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直接激光写入管状微塔,用于三维培养人多能干细胞源性神经元细胞。

Direct Laser Writing of Tubular Microtowers for 3D Culture of Human Pluripotent Stem Cell-Derived Neuronal Cells.

机构信息

Biomaterials and Tissue Engineering Group, BioMediTech and Faculty of Biomedical Sciences and Engineering, Tampere University of Technology , Korkeakoulunkatu 3, 33720 Tampere, Finland.

NeuroGroup, BioMediTech and Faculty of Medicine and Life Sciences, University of Tampere , Lääkärinkatu 1, 33520 Tampere, Finland.

出版信息

ACS Appl Mater Interfaces. 2017 Aug 9;9(31):25717-25730. doi: 10.1021/acsami.7b05536. Epub 2017 Jul 31.

DOI:10.1021/acsami.7b05536
PMID:28697300
Abstract

As the complex structure of nervous tissue cannot be mimicked in two-dimensional (2D) cultures, the development of three-dimensional (3D) neuronal cell culture platforms is a topical issue in the field of neuroscience and neural tissue engineering. Computer-assisted laser-based fabrication techniques such as direct laser writing by two-photon polymerization (2PP-DLW) offer a versatile tool to fabricate 3D cell culture platforms with highly ordered geometries in the size scale of natural 3D cell environments. In this study, we present the design and 2PP-DLW fabrication process of a novel 3D neuronal cell culture platform based on tubular microtowers. The platform facilitates efficient long-term 3D culturing of human neuronal cells and supports neurite orientation and 3D network formation. Microtower designs both with or without intraluminal guidance cues and/or openings in the tower wall are designed and successfully fabricated from Ormocomp. Three of the microtower designs are chosen for the final culture platform: a design with openings in the wall and intralumial guidance cues (webs and pillars), a design with openings but without intraluminal structures, and a plain cylinder design. The proposed culture platform offers a promising concept for future 3D cultures in the field of neuroscience.

摘要

由于神经组织的复杂结构无法在二维(2D)培养物中模拟,因此开发三维(3D)神经元细胞培养平台是神经科学和神经组织工程领域的一个热门问题。计算机辅助的基于激光的制造技术,如双光子聚合(2PP-DLW)的直接激光写入,为制造具有高度有序几何形状的 3D 细胞培养平台提供了一种通用工具,其尺寸与天然 3D 细胞环境相当。在本研究中,我们提出了一种基于管状微塔的新型 3D 神经元细胞培养平台的设计和 2PP-DLW 制造工艺。该平台有利于高效的长期 3D 培养人神经元细胞,并支持轴突定向和 3D 网络形成。设计了带有或不带有管腔内导向线索和/或塔壁开口的微塔设计,并成功地由 Ormocomp 制造。选择了三种微塔设计用于最终的培养平台:一种带有壁上开口和管腔内导向线索(网和支柱)的设计,一种带有开口但没有管腔内结构的设计,以及一种普通圆柱设计。该提出的培养平台为神经科学领域的未来 3D 培养提供了一个有前途的概念。

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