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用于骨科增强的可注射不透射线且具有生物活性的聚己内酯-陶瓷复合材料。

Injectable radiopaque and bioactive polycaprolactone-ceramic composites for orthopedic augmentation.

作者信息

No Young Jung, Roohani-Esfahani Seyed-Iman, Lu Zufu, Schaer Thomas, Zreiqat Hala

机构信息

Biomaterials and Tissue Engineering Research Unit, School of AMME, University of Sydney, 2006, Australia.

Comparative Orthopedic Research Laboratory, Department of Clinical Studies, School of Veterinary Medicine, New Bolton Centre, University of Pennsylvania, Kennett Square, Pennsylvania.

出版信息

J Biomed Mater Res B Appl Biomater. 2015 Oct;103(7):1465-77. doi: 10.1002/jbm.b.33336. Epub 2014 Nov 28.

Abstract

The aim of this study was to develop and characterize an injectable bone void filler by incorporating baghdadite (Ca3 ZrSi2 O9 ) particles (average size of 1.7 µm) into polycaprolactone (PCL). A series of PCL composites containing different volume percentages of baghdadite [1 (PCL-1%Bag), 5 (PCL-5%Bag), 10 (PCL-10%Bag), 20 (PCL-20%Bag), and 30 (PCL-30%Bag)] were prepared, and their injectability, setting time, mechanical properties, radiopacity, degradation, and cytocompatibility were investigated. PCL, PCL-1%Bag, PCL-5%Bag, and PCL-10%Bag were able to be injected through a stainless steel syringe (Length: 9.0 mm, nozzle diameter: 2.2 mm) at 75°C at injection forces of below 1.5 kN. The core temperature of the injected material at the nozzle exit ranged between 55 and 60°C and was shown to set after 2.5-3.5 min postinjection in a 37°C environment. Injection force, melt viscosity, and radiopacity of the composites increased with increasing baghdadite content. Incorporation of 10-30 vol % baghdadite into PCL increased the compressive strength of the composites from 36 to 47.1 MPa, compared with that for pure PCL (31.4 MPa). Similar trend was found for the compressive modulus of the composites, which increased from 203.8 to 741 MPa, compared with that for pure PCL (205 MPa). Flexural strain of PCL, PCL-5%Bag, and PCL-10%Bag exceeded 30%, and PCL-10%Bag showed the highest flexural strength (29.8 MPa). Primary human osteoblasts cultured on PCL-10%Bag showed a significant upregulation of osteogenic genes compared with pure PCL. In summary, our results demonstrated that PCL-10%Bag could be a promising injectable material for orthopedic and trauma application.

摘要

本研究的目的是通过将斜锆石(Ca3ZrSi2O9)颗粒(平均尺寸为1.7 µm)掺入聚己内酯(PCL)中来开发和表征一种可注射的骨缺损填充材料。制备了一系列含有不同体积百分比斜锆石的PCL复合材料[1%(PCL-1%Bag)、5%(PCL-5%Bag)、10%(PCL-10%Bag)、20%(PCL-20%Bag)和30%(PCL-30%Bag)],并对其可注射性、凝固时间、力学性能、射线不透性、降解和细胞相容性进行了研究。PCL、PCL-1%Bag、PCL-5%Bag和PCL-10%Bag能够在75°C下以低于1.5 kN的注射力通过不锈钢注射器(长度:9.0 mm,喷嘴直径:2.2 mm)进行注射。注射材料在喷嘴出口处的核心温度在55至60°C之间,并且在37°C环境中注射后2.5至3.5分钟显示凝固。复合材料的注射力、熔体粘度和射线不透性随着斜锆石含量的增加而增加。与纯PCL(31.4 MPa)相比,将10 - 30体积%的斜锆石掺入PCL中使复合材料的抗压强度从36 MPa提高到47.1 MPa。复合材料的压缩模量也发现了类似趋势,与纯PCL(205 MPa)相比,从203.8 MPa增加到741 MPa。PCL、PCL-5%Bag和PCL-10%Bag的弯曲应变超过30%,PCL-10%Bag表现出最高的弯曲强度(29.8 MPa)。与纯PCL相比,在PCL-10%Bag上培养的原代人成骨细胞显示成骨基因显著上调。总之,我们的结果表明PCL-10%Bag可能是一种用于骨科和创伤应用的有前途的可注射材料。

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