Cargando…

3D printed PCLA scaffold with nano‐hydroxyapatite coating doped green tea EGCG promotes bone growth and inhibits multidrug‐resistant bacteria colonization

OBJECTIVES: 3D‐printing scaffold with specifically customized and biomimetic structures gained significant recent attention in tissue engineering for the regeneration of damaged bone tissues. However, constructed scaffolds that simultaneously promote bone regeneration and in situ inhibit bacterial p...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Xiangchun, He, Jian, Qiao, Liang, Wang, Ziqi, Zheng, Qinqin, Xiong, Chengdong, Yang, Hui, Li, Kainan, Lu, Chengyin, Li, Sanqiang, Chen, Hongping, Hu, Xulin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9528762/
https://www.ncbi.nlm.nih.gov/pubmed/35791492
http://dx.doi.org/10.1111/cpr.13289
_version_ 1784801362305875968
author Zhang, Xiangchun
He, Jian
Qiao, Liang
Wang, Ziqi
Zheng, Qinqin
Xiong, Chengdong
Yang, Hui
Li, Kainan
Lu, Chengyin
Li, Sanqiang
Chen, Hongping
Hu, Xulin
author_facet Zhang, Xiangchun
He, Jian
Qiao, Liang
Wang, Ziqi
Zheng, Qinqin
Xiong, Chengdong
Yang, Hui
Li, Kainan
Lu, Chengyin
Li, Sanqiang
Chen, Hongping
Hu, Xulin
author_sort Zhang, Xiangchun
collection PubMed
description OBJECTIVES: 3D‐printing scaffold with specifically customized and biomimetic structures gained significant recent attention in tissue engineering for the regeneration of damaged bone tissues. However, constructed scaffolds that simultaneously promote bone regeneration and in situ inhibit bacterial proliferation remains a great challenge. This study aimed to design a bone repair scaffold with in situ antibacterial functions. MATERIALS AND METHODS: Herein, a general strategy is developed by using epigallocatechin‐3‐gallate (EGCG), a major green tea polyphenol, firmly anchored in the nano‐hydroxyapatite (HA) and coating the 3D printed polymerization of caprolactone and lactide (PCLA) scaffold. Then, we evaluated the stability, mechanical properties, water absorption, biocompatibility, and in vitro antibacterial and osteocyte inductive ability of the scaffolds. RESULTS: The coated scaffold exhibit excellent activity in simultaneously stimulating osteogenic differentiation and in situ resisting methicillin‐resistant Staphylococcus aureus colonization in a bone repair environment without antibiotics. Meanwhile, the prepared 3D scaffold has certain mechanical properties (39.3 ± 3.2 MPa), and the applied coating provides the scaffold with remarkable cell adhesion and osteogenic conductivity. CONCLUSION: This study demonstrates that EGCG self‐assembled HA coating on PCLA surface could effectively enhance the scaffold's water absorption, osteogenic induction, and antibacterial properties in situ. It provides a new strategy to construct superior performance 3D printed scaffold to promote bone tissue regeneration and combat postoperative infection in situ.
format Online
Article
Text
id pubmed-9528762
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-95287622022-10-06 3D printed PCLA scaffold with nano‐hydroxyapatite coating doped green tea EGCG promotes bone growth and inhibits multidrug‐resistant bacteria colonization Zhang, Xiangchun He, Jian Qiao, Liang Wang, Ziqi Zheng, Qinqin Xiong, Chengdong Yang, Hui Li, Kainan Lu, Chengyin Li, Sanqiang Chen, Hongping Hu, Xulin Cell Prolif Original Articles OBJECTIVES: 3D‐printing scaffold with specifically customized and biomimetic structures gained significant recent attention in tissue engineering for the regeneration of damaged bone tissues. However, constructed scaffolds that simultaneously promote bone regeneration and in situ inhibit bacterial proliferation remains a great challenge. This study aimed to design a bone repair scaffold with in situ antibacterial functions. MATERIALS AND METHODS: Herein, a general strategy is developed by using epigallocatechin‐3‐gallate (EGCG), a major green tea polyphenol, firmly anchored in the nano‐hydroxyapatite (HA) and coating the 3D printed polymerization of caprolactone and lactide (PCLA) scaffold. Then, we evaluated the stability, mechanical properties, water absorption, biocompatibility, and in vitro antibacterial and osteocyte inductive ability of the scaffolds. RESULTS: The coated scaffold exhibit excellent activity in simultaneously stimulating osteogenic differentiation and in situ resisting methicillin‐resistant Staphylococcus aureus colonization in a bone repair environment without antibiotics. Meanwhile, the prepared 3D scaffold has certain mechanical properties (39.3 ± 3.2 MPa), and the applied coating provides the scaffold with remarkable cell adhesion and osteogenic conductivity. CONCLUSION: This study demonstrates that EGCG self‐assembled HA coating on PCLA surface could effectively enhance the scaffold's water absorption, osteogenic induction, and antibacterial properties in situ. It provides a new strategy to construct superior performance 3D printed scaffold to promote bone tissue regeneration and combat postoperative infection in situ. John Wiley and Sons Inc. 2022-07-05 /pmc/articles/PMC9528762/ /pubmed/35791492 http://dx.doi.org/10.1111/cpr.13289 Text en © 2022 The Authors. Cell Proliferation published by Beijing Institute for Stem Cell and Regenerative Medicine and John Wiley & Sons Ltd. 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 Original Articles
Zhang, Xiangchun
He, Jian
Qiao, Liang
Wang, Ziqi
Zheng, Qinqin
Xiong, Chengdong
Yang, Hui
Li, Kainan
Lu, Chengyin
Li, Sanqiang
Chen, Hongping
Hu, Xulin
3D printed PCLA scaffold with nano‐hydroxyapatite coating doped green tea EGCG promotes bone growth and inhibits multidrug‐resistant bacteria colonization
title 3D printed PCLA scaffold with nano‐hydroxyapatite coating doped green tea EGCG promotes bone growth and inhibits multidrug‐resistant bacteria colonization
title_full 3D printed PCLA scaffold with nano‐hydroxyapatite coating doped green tea EGCG promotes bone growth and inhibits multidrug‐resistant bacteria colonization
title_fullStr 3D printed PCLA scaffold with nano‐hydroxyapatite coating doped green tea EGCG promotes bone growth and inhibits multidrug‐resistant bacteria colonization
title_full_unstemmed 3D printed PCLA scaffold with nano‐hydroxyapatite coating doped green tea EGCG promotes bone growth and inhibits multidrug‐resistant bacteria colonization
title_short 3D printed PCLA scaffold with nano‐hydroxyapatite coating doped green tea EGCG promotes bone growth and inhibits multidrug‐resistant bacteria colonization
title_sort 3d printed pcla scaffold with nano‐hydroxyapatite coating doped green tea egcg promotes bone growth and inhibits multidrug‐resistant bacteria colonization
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9528762/
https://www.ncbi.nlm.nih.gov/pubmed/35791492
http://dx.doi.org/10.1111/cpr.13289
work_keys_str_mv AT zhangxiangchun 3dprintedpclascaffoldwithnanohydroxyapatitecoatingdopedgreenteaegcgpromotesbonegrowthandinhibitsmultidrugresistantbacteriacolonization
AT hejian 3dprintedpclascaffoldwithnanohydroxyapatitecoatingdopedgreenteaegcgpromotesbonegrowthandinhibitsmultidrugresistantbacteriacolonization
AT qiaoliang 3dprintedpclascaffoldwithnanohydroxyapatitecoatingdopedgreenteaegcgpromotesbonegrowthandinhibitsmultidrugresistantbacteriacolonization
AT wangziqi 3dprintedpclascaffoldwithnanohydroxyapatitecoatingdopedgreenteaegcgpromotesbonegrowthandinhibitsmultidrugresistantbacteriacolonization
AT zhengqinqin 3dprintedpclascaffoldwithnanohydroxyapatitecoatingdopedgreenteaegcgpromotesbonegrowthandinhibitsmultidrugresistantbacteriacolonization
AT xiongchengdong 3dprintedpclascaffoldwithnanohydroxyapatitecoatingdopedgreenteaegcgpromotesbonegrowthandinhibitsmultidrugresistantbacteriacolonization
AT yanghui 3dprintedpclascaffoldwithnanohydroxyapatitecoatingdopedgreenteaegcgpromotesbonegrowthandinhibitsmultidrugresistantbacteriacolonization
AT likainan 3dprintedpclascaffoldwithnanohydroxyapatitecoatingdopedgreenteaegcgpromotesbonegrowthandinhibitsmultidrugresistantbacteriacolonization
AT luchengyin 3dprintedpclascaffoldwithnanohydroxyapatitecoatingdopedgreenteaegcgpromotesbonegrowthandinhibitsmultidrugresistantbacteriacolonization
AT lisanqiang 3dprintedpclascaffoldwithnanohydroxyapatitecoatingdopedgreenteaegcgpromotesbonegrowthandinhibitsmultidrugresistantbacteriacolonization
AT chenhongping 3dprintedpclascaffoldwithnanohydroxyapatitecoatingdopedgreenteaegcgpromotesbonegrowthandinhibitsmultidrugresistantbacteriacolonization
AT huxulin 3dprintedpclascaffoldwithnanohydroxyapatitecoatingdopedgreenteaegcgpromotesbonegrowthandinhibitsmultidrugresistantbacteriacolonization