A novel composite scaffold of Cu-doped nano calcium-deficient hydroxyapatite/multi-(amino acid) copolymer for bone tissue regeneration

Ping Mou,1 Haitao Peng,2 Li Zhou,3 Lin Li,2 Hong Li,2 Qiang Huang11Department of Orthopedic Surgery, West China Hospital, West China Medical School, Sichuan University; 2School of Physical Science and Technology, Sichuan University; 3Core Facility of West China Hospital, Sichuan University, Chengdu,...

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Main Authors: Mou P, Peng H, Zhou L, Li L, Li H, Huang Q
Format: Article
Language:English
Published: Dove Medical Press 2019-05-01
Series:International Journal of Nanomedicine
Subjects:
Online Access:https://www.dovepress.com/a-novel-composite-scaffold-of-cu-doped-nano-calcium-deficient-hydroxya-peer-reviewed-article-IJN
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spelling doaj-128e49d6f11d445bb3aa00dc3eee93e92020-11-24T21:43:52ZengDove Medical PressInternational Journal of Nanomedicine1178-20132019-05-01Volume 143331334345661A novel composite scaffold of Cu-doped nano calcium-deficient hydroxyapatite/multi-(amino acid) copolymer for bone tissue regenerationMou PPeng HZhou LLi LLi HHuang QPing Mou,1 Haitao Peng,2 Li Zhou,3 Lin Li,2 Hong Li,2 Qiang Huang11Department of Orthopedic Surgery, West China Hospital, West China Medical School, Sichuan University; 2School of Physical Science and Technology, Sichuan University; 3Core Facility of West China Hospital, Sichuan University, Chengdu, Sichuan Province 610041, People’s Republic of ChinaBackground and methods: A Cu-doped composite scaffold of nano calcium-deficient hydroxyapatite (n-CDHA)/multi(amino acid) copolymer (MAC) was prepared. The structure, porosity, morphology and compressive strength of the scaffolds were characterized, the in vitro degradability in phosphate-buffered solution (PBS) and cell responses to the scaffolds were investigated, and in vivo stimulation of bone formation were analyzed.Results: The scaffolds showed the compressive strength of approximately 12 MPa and total porosity of about 81%. Weight loss of the composite scaffolds was 63% after 16-week immersion in PBS. Cu release in scaffolds showed a marked dependence on the initial amount in the scaffolds over time. Cu-doped n-CDHA/MAC scaffolds with the content of Cu 0.5% and 1% in mass ratio showed better cell responses to proliferation and differentiation of rat bone marrow stromal cells (rBMSCs) than that with no Cu. After 12-week implantation in rabbits, 1% Cu-doped n-CDHA/MAC showed better ability of angiogenesis and osteogenesis compared to 0% Cu-doped n-CDHA/MAC.Conclusion: The 1% Cu-doped n-CDHA/MAC composite scaffold showed good capacity of angiogenesis and osteogenesis, and the Cu showed positive effects on cell growth and osteogenesis. And it has potential to be used as bone regeneration scaffolds.Keywords: calcium-deficient hydroxyapatite, multi-(amino acid) copolymer, copper, osteogenesis, degradability, cytocompatibilityhttps://www.dovepress.com/a-novel-composite-scaffold-of-cu-doped-nano-calcium-deficient-hydroxya-peer-reviewed-article-IJNcalcium-deficient hydroxyapatitemulti-(amino acid) copolymercopperosteogenesisdegradabilitycytocompatibility
collection DOAJ
language English
format Article
sources DOAJ
author Mou P
Peng H
Zhou L
Li L
Li H
Huang Q
spellingShingle Mou P
Peng H
Zhou L
Li L
Li H
Huang Q
A novel composite scaffold of Cu-doped nano calcium-deficient hydroxyapatite/multi-(amino acid) copolymer for bone tissue regeneration
International Journal of Nanomedicine
calcium-deficient hydroxyapatite
multi-(amino acid) copolymer
copper
osteogenesis
degradability
cytocompatibility
author_facet Mou P
Peng H
Zhou L
Li L
Li H
Huang Q
author_sort Mou P
title A novel composite scaffold of Cu-doped nano calcium-deficient hydroxyapatite/multi-(amino acid) copolymer for bone tissue regeneration
title_short A novel composite scaffold of Cu-doped nano calcium-deficient hydroxyapatite/multi-(amino acid) copolymer for bone tissue regeneration
title_full A novel composite scaffold of Cu-doped nano calcium-deficient hydroxyapatite/multi-(amino acid) copolymer for bone tissue regeneration
title_fullStr A novel composite scaffold of Cu-doped nano calcium-deficient hydroxyapatite/multi-(amino acid) copolymer for bone tissue regeneration
title_full_unstemmed A novel composite scaffold of Cu-doped nano calcium-deficient hydroxyapatite/multi-(amino acid) copolymer for bone tissue regeneration
title_sort novel composite scaffold of cu-doped nano calcium-deficient hydroxyapatite/multi-(amino acid) copolymer for bone tissue regeneration
publisher Dove Medical Press
series International Journal of Nanomedicine
issn 1178-2013
publishDate 2019-05-01
description Ping Mou,1 Haitao Peng,2 Li Zhou,3 Lin Li,2 Hong Li,2 Qiang Huang11Department of Orthopedic Surgery, West China Hospital, West China Medical School, Sichuan University; 2School of Physical Science and Technology, Sichuan University; 3Core Facility of West China Hospital, Sichuan University, Chengdu, Sichuan Province 610041, People’s Republic of ChinaBackground and methods: A Cu-doped composite scaffold of nano calcium-deficient hydroxyapatite (n-CDHA)/multi(amino acid) copolymer (MAC) was prepared. The structure, porosity, morphology and compressive strength of the scaffolds were characterized, the in vitro degradability in phosphate-buffered solution (PBS) and cell responses to the scaffolds were investigated, and in vivo stimulation of bone formation were analyzed.Results: The scaffolds showed the compressive strength of approximately 12 MPa and total porosity of about 81%. Weight loss of the composite scaffolds was 63% after 16-week immersion in PBS. Cu release in scaffolds showed a marked dependence on the initial amount in the scaffolds over time. Cu-doped n-CDHA/MAC scaffolds with the content of Cu 0.5% and 1% in mass ratio showed better cell responses to proliferation and differentiation of rat bone marrow stromal cells (rBMSCs) than that with no Cu. After 12-week implantation in rabbits, 1% Cu-doped n-CDHA/MAC showed better ability of angiogenesis and osteogenesis compared to 0% Cu-doped n-CDHA/MAC.Conclusion: The 1% Cu-doped n-CDHA/MAC composite scaffold showed good capacity of angiogenesis and osteogenesis, and the Cu showed positive effects on cell growth and osteogenesis. And it has potential to be used as bone regeneration scaffolds.Keywords: calcium-deficient hydroxyapatite, multi-(amino acid) copolymer, copper, osteogenesis, degradability, cytocompatibility
topic calcium-deficient hydroxyapatite
multi-(amino acid) copolymer
copper
osteogenesis
degradability
cytocompatibility
url https://www.dovepress.com/a-novel-composite-scaffold-of-cu-doped-nano-calcium-deficient-hydroxya-peer-reviewed-article-IJN
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