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首页> 外文期刊>Biochemistry and Biophysics Reports >Preparation and characterization of cockle shell aragonite nanocomposite porous 3D scaffolds for bone repair
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Preparation and characterization of cockle shell aragonite nanocomposite porous 3D scaffolds for bone repair

机译:蛤壳文石纳米复合多孔3D支架的制备与表征

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The demands for applicable tissue-engineered scaffolds that can be used to repair load-bearing segmental bone defects (SBDs) is vital and in increasing demand. In this study, seven different combinations of 3 dimensional (3D) novel nanocomposite porous structured scaffolds were fabricated to rebuild SBDs using an extraordinary blend of cockle shells (CaCo 3 ) nanoparticles (CCN), gelatin, dextran and dextrin to structure an ideal bone scaffold with adequate degradation rate using the Freeze Drying Method (FDM) and labeled as 5211, 5400, 6211, 6300, 7101, 7200 and 8100. The micron sized cockle shells powder obtained (75 μm) was made into nanoparticles using mechano-chemical, top-down method of nanoparticles synthesis with the presence of the surfactant BS-12 (dodecyl dimethyl bataine). The phase purity and crystallographic structures, the chemical functionality and the thermal characterization of the scaffolds’ powder were recognized using X-Ray Diffractometer (XRD), Fourier transform infrared (FTIR) spectrophotometer and Differential Scanning Calorimetry (DSC) respectively. Characterizations of the scaffolds were assessed by Scanning Electron Microscopy (SEM), Degradation Manner, Water Absorption Test, Swelling Test, Mechanical Test and Porosity Test. Top-down method produced cockle shell nanoparticles having averagely range 37.8±3–55.2±9 nm in size, which were determined using Transmission Electron Microscope (TEM). A mainly aragonite form of calcium carbonate was identified in both XRD and FTIR for all scaffolds, while the melting (Tm) and transition (Tg) temperatures were identified using DSC with the range of Tm 62.4–75.5 °C and of Tg 230.6–232.5 °C. The newly prepared scaffolds were with the following characteristics: (i) good biocompatibility and biodegradability, (ii) appropriate surface chemistry and (iii) highly porous, with interconnected pore network. Engineering analyses showed that scaffold 5211 possessed 3D interconnected homogenous porous structure with a porosity of about 49%, pore sizes ranging from 8.97 to 337 μm, mechanical strength 20.3 MPa, Young's Modulus 271±63 MPa and enzymatic degradation rate 22.7 within 14 days. Highlights ? An innovative mixture of nano-CaCo 3 (aragonite), gelatin, dextrin and dextran. ? Scaffold 5211 reached a tipping point in terms of ideal morphology, optimal physiochemical properties, and great mechanical strength. ? Scaffold 5211 may guarantee the achievement of the developed scaffold purposes in true biological system.
机译:对于可用于修复承重节段性骨缺损(SBD)的适用组织工程支架的需求至关重要,并且需求也在不断增长。在这项研究中,使用鸟蛤壳(CaCo 3)纳米颗粒(CCN),明胶,右旋糖酐和糊精的非常规混合物,制造了7种不同组合的3维(3D)新型纳米复合多孔结构支架,以重建SBD。使用冷冻干燥法(FDM)以足够的降解速度降解,并分别标记为5211、5400、6211、6300、7101、7200和8100。表面活性剂BS-12(十二烷基二甲基甜菜碱)存在下的纳米粒子合成的合成方法。分别使用X射线衍射仪(XRD),傅立叶变换红外(FTIR)分光光度计和差示扫描量热法(DSC)来识别支架粉末的相纯度和晶体结构,化学功能和热特性。通过扫描电子显微镜(SEM),降解方式,吸水率测试,溶胀测试,机械测试和孔隙率测试来评估支架的表征。自顶向下方法产生的蛤壳纳米粒子的平均尺寸为37.8±3–55.2±9 nm,这是使用透射电子显微镜(TEM)确定的。在XRD和FTIR中都确定了所有支架的主要文石形式的碳酸钙,而使用DSC鉴定的熔融温度(Tm)和转变温度(Tg)的范围为Tm 62.4–75.5°C和Tg 230.6–232.5 ℃。新制备的支架具有以下特征:(i)良好的生物相容性和生物降解性,(ii)适当的表面化学性质和(iii)高度多孔,具有相互连接的孔网络。工程分析表明,支架5211具有3D互连的均质多孔结构,孔隙率约为49%,孔径范围为8.97至337μm,机械强度为20.3 MPa,杨氏模量为271±63 MPa,在14天内的酶促降解率为22.7。强调 ?纳米CaCo 3(文石),明胶,糊精和葡聚糖的创新混合物。 ?支架5211在理想的形态,最佳的物理化学特性和出色的机械强度方面达到了临界点。 ?支架5211可以保证在真正的生物系统中实现发达的支架目的。

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