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Cell Response to Nanocrystallized Metallic Substrates Obtained through Severe Plastic Deformation

机译:通过严重的塑性变形获得的纳米晶金属基底的电池响应

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摘要

Cell—substrate interface is known to control the cell response and subsequent cell functions. Among the various biophysical signals, grain structure, which indicates the repeating arrangement of atoms in the material, has also proved to play a role of significant importance in mediating the cell activities. Moreover, refining the grain size through severe plastic deformation is known to provide the processed material with novel mechanical properties. The potential application of such advanced materials as biomedical implants has recently been evaluated by investigating the effect of different substrate grain sizes on a wide variety of cell activities. In this review, recent advances in biomedical applications of severe plastic deformation techniques are highlighted with special attention to the effect of the obtained nano/ultra-fine-grain size on cell—substrate interactions. Various severe plastic deformation techniques used for this purpose are discussed presenting a brief description of the mechanism for each process. The results obtained for each treatment on cell morphology, adhesion, proliferation, and differentiation, as well as the in vivo studies, are discussed. Finally, the advantages and challenges regarding the application of these techniques to produce multifunctional bio-implant materials are addressed.
机译:已知细胞-底物界面可控制细胞反应和随后的细胞功能。在各种生物物理信号中,表明原子在材料中重复排列的晶粒结构也被证明在介导细胞活性方面起着重要作用。此外,已知通过剧烈的塑性变形来细化晶粒尺寸以为加工的材料提供新颖的机械性能。最近,通过研究不同底物晶粒尺寸对多种细胞活性的影响,评估了这种先进材料如生物医学植入物的潜在应用。在这篇综述中,特别强调了获得的纳米/超细晶粒尺寸对细胞-基质相互作用的影响,强调了严重塑性变形技术在生物医学应用中的最新进展。讨论了用于此目的的各种严重的塑性变形技术,并简要介绍了每个过程的机理。讨论了每种处理在细胞形态,粘附,增殖和分化以及体内研究中获得的结果。最后,解决了应用这些技术生产多功能生物植入物材料的优势和挑战。

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