首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H. Journal of Engineering in Medicine >Selective laser melting-enabled electrospinning: Introducing complexity within electrospun membranes
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Selective laser melting-enabled electrospinning: Introducing complexity within electrospun membranes

机译:选择性激光熔化的静电纺线:引入Electrom Op膜内的复杂性

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摘要

Additive manufacturing technologies enable the creation of very precise and well-defined structures that can mimic hierarchical features of natural tissues. In this article, we describe the development of a manufacturing technology platform to produce innovative biodegradable membranes that are enhanced with controlled microenvironments produced via a combination of selective laser melting techniques and conventional electrospinning. This work underpins the manufacture of a new generation of biomaterial devices that have significant potential for use as both basic research tools and components of therapeutic implants. The membranes were successfully manufactured and a total of three microenvironment designs (niches) were chosen for thorough characterisation. Scanning electron microscopy analysis demonstrated differences in fibre diameters within different areas of the niche structures as well as differences in fibre density. We also showed the potential of using the microfabricated membranes for supporting mesenchymal stromal cell culture and proliferation. We demonstrated that mesenchymal stromal cells grow and populate the membranes penetrating within the niche-like structures. These findings demonstrate the creation of a very versatile tool that can be used in a variety of tissue regeneration applications including bone healing.
机译:添加剂制造技术使得产生非常精确和明确定义的结构,可以模仿自然组织的等级特征。在本文中,我们描述了制造技术平台的发展,以生产通过选择性激光熔化技术和常规静电纺丝而产生的受控微环境增强的创新生物降解膜。这项工作是制造新一代生物材料的制造,其具有与治疗植入物的基本研究工具和组分一起具有显着的潜力。成功制造了膜,选择了三种微环境设计(核桃)以彻底表征。扫描电子显微镜分析证明了利基结构的不同区域内的纤维直径的差异以及纤维密度的差异。我们还表明潜力使用微制型膜来支持间充质基质细胞培养和增殖。我们证明了间充质基质细胞生长并填充渗透在粘土状结构内的膜。这些调查结果表明,创建一个非常通用的工具,可用于包括骨愈合的各种组织再生应用。

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