The impact of entrapped air bubbles on cell integration in porous metallic biomaterials

IF 1.6 Q4 ENGINEERING, BIOMEDICAL
Satoshi Migita, Reno Tsushima, Tomotaka Kishita,  Suyalatu
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引用次数: 0

Abstract

Additive manufacturing has enabled the creation of 3D porous metallic medical materials, crucial for enhancing cell ingrowth and tissue integration. However, despite extensive research on optimising pore size, inconsistencies persist in achieving optimal cells and tissues adhesion. In this study, the authors show that cell attachment and proliferation are hindered by the formation of bubbles within the pores, which may act as physical barriers. The authors fabricated porous titanium (Ti) and tantalum (Ta) scaffolds by selective laser melting and investigated the effects of bubble entrapment on cell adhesion and proliferation. The authors’ results demonstrate that bubble removal significantly enhanced cell integration. These results indicate the importance of both geometrical design and microenvironmental conditions to prevent bubble formation, ensuring cell adhesion and tissue integration in the development of next-generation porous metallic scaffolds.

Abstract Image

增材制造技术使三维多孔金属医用材料成为可能,这对促进细胞生长和组织整合至关重要。然而,尽管对优化孔隙大小进行了广泛研究,但在实现最佳细胞和组织粘附方面仍存在不一致之处。在这项研究中,作者发现细胞附着和增殖会受到孔隙内气泡形成的阻碍,气泡可能成为物理障碍。作者通过选择性激光熔融法制造了多孔钛(Ti)和钽(Ta)支架,并研究了气泡夹带对细胞粘附和增殖的影响。作者的研究结果表明,气泡的去除显著增强了细胞的整合。这些结果表明,在开发新一代多孔金属支架时,几何设计和微环境条件对于防止气泡形成、确保细胞粘附和组织整合都非常重要。
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来源期刊
Biosurface and Biotribology
Biosurface and Biotribology Engineering-Mechanical Engineering
CiteScore
1.70
自引率
0.00%
发文量
27
审稿时长
11 weeks
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