In vivo study of hybrid biomaterial scaffold bioactive glass–chitosan after incorporation of Ciprofloxacin

被引:0
|
作者
Salha Boulila
Hassane Oudadesse
Rim Kallel
Bertrand Lefeuvre
Mostafa Mabrouk
Khansa Chaabouni
Fatma Makni-Ayedi
Tahia Boudawara
Abdelfattah Elfeki
Hafed Elfeki
机构
[1] Université of Rennes 1,Anatomopathology Laboratory, CHU Habib Bourguiba 3029
[2] UMR CNRS 6226,Refractories, Ceramics and Building Materials Department
[3] University of Sfax,Laboratory of Biochemical
[4] National Research Centre,Laboratory of Animal Ecophysiology, Faculty of Sciences of Sfax
[5] University Hospital Habib Bourguiba,Laboratory of Sciences Material and Environment
[6] University of Sfax,undefined
[7] Faculty of Sciences of Sfax,undefined
来源
Polymer Bulletin | 2017年 / 74卷
关键词
Bioactive glass; Biocompatibility; Ciprofloxacin; Chitosan; Retarding;
D O I
暂无
中图分类号
学科分类号
摘要
The present study aimed to evaluate the effect of bioactive glass as well as the presence of Ciprofloxacin drug (%Cip) into bioactive glass–chitosan composite on the in vivo behavior of these scaffolds. These scaffolds were implanted in the femoral condyl of an ovariectomized rat. The serum and organs (liver and kidney) of the under investigated rats were analyzed. Also the physicochemical properties of the prepared implants were assessed using Fourier transform infrared spectroscopy (FT-IR) and X-ray diffraction (XRD) before and after implantation (at different periods of implantation). Biochemical and histological analyses of the under investigated rats proved the biocompatibility of the prepared scaffolds. The hydroxyapatite like layer was significantly precipitated on the surface of BG–CH scaffold than BG–CH–20Cip. In this same period, FT-IR of BG–CH shows complete disappearance of Si–O–Si. Their characteristics bands were replaced by P–O group arisen form bone apatite bands. Physicochemical results show progressive degradation of BG–CH and BG–CH–20Cip that occurred at the same time as replacement of the implant by an apatite layer. However, the bioresorbability and bioactivity of BG–CH are faster than those of BG–CH–20Cip. Therefore, the incorporation of the Ciprofloxacin in the BG–CH induces a retarding effect on the formation of the hydroxyapatite, and consequently on the ossification, without any side effects on the liver–kidney.
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页码:4153 / 4173
页数:20
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