资源类型:
期刊
WOS体系:
Article
Pubmed体系:
Journal Article
收录情况:
◇ SCIE
文章类型:
论著
机构:
[a]Dept of Orthopedics, Renmin Hospital of Wuhan University, Wuhan, 430060, China
[b]Dept of Orthopedics, First People's Hospital of Yunnan, Kunming, 650032, China
[c]School of Materials Science and Engineering, Kunming University of Science and Technology, Kunming, 650093, China
[d]Yinfeng Cryomedicine Technology Co., Ltd., Jinan, 250101, China
ISSN:
0040-8166
关键词:
biological activity
bone defect repair
spark plasma sintering (SPS)
strontium-doped hydroxyapatite (Sr-HA)
摘要:
Background: Ideal bone defect repair scaffolds should be biodegradable, biocompatible, bioactive, porous, and provide adequate mechanical support. However, it is challenging to fabricate such an ideal bone repair scaffold. Previously, we showed that 5 wt.% strontium-doped hydroxyapatite (Sr-HA) scaffolds prepared by spark plasma sintering (SPS) technology exhibited good biocompatibility. Moreover, unlike pure hydroxyapatite (HA) scaffolds, HA scaffolds containing strontium (Sr) exhibited superior bioactivity, higher proliferation rate of BMSCs and MG-63 osteoblast cells, as well as enhanced BMSCs differentiation. Methods: In this study, we prepared pure HA scaffolds and 5 wt.% strontium containing Sr-HA scaffolds by SPS technology without adhesive, ammonium bicarbonate as pore former. Subsequently, scanning electron microscope (SEM) and X-Ray diffraction (XRD) were used to characterize the properties of Sr-HA and HA scaffolds. The ability of the scaffolds to repair bone defects was evaluated using a critical-sized rabbit tibia-bone defect rabbit model. Thirty 3-month-old New Zealand white rabbits were randomly divided into three groups (blank control group, Sr-HA scaffolds implanted group and HA scaffolds implanted group) with 10 rabbits in each group. These rabbits are sacrificed after 8 weeks and 16 weeks of surgery, and the repair effects of each scaffold were evaluated with X-ray, micro-CT, and HE staining. The three-point bending test was employed to assess the mechanical property of repaired bones. Results: XRD pattern indicated that Sr-HA and HA scaffolds possess a similar crystal structure after sintering, and that incorporation of strontium did not form impure phase. SEM showed that the porosity of Sr-HA and HA scaffolds was about 40 %. Universal Testing Machine tests showed that Sr-HA scaffolds had better compressive strength than HA scaffolds. Bone defect was obvious, and the fibrous tissue was formed in the bone defects of rabbits in the blank control group after 8 weeks of surgery. Sr-HA and HA scaffolds enhanced osteointegration of the host bone, and extensive woven bone was formed on the surface of the Sr-HA scaffolds. After 16 weeks, the bone strump became blunt and a small amount of callus was formed in the blank control group. Comparatively, the scaffolds were substantially degraded in the Sr-HA scaffolds implanted group while scaffolds shadows still were observed in the HA implanted group. Bone remodeling and cavity recanalization were completely developed in the Sr-HA scaffolds group. The compressive strength of repaired bone in the Sr-HA scaffolds implantation group was higher than that of HA scaffolds implantation group after 8 weeks and 16 weeks of surgery. Conclusions: Our results show that the Sr-HA composite scaffolds can effectively repair bone defects and have good biodegradable properties. © 2020 Elsevier Ltd
基金:
Jingzhou Science and Technology Development Plan (medical and
health) project (2017033), China
被引次数:
13
WOS:
WOS:000569530200006
PubmedID:
32933709
中科院(CAS)分区:
出版当年[2020]版:
大类
|
4 区
生物
小类
|
3 区
解剖学与形态学
4 区
细胞生物学
最新[2023]版:
大类
|
4 区
生物学
小类
|
3 区
解剖学与形态学
4 区
细胞生物学
JCR分区:
出版当年[2019]版:
Q2
ANATOMY & MORPHOLOGY
Q4
CELL BIOLOGY
最新[2023]版:
Q1
ANATOMY & MORPHOLOGY
Q3
CELL BIOLOGY
影响因子:
2.7
最新[2023版]
2.5
最新五年平均
1.837
出版当年[2019版]
1.558
出版当年五年平均
1.553
出版前一年[2018版]
2.466
出版后一年[2020版]
第一作者:
Hu, B
第一作者机构:
[a]Dept of Orthopedics, Renmin Hospital of Wuhan University, Wuhan, 430060, China
共同第一作者:
Meng, Z.-D
通讯作者:
Guo, W.-C
推荐引用方式(GB/T 7714):
Hu B,Meng Z.-D,Zhang Y.-Q,et al.Sr-HA scaffolds fabricated by SPS technology promote the repair of segmental bone defects[J].TISSUE & CELL.2020,66:doi:10.1016/j.tice.2020.101386.
APA:
Hu, B,Meng, Z.-D,Zhang, Y.-Q,Ye, L.-Y,Wang, C.-J&Guo, W.-C.(2020).Sr-HA scaffolds fabricated by SPS technology promote the repair of segmental bone defects.TISSUE & CELL,66,
MLA:
Hu, B,et al."Sr-HA scaffolds fabricated by SPS technology promote the repair of segmental bone defects".TISSUE & CELL 66.(2020)