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高压海藻酸钠包埋间充质干细胞的过程工程。

Process engineering of high voltage alginate encapsulation of mesenchymal stem cells.

机构信息

Institute for Multiphase Processes, Leibniz University Hannover, D-30167 Hannover, Germany.

Institute for Transfusion Medicine, Medical School Hannover, D-30625 Hannover, Germany.

出版信息

Mater Sci Eng C Mater Biol Appl. 2014 Mar 1;36:77-83. doi: 10.1016/j.msec.2013.11.048. Epub 2013 Dec 7.

DOI:10.1016/j.msec.2013.11.048
PMID:24433889
Abstract

Encapsulation of stem cells in alginate beads is promising as a sophisticated drug delivery system in treatment of a wide range of acute and chronic diseases. However, common use of air flow encapsulation of cells in alginate beads fails to produce beads with narrow size distribution, intact spherical structure and controllable sizes that can be scaled up. Here we show that high voltage encapsulation (≥ 15 kV) can be used to reproducibly generate spherical alginate beads (200-400 μm) with narrow size distribution (± 5-7%) in a controlled manner under optimized process parameters. Flow rate of alginate solution ranged from 0.5 to 10 ml/h allowed producing alginate beads with a size of 320 and 350 μm respectively, suggesting that this approach can be scaled up. Moreover, we found that applied voltages (15-25 kV) did not alter the viability and proliferation of encapsulated mesenchymal stem cells post-encapsulation and cryopreservation as compared to air flow. We are the first who employed a comparative analysis of electro-spraying and air flow encapsulation to study the effect of high voltage on alginate encapsulated cells. This report provides background in application of high voltage to encapsulate living cells for further medical purposes. Long-term comparison and work on alginate-cell interaction within these structures will be forthcoming.

摘要

将干细胞包封在海藻酸盐珠中,作为一种复杂的药物输送系统,有望治疗广泛的急性和慢性疾病。然而,细胞在海藻酸盐珠中的空气流包封的常见用途无法产生具有窄粒径分布、完整的球形结构和可控制的尺寸的珠,这些尺寸可以放大。在这里,我们展示了高压包封(≥15 kV)可用于在优化的工艺参数下以可控的方式重复生成具有窄粒径分布(±5-7%)的球形海藻酸盐珠(200-400 μm)。海藻酸盐溶液的流速范围为 0.5 至 10 ml/h,可分别产生 320 和 350 μm 大小的海藻酸盐珠,表明该方法可以放大。此外,我们发现与气流相比,施加的电压(15-25 kV)在包封和冷冻保存后不会改变包封间充质干细胞的活力和增殖。我们是第一个采用电喷雾和气流包封的比较分析来研究高压对海藻酸盐包封细胞的影响的人。本报告为将高压应用于封装活细胞以用于进一步的医学目的提供了背景。这些结构内的长期比较和海藻酸盐-细胞相互作用的工作即将进行。

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