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首页> 外文期刊>Acta biomaterialia >Solvent-dependent properties of electrospun fibrous composites for bone tissue regeneration.
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Solvent-dependent properties of electrospun fibrous composites for bone tissue regeneration.

机译:电纺纤维复合材料对骨组织再生的溶剂依赖性特性。

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摘要

Biodegradable polymer-ceramic composite scaffolds have gained importance in recent years in the field of orthopedic biomaterials and tissue engineering scaffolds for improving the rate of degradation and limited mechanical properties of bioactive ceramics. This study sought to create composites using the electrospinning process to achieve fibrous scaffolds with uniform fiber morphologies and uniform ceramic dispersions. Composites consisting of 20% hydroxyapatite/80% beta-tricalcium phosphate (20/80 HA/TCP) and poly (epsilon-caprolactone) (PCL) were fabricated. The 20/80 HA/TCP composition was chosen as the ceramic component because of previous reports of greater bone tissue formation in comparison with HA or TCP alone. For electrospinning, PCL was dissolved in either methylene chloride (Composite-MC) or a combination of methylene chloride (80%) and dimethylformamide (20%) (Composite-MC + DMF). Composite-MC mats contained a bimodal distribution of fiber diameters with nanofibers between larger, micron-sized fibers with an average pore size of 79.6 + or - 67 microm, whereas Composite-MC + DMF fibers had uniform fiber diameters with an average pore size of 7.0 + or - 4.2 microm. Elemental mapping determined that the ceramic was distributed throughout the mat and inside the fiber for both composites. However, physical characterization using differential scanning calorimetry (DSC) and mechanical testing revealed that the ceramic in the mats produced with MC + DMF were more uniformly dispersed than the ceramic in the mats produced with MC alone. Maximum tensile stress and strain were significantly higher for Composite-MC + DMF mats compared with Composite-MC mats and were comparable with the mechanical properties of mats of PCL alone. For both composites, there was molecular interaction between the PCL and the ceramic, as demonstrated by a maximum increase of approximately 10 degrees C in the glass transition values with the addition of the ceramic, as confirmed by Fourier transform infrared analysis. In addition, the crystallization behavior of the composites suggested that the ceramic was acting as a nucleating agent. Cell viability studies using human mesenchymal stem cells (MSC) showed that both composite scaffolds supported cell growth. However, cell numbers at early time points in culture were significantly higher on mats produced from MC + DMF compared with mats prepared with MC alone. Further examination revealed that cells were able to infiltrate the pores of the Composite-MC mats, but remained on the outer surface of the Composite-MC + DMF and unfilled PCL mats during the culture period. The results of this study demonstrate that the solvent or solvent combination used in preparing the electrospun composite mats plays a critical role in determining its properties, which may, in turn, affect cell behavior.
机译:近年来,可生物降解的聚合物 - 陶瓷复合支架在骨科生物材料和组织工程支架领域中获得了重要性,用于提高生物活性陶瓷的降解速率和有限的机械性能。该研究寻求使用静电纺丝过程创造复合材料,以实现具有均匀纤维形态和均匀陶瓷分散体的纤维支架。制造由20%羟基磷灰石/ 80%β-三磷酸钙(20/80HA / TCP)和聚(ε-己内酯)(PCL)组成的复合材料。选择20/80HA / TCP组合物作为陶瓷成分,因为先前与单独的HA或TCP相比,更大的骨组织形成。对于静电纺丝,将PCL溶于二氯甲烷(Composite-MC)中或二氯甲烷(80%)和二甲基甲酰胺(20%)(复合-MC + DMF)的组合。复合材料MC垫含有纤维直径的双峰分布,含有较大的微米尺寸的纤维,平均孔径为79.6 +或-67微米,而复合材料-MC + DMF纤维具有均匀的纤维直径,平均孔径7.0 +或 - 4.2 microm。元素映射确定陶瓷在整个垫子中分布并在纤维内部进行复合材料。然而,使用差示扫描量热法(DSC)和机械测试的物理特征揭示了用MC + DMF产生的垫中的陶瓷比单独用MC产生的垫子中的陶瓷更均匀地分散。与复合材料MC垫相比,复合材料-MC + DMF垫的最大拉伸应力和菌株显着更高,并且与单独的PCL垫的机械性能相当。对于两种复合材料,PCL和陶瓷之间存在分子相互作用,如通过添加陶瓷的玻璃化转变值在玻璃化转变值中所示的最大增加,如傅里叶变换红外分析所证实的那样。另外,复合材料的结晶行为表明陶瓷用作成核剂。使用人间充质干细胞(MSC)的细胞活力研究表明,两种复合支架都支持细胞生长。然而,与单独用MC制备的垫子相比,从MC + DMF产生的垫子上的早期时间点的细胞数显着高。进一步的检查表明,细胞能够在培养期间渗透复合物MC垫的孔,但保持在复合物-MC + DMF的外表面上和未填充的PCL垫。本研究结果表明,用于制备电纺垫的溶剂或溶剂组合在确定其性质方面发挥着关键作用,这反过来可能反过来影响细胞行为。

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