Cargando…

Bioactive Scaffold Fabricated by 3D Printing for Enhancing Osteoporotic Bone Regeneration

We develop a poly (lactic-co-glycolic acid)/β-calcium phosphate (PLGA/TCP)-based scaffold through a three-dimensional (3D) printing technique incorporating icaritin (ICT), a unique phytomolecule, and secretome derived from human fetal mesenchymal stem cells (HFS), to provide mechanical support and b...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Xiaoting, Wang, Xinluan, Lee, Yuk-wai, Feng, Lu, Wang, Bin, Pan, Qi, Meng, Xiangbo, Cao, Huijuan, Li, Linlong, Wang, Haixing, Bai, Shanshan, Kong, Lingchi, Chow, Dick Ho Kiu, Qin, Ling, Cui, Liao, Lin, Sien, Li, Gang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9598556/
https://www.ncbi.nlm.nih.gov/pubmed/36290493
http://dx.doi.org/10.3390/bioengineering9100525
_version_ 1784816363113545728
author Zhang, Xiaoting
Wang, Xinluan
Lee, Yuk-wai
Feng, Lu
Wang, Bin
Pan, Qi
Meng, Xiangbo
Cao, Huijuan
Li, Linlong
Wang, Haixing
Bai, Shanshan
Kong, Lingchi
Chow, Dick Ho Kiu
Qin, Ling
Cui, Liao
Lin, Sien
Li, Gang
author_facet Zhang, Xiaoting
Wang, Xinluan
Lee, Yuk-wai
Feng, Lu
Wang, Bin
Pan, Qi
Meng, Xiangbo
Cao, Huijuan
Li, Linlong
Wang, Haixing
Bai, Shanshan
Kong, Lingchi
Chow, Dick Ho Kiu
Qin, Ling
Cui, Liao
Lin, Sien
Li, Gang
author_sort Zhang, Xiaoting
collection PubMed
description We develop a poly (lactic-co-glycolic acid)/β-calcium phosphate (PLGA/TCP)-based scaffold through a three-dimensional (3D) printing technique incorporating icaritin (ICT), a unique phytomolecule, and secretome derived from human fetal mesenchymal stem cells (HFS), to provide mechanical support and biological cues for stimulating bone defect healing. With the sustained release of ICT and HFS from the composite scaffold, the cell-free scaffold efficiently facilitates the migration of MSCs and promotes bone regeneration at the femoral defect site in the ovariectomy (OVX)-induced osteoporotic rat model. Furthermore, mechanism study results indicate that the combination of ICT and HFS additively activates the Integrin–FAK (focal adhesion kinase)–ERK1/2 (extracellular signal-regulated kinase 1/2)–Runx2 (Runt-related transcription factor 2) axis, which could be linked to the beneficial recruitment of MSCs to the implant and subsequent osteogenesis enhancement. Collectively, the PLGA/TCP/ICT/HFS (P/T/I/S) bioactive scaffold is a promising biomaterial for repairing osteoporotic bone defects, which may have immense implications for their translation to clinical practice.
format Online
Article
Text
id pubmed-9598556
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-95985562022-10-27 Bioactive Scaffold Fabricated by 3D Printing for Enhancing Osteoporotic Bone Regeneration Zhang, Xiaoting Wang, Xinluan Lee, Yuk-wai Feng, Lu Wang, Bin Pan, Qi Meng, Xiangbo Cao, Huijuan Li, Linlong Wang, Haixing Bai, Shanshan Kong, Lingchi Chow, Dick Ho Kiu Qin, Ling Cui, Liao Lin, Sien Li, Gang Bioengineering (Basel) Article We develop a poly (lactic-co-glycolic acid)/β-calcium phosphate (PLGA/TCP)-based scaffold through a three-dimensional (3D) printing technique incorporating icaritin (ICT), a unique phytomolecule, and secretome derived from human fetal mesenchymal stem cells (HFS), to provide mechanical support and biological cues for stimulating bone defect healing. With the sustained release of ICT and HFS from the composite scaffold, the cell-free scaffold efficiently facilitates the migration of MSCs and promotes bone regeneration at the femoral defect site in the ovariectomy (OVX)-induced osteoporotic rat model. Furthermore, mechanism study results indicate that the combination of ICT and HFS additively activates the Integrin–FAK (focal adhesion kinase)–ERK1/2 (extracellular signal-regulated kinase 1/2)–Runx2 (Runt-related transcription factor 2) axis, which could be linked to the beneficial recruitment of MSCs to the implant and subsequent osteogenesis enhancement. Collectively, the PLGA/TCP/ICT/HFS (P/T/I/S) bioactive scaffold is a promising biomaterial for repairing osteoporotic bone defects, which may have immense implications for their translation to clinical practice. MDPI 2022-10-05 /pmc/articles/PMC9598556/ /pubmed/36290493 http://dx.doi.org/10.3390/bioengineering9100525 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhang, Xiaoting
Wang, Xinluan
Lee, Yuk-wai
Feng, Lu
Wang, Bin
Pan, Qi
Meng, Xiangbo
Cao, Huijuan
Li, Linlong
Wang, Haixing
Bai, Shanshan
Kong, Lingchi
Chow, Dick Ho Kiu
Qin, Ling
Cui, Liao
Lin, Sien
Li, Gang
Bioactive Scaffold Fabricated by 3D Printing for Enhancing Osteoporotic Bone Regeneration
title Bioactive Scaffold Fabricated by 3D Printing for Enhancing Osteoporotic Bone Regeneration
title_full Bioactive Scaffold Fabricated by 3D Printing for Enhancing Osteoporotic Bone Regeneration
title_fullStr Bioactive Scaffold Fabricated by 3D Printing for Enhancing Osteoporotic Bone Regeneration
title_full_unstemmed Bioactive Scaffold Fabricated by 3D Printing for Enhancing Osteoporotic Bone Regeneration
title_short Bioactive Scaffold Fabricated by 3D Printing for Enhancing Osteoporotic Bone Regeneration
title_sort bioactive scaffold fabricated by 3d printing for enhancing osteoporotic bone regeneration
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9598556/
https://www.ncbi.nlm.nih.gov/pubmed/36290493
http://dx.doi.org/10.3390/bioengineering9100525
work_keys_str_mv AT zhangxiaoting bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT wangxinluan bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT leeyukwai bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT fenglu bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT wangbin bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT panqi bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT mengxiangbo bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT caohuijuan bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT lilinlong bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT wanghaixing bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT baishanshan bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT konglingchi bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT chowdickhokiu bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT qinling bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT cuiliao bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT linsien bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration
AT ligang bioactivescaffoldfabricatedby3dprintingforenhancingosteoporoticboneregeneration