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自组装微组织的封装阵列:球形微胶囊的替代方案。

Encapsulated arrays of self-assembled microtissues: an alternative to spherical microcapsules.

作者信息

Rago Adam P, Chai Peter R, Morgan Jeffrey R

机构信息

Department of Molecular Pharmacology, Physiology, and Biotechnology, Center for Biomedical Engineering, Brown University, Providence, Rhode Island 02912, USA.

出版信息

Tissue Eng Part A. 2009 Feb;15(2):387-95. doi: 10.1089/ten.tea.2008.0107.

Abstract

Micro-encapsulation and immuno-isolation of allogenic and xenogenic tissues and cells is a promising method for the treatment of a variety of metabolic disorders. Many years have been spent optimizing spherical microcapsules, yet micro-encapsulation has not achieved its full clinical potential. As an alternative to spherical microcapsules, this study presents an alginate-encapsulated array of self-assembled three-dimensional (3D) microtissues. Monodispersed HepG2 cells were seeded onto a micro-molded agarose gel. Cells settled to the bottom of the mold recesses and self-assembled 3D microtissues (n = 822) within 24 h. This array of densely packed microtissues was encapsulated in situ using alginate. When separated from the agarose micro-mold, the encapsulated array had HepG2 microtissues in close proximity to its surface. This surface could be further modified by a simple dipping process. Microtissue size, viability, and albumin secretion were all controllable by the number of cells seeded onto the original agarose micro-mold, and microtissue shape and spacing were controllable by the design of the micro-mold. This approach to encapsulation and the use of self-assembled/self-packing 3D microtissues offers new design possibilities that may help to address certain limitations of conventional microcapsules.

摘要

同种异体和异种组织及细胞的微囊化和免疫隔离是治疗多种代谢紊乱的一种有前景的方法。多年来一直在优化球形微胶囊,但微囊化尚未充分发挥其临床潜力。作为球形微胶囊的替代方案,本研究提出了一种藻酸盐封装的自组装三维(3D)微组织阵列。将单分散的HepG2细胞接种到微成型的琼脂糖凝胶上。细胞沉降到模具凹槽底部,并在24小时内自组装成3D微组织(n = 822)。使用藻酸盐将这一紧密堆积的微组织阵列原位封装。当与琼脂糖微模具分离时,封装阵列的表面附近有HepG2微组织。该表面可通过简单的浸渍过程进一步修饰。微组织的大小、活力和白蛋白分泌均可通过接种到原始琼脂糖微模具上的细胞数量来控制,微组织的形状和间距可通过微模具的设计来控制。这种封装方法以及自组装/自堆积3D微组织的使用提供了新的设计可能性,可能有助于解决传统微胶囊的某些局限性。

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