灌木岩
水泥
聚乙二醇
材料科学
骨水泥
PEG比率
聚乙烯
抗压强度
体内
生物材料
生物医学工程
复合材料
作者
Ana Clara de França Silva Azevedo,Otto Cumberbatch Morúa,Gabriel Goetten de Lima,Henrique Nunes da Silva,Jefferson da Silva Ferreira,Marcus Vinícius Lia Fook,Marcelo Jorge Cavalcanti de Sá
出处
期刊:Bio-medical Materials and Engineering
[IOS Press]
日期:2021-12-03
卷期号:: 1-13
摘要
BACKGROUND: Bone cements aid in bone regeneration; however, if the handling time is not well established for the material to harden, complications may arise. OBJECTIVE: This work investigates the effect of using polyethylene glycol (PEG) and characterize it in brushite bone cement in order to obtain desirable handling times as well as its regeneration in vivo to analyse if addition of this polymer may significantly modify its properties. METHODS: PEG 4000 was synthesised with wollastonite by phosphorization reaction in order to form brushite which was further cured by oven drying. They were further characterised and tested in vivo as tibial bone defect model using rabbits. RESULTS: Addition of PEG exhibited handling times of 60 min with a low increase in temperature when curing. Brushite phase of ∼71% was obtained after cement hardening with good compressive strength (25 MPa) and decent values of porosity (33%). In vivo presented that, at 40 days postoperatively, accelerated bone neoformation with partial consolidation at 30 days and total after 60 days when using bone cement. CONCLUSIONS: Addition of PEG does not disrupt the beneficial properties of the bone cement and can be a potential alternative for control the time-temperature profile of hardening these materials.
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