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首页> 外文期刊>Biofabrication >Cryogenic 3D printing for producing hierarchical porous and rhBMP-2loaded Ca-P/PLLA nanocomposite scaffolds for bone tissue engineering
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Cryogenic 3D printing for producing hierarchical porous and rhBMP-2loaded Ca-P/PLLA nanocomposite scaffolds for bone tissue engineering

机译:用于生产分层多孔的低温3D印刷和RHBMP-2加载的CA-P / PLLA纳米复合材料支架用于骨组织工程

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摘要

The performance of bone tissue engineering scaffolds can be assessed through cell responses to scaffolds, including cell attachment, infiltration, morphogenesis, proliferation, differentiation, etc, which are determined or heavily influenced by the composition, structure, mechanical properties, and biological properties (e. g. osteoconductivity and osteoinductivity) of scaffolds. Although some promising 3D printing techniques such as fused deposition modeling and selective laser sintering could be employed to produce biodegradable bone tissue engineering scaffolds with customized shapes and tailored interconnected pores, effective methods for fabricating scaffolds with welldesigned hierarchical porous structure (both interconnected macropores and surface micropores) and tunable osteoconductivity/osteoinductivity still need to be developed. In this investigation, a novel cryogenic 3D printing technique was investigated and developed for producing hierarchical porous and recombinant human bone morphogenetic protein-2 (rhBMP-2)-loaded calcium phosphate (Ca-P) nanoparticle/poly(L-lactic acid) nanocomposite scaffolds, in which the Ca-P nanoparticle-incorporated scaffold layer and rhBMP-2-encapsulated scaffold layer were deposited alternatingly using different types of emulsions as printing inks. The mechanical properties of the asprinted scaffolds were comparable to those of human cancellous bone. Sustained releases of Ca2+ ions and rhBMP-2 were achieved and the biological activity of rhBMP-2 was well-preserved. Scaffolds with a desirable hierarchical porous structure and dual delivery of Ca 2+ ions and rhBMP-2 exhibited superior performance in directing the behaviors of human bone marrow-derived mesenchymal stem cells and caused improved cell viability, attachment, proliferation, and osteogenic differentiation, which has suggested their great potential for bone tissue engineering.
机译:可以通过对支架的细胞应答评估骨组织工程支架的性能,包括细胞附着,渗透,形态发生,增殖,分化等,其由组合物,结构,机械性能和生物特性(例如支架的骨导电性和骨诱导性)。尽管一些有前途的3D打印技术,例如融合沉积建模和选择性激光烧结,但可以采用具有定制形状和定制的互联孔的可生物降解的骨组织工程支架,用良好的分层多孔结构制造支架的有效方法(互联的大孔和表面微孔)仍需要开发可调谐的骨导电性/骨诱导性。在该研究中,研究并开发了一种新的低温3D印刷技术,用于生产分层多孔和重组人骨形态发生蛋白-2(RHBMP-2) - 磷酸钙(CA-P)纳米粒子/聚(L-乳酸)纳米复合材料支架,其中Ca-P纳米粒子掺入的支架层和RHBMP-2包封的支架层配合使用不同类型的乳液作为印刷油墨沉积。根据人松质骨的机械性能与人松质骨骼相当。实现了Ca2 +离子和rHBMP-2的持续释放,RHBMP-2的生物活性良好。具有所需的等级多孔结构和Ca 2+离子和RhBMP-2的双重递送的支架表现出优异的性能,在引导人骨髓衍生的间充质干细胞的行为方面表现出具有改善的细胞活力,附着,增殖和成骨分化的性能建议他们对骨组织工程的巨大潜力。

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