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In vivo evaluation of composites of PLGA and apatite with two different levels of crystallinity

机译:两种不同结晶度的PLGA和磷灰石复合材料的体内评估

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摘要

The cortical bone response towards poly(lac-tide-co-glycolide) (70/30) (PLGA) (70/30)/apatite complex scaffolds with different levels of crystallinity was investigated. Apatite with different levels of crystallinity, Ca-deficient hydroxyapatite (CDHA), which has a low crystallinity, and a mixture of carbonated hydroxyapatite (CHA) and CDHA, which has a higher crystallinity, were prepared from an aqueous mixture of Ca-EDTA complex, H_2O_2, H_3PO_4, and NH_4OH. Two porous PLGA(70/30)/ apatite composite scaffolds, composite scaffold A (containing low crystallinity CDHA) and composite scaffold B (containing the higher crystallinity CHA/CDHA mixture), were prepared. Afterwards, pure porous PLGA and the two composite scaffolds were implanted into the cortical bone of rabbit tibiae for 12 weeks. High-resolution microfocus X-ray computed tomography and histological examinations revealed a better bone response for composite scaffold A compared with PLGA and composite scaffold B. For composite scaffold A, the original bone defect was almost filled with new bone. Quantitative analysis revealed that composite scaffold A produced a significantly greater amount of new bone. The present study demonstrated thatrnthe level of apatite crystallinity influences bone response. A PLGA/apatite porous composite with a low level of apatite crystallinity shows promise as a bone substitute or scaffold material for bone tissue engineering.
机译:研究了皮质对不同结晶度的聚(乳酸-共-乙交酯)(70/30)(PLGA)(70/30)/磷灰石复合支架的反应。从Ca-EDTA络合物的水性混合物中制备出具有不同结晶度的磷灰石,低结晶度的Ca不足羟基磷灰石(CDHA)以及高结晶度的碳酸羟基磷灰石(CHA)和CDHA的混合物,H_2O_2,H_3PO_4和NH_4OH。制备了两个多孔PLGA(70/30)/磷灰石复合支架,复合支架A(包含低结晶度CDHA)和复合支架B(包含较高结晶度CHA / CDHA混合物)。然后,将纯多孔PLGA和两个复合支架植入兔胫骨的皮质骨中12周。高分辨率微焦点X射线计算机断层扫描和组织学检查显示,与PLGA和复合支架B相比,复合支架A的骨骼反应更好。对于复合支架A,原始的骨缺损几乎充满了新骨。定量分析表明,复合支架A产生了大量新骨。本研究表明磷灰石结晶度水平影响骨反应。磷灰石结晶度低的PLGA /磷灰石多孔复合材料有望成为骨组织工程的骨替代材料或支架材料。

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  • 来源
    《Journal of materials science 》 |2010年第1期| 251-258| 共8页
  • 作者单位

    Department of Dental Biomaterials, Nihon University School of Dentistry at Matsudo, 2-870-1, Sakaecho-nishi, Matsudo, Chiba 271-8587, Japan;

    Coordination Engineering Laboratory, Faculty of Engineering, Kogakuin University, 2665-1, Nakano, Hachioji, Tokyo 192-0015, Japan;

    Coordination Engineering Laboratory, Faculty of Engineering, Kogakuin University, 2665-1, Nakano, Hachioji, Tokyo 192-0015, Japan;

    PPCL, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China;

    PPCL, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China;

    PPCL, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China;

    Coordination Engineering Laboratory, Faculty of Engineering, Kogakuin University, 2665-1, Nakano, Hachioji, Tokyo 192-0015, Japan;

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