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采用黏附培养系统制备具有穹顶状内皮管网络的球体。

Fabrication of Spheroids with Dome-Shaped Endothelial Tube Networks by an Adhesive Culture System.

机构信息

Nippon Shokubai Co., Ltd, 5-8 Nishi Otabi-cho, Suita, Osaka, 564-0034, Japan.

出版信息

Adv Biosyst. 2020 Oct;4(10):e2000120. doi: 10.1002/adbi.202000120. Epub 2020 Sep 9.

DOI:10.1002/adbi.202000120
PMID:32902183
Abstract

3D functional tissues, such as spheroids fabricated by mesenchymal stem cells (MSCs), which can mimic parts of tissues and organs, have recently been extensively studied in the fields of regenerative medicine and drug discovery. In this study, spheroids containing endothelial tubular structures are fabricated by use of a novel 3D culture plate, "MicoCell." As MicoCell has a mild cell adhesive surface and multicavity structures, it can provide multiple attached spheroids at the same time (about ≈10 to ≈10 spheroids). Spheroids can be fabricated without using serum, and are easily collected by simple pipetting and no use of enzyme. For the fabrication of spheroids containing endothelial tubular structures, MSCs and endothelial cells are co-cultured with MicoCell. Surprisingly, endothelial tubular structures are found to extend upward from the bottom where the spheroids attach onto, forming a dome-shaped morphology. Notably, some tubular structures in the spheroids have a basement membrane and markedly improved oxygen level of the inner part of spheroids. Moreover, as spheroids attach onto the bottom, they do not require any pre-treatment such as embedding into gel before microscopic observation using an optical clearing reagent. These results indicate that the culture plates will be suitable for clinical and pharmaceutical applications.

摘要

3D 功能性组织,例如由间充质干细胞 (MSCs) 制造的球体,能够模拟部分组织和器官,最近在再生医学和药物发现领域得到了广泛研究。在这项研究中,使用新型 3D 培养板“MicoCell”制造含有内皮管状结构的球体。由于 MicoCell 具有温和的细胞附着表面和多腔结构,它可以同时提供多个附着的球体(约 10 至 10 个球体)。可以在不使用血清的情况下制造球体,并且可以通过简单的移液和不使用酶来轻松收集。为了制造含有内皮管状结构的球体,将 MSCs 和内皮细胞与 MicoCell 共培养。令人惊讶的是,发现内皮管状结构从球体附着的底部向上延伸,形成穹顶状形态。值得注意的是,球体中的一些管状结构具有基底膜,并显著提高了球体内部的氧气水平。此外,由于球体附着在底部,因此在使用光学透明试剂进行微观观察之前,不需要任何预处理,例如嵌入凝胶中。这些结果表明,培养板将适用于临床和制药应用。

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