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Poly (D/L) lactide/polycaprolactone/bioactive glasss nanocomposites materials for anterior cruciate ligament reconstruction screws: The effect of glass surface functionalization on mechanical properties and cell behaviors

机译:聚(D / L)丙交酯/聚己内酯/生物活性玻璃纳米复合材料,用于前十字韧带重建螺钉:玻璃表面功能化对机械性能和细胞行为的影响

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In this paper, different nanocomposites made of a polymer blend (80% of PDLLA and 20% of PCL in w/w) and various amounts of a sol-gel derived bioactive glass nanoparticles (0,1,3 and 6 wt%) were prepared using a solvent-evaporation technique. The morphology, mechanical properties and osteoblastic cell behaviors of the nanocomposites were evaluated. According to the early results, addition of bioactive glass nanoparticles to the polymer matrix reduced the tensile and flexural strength because of a non-uniform distribution of the nanoparticles. Thus, a homogeneous dispersion was obtained by surface modification of the glass nanoparticles using (3-aminopropyl)triethoxysilane as a coupling agent The results showed that the tensile and flexural strength of the nanocomposite were improved by the nanoparticle functionalization, however the glass content was a crucial factor. The maximum tensile and flexural strength values of 38 MPa and 94 MPa were obtained for the polymer matrix loaded with 3 wt% of the modified nanofiller and further increase of filler content led to sever agglomeration and hence a reduction of the mechanical properties. The obtained mechanical properties are favorable for anterior cruciate ligament reconstruction screws. Besides, the results of cell culture using human osteoblastic cells illustrated better cell attachment and cell growth of the nanocomposites compared to the neat polymer blend.
机译:在本文中,使用了由聚合物共混物(重量百分比为80%的PDLLA和20%的PCL)和各种量的溶胶-凝胶衍生的生物活性玻璃纳米粒子(0、1、3和6 wt%)制成的不同纳米复合材料。使用溶剂蒸发技术制备。评价了纳米复合材料的形态,力学性能和成骨细胞行为。根据早期结果,将生物活性玻璃纳米颗粒添加到聚合物基质中会降低拉伸强度和弯曲强度,因为纳米颗粒的分布不均匀。因此,通过使用(3-氨基丙基)三乙氧基硅烷作为偶联剂对玻璃纳米粒子进行表面改性获得了均匀的分散体。结果表明,通过纳米粒子官能化可以提高纳米复合材料的拉伸强度和弯曲强度,但是玻璃含量为关键因素。对于负载有3wt%的改性纳米填料的聚合物基质,获得的最大拉伸强度和挠曲强度值为38MPa和94MPa,并且填料含量的进一步增加导致严重的团聚,因此降低了机械性能。获得的机械性能有利于前交叉韧带重建螺钉。此外,与纯聚合物共混物相比,使用人类成骨细胞进行细胞培养的结果表明纳米复合材料具有更好的细胞附着力和细胞生长。

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