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按需细胞分离的 3D 水凝胶培养系统的开发。

Development of 3D hydrogel culture systems with on-demand cell separation.

机构信息

W.H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology and Emory University, Atlanta, GA, USA.

出版信息

Biotechnol J. 2013 Apr;8(4):485-95. doi: 10.1002/biot.201200200. Epub 2013 Feb 28.

Abstract

Recently there has been an increased interest in the effects of paracrine signaling between groups of cells, particularly in the context of better understanding how stem cells contribute to tissue repair. Most current 3D co-culture methods lack the ability to effectively separate two cell populations after the culture period, which is important for simultaneously analyzing the reciprocal effects of each cell type on the other. Here, we detail the development of a 3D hydrogel co-culture system that allows us to culture different cell types for up to 7 days and subsequently separate and isolate the different cell populations using enzyme-sensitive glues. Separable 3D co-culture laminates were prepared by laminating PEG-based hydrogels with enzyme-degradable hydrogel adhesives. Encapsulated cell populations exhibited good segregation with well-defined interfaces. Furthermore, constructs can be separated on-demand upon addition of the appropriate enzyme, while cell viability remains high throughout the culture period, even after laminate separation. This platform offers great potential for a variety of basic cell signaling studies as the incorporation of an enzyme-sensitive adhesive interface allows the on-demand separation of individual cell populations for immediate analysis or further culture to examine persistence of co-culture effects and paracrine signaling on cell populations.

摘要

最近,人们对细胞群之间旁分泌信号的影响越来越感兴趣,特别是在更好地理解干细胞如何促进组织修复方面。大多数当前的 3D 共培养方法缺乏在培养期后有效分离两种细胞群体的能力,这对于同时分析每种细胞类型对另一种细胞类型的相互影响非常重要。在这里,我们详细介绍了一种 3D 水凝胶共培养系统的开发,该系统允许我们培养不同类型的细胞长达 7 天,然后使用酶敏感胶来分离和分离不同的细胞群体。通过用酶降解水凝胶粘合剂将基于 PEG 的水凝胶层压,可以制备可分离的 3D 共培养层压板。包封的细胞群体表现出良好的分离,具有明确定义的界面。此外,在添加适当的酶时可以按需分离构建体,而细胞活力在整个培养期间保持较高水平,即使在层压板分离后也是如此。该平台为各种基本细胞信号研究提供了巨大的潜力,因为酶敏感的粘合界面的加入允许按需分离单个细胞群体,以便立即分析或进一步培养,以检查共培养效应和旁分泌信号对细胞群体的持久性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a56b/3747669/87ef964ea38c/nihms-505192-f0001.jpg

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本文引用的文献

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High-throughput combinatorial cell co-culture using microfluidics.高通量组合细胞共培养微流控技术。
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