Chemical etching of Ti-6Al-4V biomaterials fabricated by selective laser melting enhances mesenchymal stromal cell mineralization

IF 3.9 3区 医学 Q2 ENGINEERING, BIOMEDICAL Journal of biomedical materials research. Part A Pub Date : 2024-03-21 DOI:10.1002/jbm.a.37709
Conor O'Keeffe, Marcin Kotlarz, Inês F. Gonçalves, Caitríona Lally, Daniel J. Kelly
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Abstract

Porous titanium scaffolds fabricated by powder bed fusion additive manufacturing techniques have been widely adopted for orthopedic and bone tissue engineering applications. Despite the many advantages of this approach, topological defects inherited from the fabrication process are well understood to negatively affect mechanical properties and pose a high risk if dislodged after implantation. Consequently, there is a need for further post-process surface cleaning. Traditional techniques such as grinding or polishing are not suited to lattice structures, due to lack of a line of sight to internal features. Chemical etching is a promising alternative; however, it remains unclear if changes to surface properties associated with such protocols will influence how cells respond to the material surface. In this study, we explored the response of bone marrow derived mesenchymal stem/stromal cells (MSCs) to Ti-6Al-4V whose surface was exposed to different durations of chemical etching. Cell morphology was influenced by local topological features inherited from the SLM fabrication process. On the as-built surface, topological nonhomogeneities such as partially adhered powder drove a stretched anisotropic cellular morphology, with large areas of the cell suspended across the nonhomogeneous powder interface. As the etching process was continued, surface defects were gradually removed, and cell morphology appeared more isotropic and was suggestive of MSC differentiation along an osteoblastic-lineage. This was accompanied by more extensive mineralization, indicative of progression along an osteogenic pathway. These findings point to the benefit of post-process chemical etching of additively manufactured Ti-6Al-4V biomaterials targeting orthopedic applications.

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通过选择性激光熔融技术对 Ti-6Al-4V 生物材料进行化学蚀刻可促进间充质基质细胞矿化。
利用粉末床熔融增材制造技术制造的多孔钛支架已被广泛应用于整形外科和骨组织工程。尽管这种方法有很多优点,但众所周知,制造过程中产生的拓扑缺陷会对机械性能产生负面影响,如果植入后发生移位,则会带来很大风险。因此,有必要在加工后进一步清洁表面。磨削或抛光等传统技术由于无法观察到内部特征,不适合晶格结构。化学蚀刻是一种很有前途的替代方法;然而,目前还不清楚与此类方案相关的表面特性变化是否会影响细胞对材料表面的反应。在这项研究中,我们探讨了骨髓间充质干/基质细胞(MSCs)对Ti-6Al-4V的反应,Ti-6Al-4V表面暴露于不同持续时间的化学蚀刻。细胞形态受到 SLM 制造过程中继承的局部拓扑特征的影响。在制作完成的表面上,拓扑非均质性(如部分粘附的粉末)导致了细胞形态各向异性的拉伸,大面积的细胞悬浮在非均质粉末界面上。随着蚀刻过程的继续,表面缺陷逐渐消除,细胞形态出现了更多的各向同性,表明间充质干细胞沿着成骨细胞系分化。与此同时,还出现了更广泛的矿化现象,这表明细胞正沿着成骨途径发展。这些发现表明,针对骨科应用,对添加制造的 Ti-6Al-4V 生物材料进行后处理化学蚀刻是有益的。
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来源期刊
Journal of biomedical materials research. Part A
Journal of biomedical materials research. Part A 工程技术-材料科学:生物材料
CiteScore
10.40
自引率
2.00%
发文量
135
审稿时长
3.6 months
期刊介绍: The Journal of Biomedical Materials Research Part A is an international, interdisciplinary, English-language publication of original contributions concerning studies of the preparation, performance, and evaluation of biomaterials; the chemical, physical, toxicological, and mechanical behavior of materials in physiological environments; and the response of blood and tissues to biomaterials. The Journal publishes peer-reviewed articles on all relevant biomaterial topics including the science and technology of alloys,polymers, ceramics, and reprocessed animal and human tissues in surgery,dentistry, artificial organs, and other medical devices. The Journal also publishes articles in interdisciplinary areas such as tissue engineering and controlled release technology where biomaterials play a significant role in the performance of the medical device. The Journal of Biomedical Materials Research is the official journal of the Society for Biomaterials (USA), the Japanese Society for Biomaterials, the Australasian Society for Biomaterials, and the Korean Society for Biomaterials. Articles are welcomed from all scientists. Membership in the Society for Biomaterials is not a prerequisite for submission.
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