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纳米结构TiO作为人骨髓间充质干细胞黏附、生长和分化的良好基质的生物物理特性。

Biophysical characterization of nanostructured TiO as a good substrate for hBM-MSC adhesion, growth and differentiation.

作者信息

Petecchia L, Usai C, Vassalli M, Gavazzo P

机构信息

Institute of Biophysics, National Research Council, Via De Marini 6, 16149 Genova, Italy.

Institute of Biophysics, National Research Council, Via De Marini 6, 16149 Genova, Italy.

出版信息

Exp Cell Res. 2017 Sep 15;358(2):111-119. doi: 10.1016/j.yexcr.2017.06.008. Epub 2017 Jun 13.

Abstract

Mesenchymal stem cells from human bone marrow (hBM-MSC) are widely utilized for clinical applications involving bone healing. In this context, their use has been often optimized in association to variously designed titanium substrates, being this material of great use in orthopaedic implants. According to recent findings, the ability of hBM-MSC to differentiate towards a specific lineage is not only driven by biochemical signals, but physical stimuli, such as rigidity or roughness of the substrate, can also support a commitment towards osteogenic differentiation. Moreover, the presence of features with defined dimensional scales, in particular nanometer-size, also proved to elicit specific biological effects. Here we evaluated the effectiveness of a nano-patterned titanium surface in sustaining hBM-MSC adhesion, growth and differentiation by means of a panel of biophysical tools: morphometry, electrophysiology, intracellular calcium measurements and immunocytochemistry. The results substantiate the idea that this micro-textured titanium dioxide is a good surface for growth and differentiation of hBM-MSC and it exhibits a stimulating action mainly in the initial period of differentiation. Moreover, the basal concentration of free cytosolic Calcium [Ca] is confirmed to be a good hallmark of the hBM-MSC maturation stage. The study could provide relevant hints to help improving the biocompatibility and osteointegration potential of clinical titanium implants.

摘要

来自人骨髓的间充质干细胞(hBM-MSC)被广泛应用于涉及骨愈合的临床应用中。在这种情况下,它们的使用通常与各种设计的钛基底结合进行了优化,这种材料在骨科植入物中具有很大的用途。根据最近的研究结果,hBM-MSC向特定谱系分化的能力不仅受生化信号驱动,而且物理刺激,如基底的硬度或粗糙度,也可以支持其向成骨分化。此外,具有特定尺寸尺度,特别是纳米尺寸特征的存在,也被证明会引发特定的生物学效应。在这里,我们通过一系列生物物理工具:形态测量、电生理学、细胞内钙测量和免疫细胞化学,评估了纳米图案化钛表面在维持hBM-MSC粘附、生长和分化方面的有效性。结果证实了这种微纹理二氧化钛是hBM-MSC生长和分化的良好表面,并且它主要在分化初期表现出刺激作用。此外,游离胞质钙[Ca]的基础浓度被证实是hBM-MSC成熟阶段的良好标志。该研究可以提供相关线索,以帮助提高临床钛植入物的生物相容性和骨整合潜力。

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