, and neurogenesis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9411072/
https://www.ncbi.nlm.nih.gov/pubmed/36093329
http://dx.doi.org/10.1016/j.bioactmat.2022.07.017
work_keys_str_mv AT wangxiaofang anoveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT mayufei anoveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT chenjie anoveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT liuyujiao anoveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT liuguangliang anoveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT wangpengtao anoveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT wangbo anoveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT taketomakotom anoveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT bellidoteresita anoveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT tuxiaolin anoveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT wangxiaofang noveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT mayufei noveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT chenjie noveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT liuyujiao noveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT liuguangliang noveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT wangpengtao noveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT wangbo noveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT taketomakotom noveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT bellidoteresita noveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis
AT tuxiaolin noveldecellularizedmatrixofwntsignalingactivatedosteocytesacceleratestherepairofcriticalsizedparietalbonedefectswithosteoclastogenesisangiogenesisandneurogenesis