Graded or random – Effect of pore distribution in 3D titanium scaffolds on corrosion performance and response of hMSCs

多孔性 脚手架 材料科学 腐蚀 生物医学工程 生物相容性 组织工程 钛合金 融合 复合材料 纳米技术 化学工程 冶金 合金 医学 语言学 哲学 工程类
作者
Joanna Idaszek,Bartłomiej Wysocki,Ewa Ura‐Bińczyk,Anna Dobkowska,W. Nowak,Akiko Yamamoto,Grzegorz D. Sulka,Wojciech Święszkowski
出处
期刊:Biomaterials advances [Elsevier BV]
卷期号:163: 213955-213955 被引量:1
标识
DOI:10.1016/j.bioadv.2024.213955
摘要

Researchers agree that the ideal scaffold for tissue engineering should possess a 3D and highly porous structure, biocompatibility to encourage cell/tissue growth, suitable surface chemistry for cell attachment and differentiation, and mechanical properties that match those of the surrounding tissues. However, there is no consensus on the optimal pore distribution. In this study, we investigated the effect of pore distribution on corrosion resistance and performance of human mesenchymal stem cells (hMSC) using titanium scaffolds fabricated by laser beam powder bed fusion (PBF-LB). We designed two scaffold architectures with the same porosities (i.e., 75 %) but different distribution of pores of three sizes (200, 500, and 700 μm). The pores were either grouped in three zones (graded, GRAD) or distributed randomly (random, RAND). Microfocus X-ray computed tomography revealed that the chemically polished scaffolds had the porosity of 69 ± 4 % (GRAD) and 71 ± 4 % (RAND), and that the GRAD architecture had the higher surface area (1580 ± 101 vs 991 ± 62 mm2) and the thinner struts (221 ± 37 vs 286 ± 14 μm). The electrochemical measurements demonstrated that the apparent corrosion rate of chemically polished GRAD scaffold decreased with the immersion time extension, while that for polished RAND was increased. The RAND architecture outperformed the GRAD one with respect to hMSC proliferation (over two times higher although the GRAD scaffolds had 85 % higher initial cell retention) and migration from a monolayer. Our findings demonstrate that the pore distribution affects the biological properties of the titanium scaffolds for bone tissue engineering.

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