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用于骨生物应用的多孔磷酸钙玻璃微球。

Porous calcium phosphate glass microspheres for orthobiologic applications.

机构信息

Advanced Materials Research Group, Faculty of Engineering, University of Nottingham, Nottingham NG7 2RD, UK.

Wolfson STEM Centre, Division of Cancer and Stem Cells, School of Medicine, University of Nottingham, Nottingham NG7 2UH, UK.

出版信息

Acta Biomater. 2018 May;72:396-406. doi: 10.1016/j.actbio.2018.03.040. Epub 2018 Mar 29.

Abstract

UNLABELLED

Orthobiologics is a rapidly advancing field utilising cell-based therapies and biomaterials to enable the body to repair and regenerate musculoskeletal tissues. This paper reports on a cost-effective flame spheroidisation process for production of novel porous glass microspheres from calcium phosphate-based glasses to encapsulate and deliver stem cells. Careful selection of the glass and pore-forming agent, along with a manufacturing method with the required processing window enabled the production of porous glass microspheres via a single-stage manufacturing process. The morphological and physical characterisation revealed porous microspheres with tailored surface and interconnected porosity (up to 76 ± 5%) with average pore size of 55 ± 8 µm and surface areas ranging from 0.34 to 0.9 m g. Furthermore, simple alteration of the processing parameters produced microspheres with alternate unique morphologies, such as with solid cores and surface porosity only. The tuneable porosity enabled control over their surface area, degradation profiles and hence ion release rates. Furthermore, cytocompatibility of the microspheres was assessed using human mesenchymal stem cells via direct cell culture experiments and analysis confirmed that they had migrated to within the centre of the microspheres. The novel microspheres developed have huge potential for tissue engineering and regenerative medicine applications.

STATEMENT OF SIGNIFICANCE

This manuscript highlights a simple cost-effective one-step process for manufacturing porous calcium phosphate-based glass microspheres with varying control over surface pores and fully interconnected porosity via a flame spheroidisation process. Moreover, a simple alteration of the processing parameters can produce microspheres which have a solid core with surface pores only. The tuneable porosity enabled control over their surface area, degradation profiles and hence ion release rates. The paper also shows that stem cells not only attach and proliferate but more importantly migrate to within the core of the porous microspheres, highlighting applications for bone tissue engineering and regenerative medicine.

摘要

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组织工程学是一个快速发展的领域,利用基于细胞的疗法和生物材料使身体能够修复和再生肌肉骨骼组织。本文报道了一种经济有效的火焰球化工艺,用于生产新型多孔玻璃微球,以封装和输送干细胞。仔细选择玻璃和造孔剂,以及具有所需加工窗口的制造方法,使多孔玻璃微球能够通过单步制造工艺生产。形态和物理特性分析揭示了具有定制表面和互联多孔性(高达 76±5%)的多孔微球,平均孔径为 55±8μm,表面积为 0.34 至 0.9m²。此外,简单改变加工参数即可生产出具有独特形态的微球,例如具有实心核和仅表面多孔性的微球。可调孔隙率可控制其表面积、降解曲线和离子释放速率。此外,通过直接细胞培养实验评估了微球的细胞相容性,分析结果证实细胞已迁移到微球的中心。开发的新型微球在组织工程和再生医学应用中具有巨大潜力。

意义声明

本文重点介绍了一种简单、经济高效的一步法工艺,用于通过火焰球化工艺制造具有不同表面孔隙控制和完全互联孔隙率的多孔磷酸钙玻璃微球。此外,只需简单改变加工参数即可生产出仅具有表面孔隙的实心核微球。可调孔隙率可控制其表面积、降解曲线和离子释放速率。本文还表明,干细胞不仅附着和增殖,而且更重要的是迁移到多孔微球的核心内,这突出了其在骨组织工程和再生医学中的应用。

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