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Fabrication Aspects of Porous Biomaterials in Orthopedic Applications: A Review

机译:骨科应用中多孔生物材料的制造方面:综述

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Porous biomaterials have been widely used in a variety of orthopedic applications. Porous scaffolds stimulate the cellular responses and accelerate osteogenesis. The porous structure of scaffolds, as well as their compositions, dictate cellular responses such as their adhesion, penetration, differentiation, nutrition diffusion, and bone in-growth. During the last two decades, tremendous efforts have been devoted by researchers on innovative processing technologies of porous ceramics, metals, polymers, and glasses, resulting in a wide variety of porous architectures with substantial improvements in properties. Design and fabrication of porous scaffolds are complex issues that can jeopardize scaffolds’ biological, mechanical, and physiochemical properties. This paper intends to comprehensively review the processing techniques used in fabricating porous biomaterials including ceramics, polymers, metals, and glasses along with correlating with their biological and mechanical performances. From a macroscopic perspective, pore size distribution, interconnectivity, pore morphology, and porosity play critical roles in bone formation in vivo. From a microscopic viewpoint, the adhesion–retention of proteins, which eventually affect some cellular fates, and absorption–delivery of therapeutic agents can be tailored by microtextured surfaces. Various processing techniques such as partial sintering, sacrificial fugitives, foaming, freeze casting, metal injection molding, rapid prototyping, etc., and their associated parameters in designing of porous biomaterials are reviewed, with specific examples of their applications. The remainder of the paper is organized as follows. First, the paper describes correlations of porosity characteristics with biological properties. Subsequently, mechanical properties of porous scaffolds are discussed. Finally, a summary of this review and future directions are presented.
机译:多孔生物材料已广泛用于各种整形外科应用。多孔支架刺激细胞反应并加速骨质发生。支架的多孔结构以及它们的组合物,决定了细胞反应,例如它们的粘附,渗透,分化,营养扩散和骨内生长。在过去的二十年中,研究人员对多孔陶瓷,金属,聚合物和眼镜的创新加工技术进行了巨大的努力,导致各种多孔架构具有大量改善的性质。多孔支架的设计和制作是复杂的问题,可以危及支架的生物,机械和生理化学性质。本文旨在全面审查制造多孔生物材料中使用的加工技术,包括陶瓷,聚合物,金属和玻璃以及与其生物和机械性能相关的相关性。从宏观的角度来看,孔径分布,互连,孔形态,孔隙度在体内骨形成中发挥着关键作用。从显微视点,蛋白质的粘附保留,最终影响一些细胞置的粘合剂,并且可以通过微块表面来定制治疗剂的吸收 - 递送治疗剂。综述了各种加工技术,如部分烧结,牺牲杂志,发泡,冻结,冷冻铸造,快速成型,以及它们在设计多孔生物材料设计中的相关参数,具体实施例。在本文的其余部分安排如下。首先,本文描述了孔隙率特征与生物学特性的相关性。随后,讨论了多孔支架的机械性能。最后,提出了本次审查和未来方向的摘要。

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