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Subcritical CO2 Sintering of Microspheres of Different Polymeric Materials to Fabricate Scaffolds for Tissue Engineering

机译:亚临界CO2烧结不同聚合物材料的微球以制造组织工程支架

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摘要

The aim of this study was to use CO2 at sub-critical pressures as a tool to sinter 3D, macroporous, microsphere-based scaffolds for bone and cartilage Tissue Engineering Porous scaffolds composed of ~200 µm microspheres of either poly(lactic-co-glycolic acid) (PLGA) or polycaprolactone (PCL) were prepared using dense phase CO2 sintering, which were seeded with rat bone marrow mesenchymal stromal cells (rBMSCs), and exposed to either osteogenic (PLGA, PCL) or chondrogenic (PLGA) conditions for 6 weeks. Under osteogenic conditions, the PLGA constructs produced over an order of magnitude more calcium than the PCL constructs, whereas the PCL constructs had far superior mechanical and structural integrity (125 times stiffer than PLGA constructs) at week 6, along with twice the cell content of the PLGA constructs. Chondrogenic cell performance was limited in PLGA constructs, perhaps as a result of the polymer degradation rate being too high. The current study represents the first long-term culture of CO2-sintered microsphere-based scaffolds, and has established important thermodynamic differences in sintering between the selected formulations of PLGA and PCL, with the former requiring adjustment of pressure only, and the latter requiring the adjustment of both pressure and temperature. Based on more straightforward sintering conditions and more favorable cell performance, PLGA may be the material of choice for microspheres in a CO2 sintering application, although a different PLGA formulation with the encapsulation of growth factors, extracellular matrix-derived nanoparticles, and/or buffers in the microspheres may be advantageous for achieving a more superior cell performance than observed here.
机译:这项研究的目的是使用亚临界压力下的二氧化碳作为烧结用于骨骼和软骨的3D,大孔,基于微球的支架的工具组织工程多孔支架由〜200 µm的聚乳酸或乙醇酸微球组成酸(PLGA)或聚己内酯(PCL)使用致密相CO2烧结制备,将其植入大鼠骨髓间充质基质细胞(rBMSCs)中,并暴露于成骨(PLGA,PCL)或成软骨(PLGA)条件下6周。在成骨条件下,PLGA构建体比PCL构建体产生的钙含量高出一个数量级,而PCL构建体在第6周时具有优异的机械和结构完整性(比PLGA构建体坚硬125倍),其细胞含量是PCL构建体的两倍。 PLGA构建体。在PLGA构建体中,软骨细胞的性能受到限制,这可能是由于聚合物降解速率太高所致。当前的研究代表了首次CO2烧结的微球基支架的长期培养,并且在选定PLGA和PCL配方之间的烧结过程中建立了重要的热力学差异,前者仅需要调节压力,而后者则需要调节压力。调整压力和温度。基于更直接的烧结条件和更有利的电池性能,PLGA可能是CO2烧结应用中微球的选择材料,尽管不同的PLGA配方中封装了生长因子,细胞外基质衍生的纳米颗粒和/或缓冲液。微球可能有利于获得比此处观察到的更优越的电池性能。

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