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TiO₂ 掺杂磷酸盐玻璃微载体:一种用于贴壁哺乳动物细胞扩增的稳定的生物活性基质。

TiO₂-doped phosphate glass microcarriers: a stable bioactive substrate for expansion of adherent mammalian cells.

机构信息

Department of Biochemical Engineering, University College London, Torrington Place, London, UK.

出版信息

J Biomater Appl. 2013 Jul;28(1):3-11. doi: 10.1177/0885328212459093. Epub 2012 Aug 30.

Abstract

Scalable expansion of cells for regenerative cell therapy or to produce large quantities for high-throughput screening remains a challenge for bioprocess engineers. Laboratory scale cell expansion using t-flasks requires frequent passaging that exposes cells to many poorly defined bioprocess forces that can cause damage or alter their phenotype. Microcarriers offer a potential solution to scalable production, lending themselves to cell culture processes more akin to fermentation, removing the need for frequent passaging throughout the expansion period. One main problem with microcarrier expansion, however, is the difficulty in harvesting cells at the end of the process. Therefore, therapies that rely on cell delivery using biomaterial scaffolds could benefit from a microcarrier expansion system whereby the cells and microcarriers are transplanted together. In the current study, we used bioactive glass microcarriers doped with 5% TiO₂ that display a controlled rate of degradation and conducted experiments to assess biocompatibility and growth of primary fibroblast cells as a model for cell therapy products. We found that the microcarriers are highly biocompatible and facilitate cell growth in a gradual controlled manner. Therefore, even without additional biofunctionalization methods, Ti-doped bioactive glass microcarriers offer potential as a cell expansion platform.

摘要

用于再生细胞治疗的细胞的可扩展扩增或为高通量筛选生产大量细胞仍然是生物工艺工程师面临的挑战。使用 T 瓶的实验室规模细胞扩增需要频繁传代,这会使细胞暴露于许多定义不明确的生物工艺力下,从而导致细胞损伤或改变其表型。微载体为可扩展生产提供了一种潜在的解决方案,使其更适合类似于发酵的细胞培养过程,从而在整个扩增过程中无需频繁传代。然而,微载体扩增的一个主要问题是在过程结束时难以收获细胞。因此,依赖于使用生物材料支架进行细胞输送的疗法可能受益于微载体扩增系统,其中细胞和微载体一起移植。在当前的研究中,我们使用掺杂了 5%TiO₂的生物活性玻璃微载体进行实验,评估其生物相容性和原代成纤维细胞的生长情况,作为细胞治疗产品的模型。我们发现微载体具有高度的生物相容性,并以逐渐受控的方式促进细胞生长。因此,即使没有额外的生物功能化方法,Ti 掺杂的生物活性玻璃微载体也有望成为细胞扩增平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/931a/4107757/0666147aac7f/10.1177_0885328212459093-fig1.jpg

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