材料科学
骨整合
钛
多孔性
生物医学工程
生物材料
再生(生物学)
骨组织
磁导率
过程(计算)
植入
复合材料
纳米技术
计算机科学
化学
外科
冶金
医学
生物化学
膜
细胞生物学
生物
操作系统
作者
Anderson Camargo Moreira,Celso Peres Fernandes,Marize Varella de Oliveira,Mônica Talarico Duailibi,Alexandre Antunes Ribeiro,Sílvio Eduardo Duailibi,Flávio de Ávila Kfouri,Iara Frangiotti Mantovani
标识
DOI:10.1088/1748-605x/ac246b
摘要
In order to support bone tissue regeneration, porous biomaterial implants (scaffolds) must offer chemical and mechanical properties, besides favorable fluid transport. Titanium implants provide these requirements, and depending on their microstructural parameters, the osteointegration process can be stimulated. The pore structure of scaffolds plays an essential role in this process, guiding fluid transport for neo-bone regeneration. The objective of this work was to analyze geometric and morphologic parameters of the porous microstructure of implants and analyze their influences in the bone regeneration process, and then discuss which parameters are the most fundamental. Bone ingrowths into two different sorts of porous titanium implants were analyzed after 7, 14, 21, 28, and 35 incubation days in experimental animal models. Measurements were accomplished with x-ray microtomography image analysis from rabbit tibiae, applying a pore-network technique. Taking into account the most favorable pore sizes for neo-bone regeneration, a novel approach was employed to assess the influence of the pore structure on this process: the analyses were carried out considering minimum pore and connection sizes. With this technique, pores and connections were analyzed separately and the influence of connectivity was deeply evaluated. This investigation showed a considerable influence of the size of connections on the permeability parameter and consequently on the neo-bone regeneration. The results indicate that the processing of porous scaffolds must be focused on deliver pore connections that stimulate the transport of fluids throughout the implant to be applied as a bone replacer.
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