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Development of a solvent-free polylactide/calcium carbonate composite for selective laser sintering of bone tissue engineering scaffolds

机译:用于选择性激光烧结骨组织工程支架的无溶剂聚丙酯/碳酸钙复合物的研制

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Since large bone defects cannot be healed by the body itself, continuous effort is put into the development of 3D scaffolds for bone tissue engineering. One method to fabricate such scaffolds is selective laser sintering (SLS). However, there is a lack of solvent-free prepared microparticles suitable for SLS. Hence, the aim of this study was to develop a solvent-free polylactide/calcium carbonate composite powder with tailored material properties for SLS. Four composite powders with a composition of approximately 75 wt% polylactide (PLLA as well as PDLLA) and 25 wt% calcium carbonate (calcite) were prepared by a milling process based on GMP standards. Four different grades of polylactide were chosen to cover a broad inherent viscosity range of 1.0-3.6 dl/g. The composite material with the lowest inherent viscosity (1.0 dl/g) showed the best processability by SLS. This was caused by the small polymer particle diameter (50 mu m) and the small zero-shear melt viscosity (400 Pa.s), which led to fast sintering. The SLS process parameters were developed to achieve low micro-porosity (approx. 2%) and low polymer degradation (no measurable decrease of the inherent viscosity). A biaxial bending strength of up to 75 MPa was achieved. Cell culture assays indicated good viability of MG-63 osteoblast-like cells on the SLS specimens. Finally, the manufacture of 3D scaffolds with interconnected pore structure was demonstrated. After proving the biocompatibility of the material, the developed scaffolds could have great potential to be used as patient-specific bone replacement implants.
机译:由于身体本身不能愈合大骨缺陷,因此持续努力投入到骨组织工程的3D支架的发展。制造这种支架的一种方法是选择性激光烧结(SLS)。然而,缺乏适用于SLS的无溶剂制备的微粒。因此,本研究的目的是开发一种无溶剂聚丙酯/碳酸钙复合粉,具有用于SLS的定制材料性质。通过基于GMP标准的研磨过程制备了具有约75wt%聚丙酯(PLLA以及PDLLA)和25wt%碳酸钙(方解石)的组合物的四种复合粉末。选择四种不同等级的聚酰胺,以覆盖宽的固有粘度范围为1.0-3.6dl / g。具有最低固有粘度(1.0dl / g)的复合材料显示通过SLS的最佳加工性。这是由小的聚合物粒径(50μm)和小零剪切熔体粘度(400Pa)引起的,这导致了快速烧结。开发了SLS工艺参数以实现低微孔隙度(约2%)和低聚物降解(无可测量的固有粘度降低)。达到高达75MPa的双轴弯曲强度。细胞培养检测结果表明在SLS样本上的Mg-63成骨细胞样细胞的良好活力。最后,证明了具有相互连接的孔结构的3D支架的制造。在证明材料的生物相容性之后,发育的支架可以具有很大的潜力,可用作患者特异性骨更换植入物。

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