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通过不对称多孔聚己内酯/普朗尼克F127膜和超声刺激增强引导性骨再生

Enhanced guided bone regeneration by asymmetrically porous PCL/pluronic F127 membrane and ultrasound stimulation.

作者信息

Oh Se Heang, Kim Tae Ho, Chun So Young, Park Eui Kyun, Lee Jin Ho

机构信息

a Department of Advanced Materials , Hannam University , 461-6 Jeonmin Dong , Yuseong Gu , Daejeon , 305-811 , South Korea.

出版信息

J Biomater Sci Polym Ed. 2012;23(13):1673-86. doi: 10.1163/092050611X589518. Epub 2012 May 11.

Abstract

Recently, we developed a novel method for fabricating a guided bone regeneration (GBR) membrane with an asymmetrical pore structure and hydrophilicity by an immersion precipitation method. Results from an animal study, in a cranial defect model in rats, indicated that the unique asymmetrically porous GBR membrane would provide a good environment for bone regeneration. In the present study, we applied low intensity pulsed ultrasound as a simple and non-invasive stimulus to an asymmetrically porous polycaprolactone (PCL)/Pluronic F127 GBR membrane-implanted site transcutaneously in rats to investigate the feasibility of using ultrasound to stimulate enhanced bone regeneration through the membrane. It was observed that the ultrasound-stimulated PCL/F127 GBR membrane group had much faster bone regeneration behavior than a PCL/F127 membrane group w/o ultrasound or a control group (w/o membrane and ultrasound). The greater bone regeneration behavior in the GBR membrane/ultrasound group may be caused by a synergistic effect of the asymmetrically porous PCL/F127 membrane with unique properties (selective permeability, hydrophilicity and osteoconductivity), and the stimulatory effect of ultrasound (induction of angiogenesis and osteogenesis of cells).

摘要

最近,我们开发了一种通过浸没沉淀法制备具有不对称孔结构和亲水性的引导性骨再生(GBR)膜的新方法。在大鼠颅骨缺损模型中的动物研究结果表明,独特的不对称多孔GBR膜将为骨再生提供良好的环境。在本研究中,我们将低强度脉冲超声作为一种简单且非侵入性的刺激,经皮应用于大鼠体内植入不对称多孔聚己内酯(PCL)/普朗尼克F127 GBR膜的部位,以研究使用超声通过该膜刺激增强骨再生的可行性。观察到超声刺激的PCL/F127 GBR膜组的骨再生行为比未接受超声刺激的PCL/F127膜组或对照组(未植入膜且未接受超声刺激)快得多。GBR膜/超声组中更大的骨再生行为可能是由具有独特性质(选择性渗透性、亲水性和骨传导性)的不对称多孔PCL/F127膜的协同作用以及超声的刺激作用(诱导血管生成和细胞成骨)所引起的。

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