Cellular response of preosteoblasts to nanograined/ultrafine-grained structures

被引:64
作者
Misra, R. D. K. [1 ]
Thein-Han, W. W. [1 ]
Pesacreta, T. C. [2 ]
Hasenstein, K. H. [2 ]
Somani, M. C. [3 ]
Karjalainen, L. P. [3 ]
机构
[1] Univ Louisiana Lafayette, Ctr Struct & Funct Mat, Biomat & Biomed Engn Res Lab, Lafayette, LA 70504 USA
[2] Univ Louisiana Lafayette, Dept Biol, Lafayette, LA 70504 USA
[3] Univ Oulu, Dept Mech Engn, Oulu 90014, Finland
关键词
Nanostructured materials; Phase reversion; Stainless steel; Cell attachment; Molecular interaction; OSTEOBLAST ADHESION; MICROSTRUCTURAL EVOLUTION; TITANIUM SURFACE; FIBRONECTIN; BONE; DIFFERENTIATION; STEEL; PROLIFERATION; DEFORMATION; ATTACHMENT;
D O I
10.1016/j.actbio.2008.12.017
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Metallic materials with submicron- to nanometer-sized grains provide surfaces that are different from conventional polycrystalline materials because of the large proportion of grain boundaries with high free energy. In the study described here, the combination of cellular and molecular biology, materials science and engineering advances our understanding of cell-substrate interactions, especially the cellular activity between preosteoblasts and nanostructured metallic surfaces. Experiments on the effect of nano-/ultrafine grains have shown that cell attachment, proliferation, viability, morphology and spread are favorably modulated and significantly different from conventional coarse-grained structures. Additionally, immunofluorescence studies demonstrated stronger vinculin signals associated with actin stress fibers in the outer regions of the cells and cellular extensions on nanograined/ultrafine-grained substrate. These observations suggest enhanced cell-substrate interaction and activity. The differences in the cellular response on nanograined/ultrafine-grained and coarse-grained substrates are attributed to grain size and degree of hydrophilicity. The outcomes of the study are expected to reduce challenges to engineer bulk nanostructured materials with specific physical and surface properties for medical devices with improved cellular attachment and response. The data lay the foundation for a new branch of nanostructured materials for biomedical applications. (c) 2009 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:1455 / 1467
页数:13
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