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由薄水凝胶膜支撑的神经元细胞的便携式微图案

Portable Micropatterns of Neuronal Cells Supported by Thin Hydrogel Films.

作者信息

Nagamine Kuniaki, Hirata Takuya, Okamoto Kohei, Abe Yuina, Kaji Hirokazu, Nishizawa Matsuhiko

机构信息

Department of Bioengineering and Robotics, Graduate School of Engineering, Tohoku University, 6-6-01 Aramaki, Aoba-ku, Sendai 980-8579, Japan.

出版信息

ACS Biomater Sci Eng. 2015 May 11;1(5):329-334. doi: 10.1021/acsbiomaterials.5b00020. Epub 2015 Apr 29.

Abstract

A grid micropattern of neuronal cells was formed on a free-standing collagen film (35 μm thickness) by directing migration and extension of neurons along a Matrigel pattern previously prepared on the film by the microcontact printing method. The neurons migrated to reach the nodes on the grid pattern and extended neurites to bridge cell bodies at the nodes. The resulting neuronal micropattern on the collagen film containing culture medium can be handled and deformed with tweezers with maintenance of physiological activity of the neurons, as examined by response of cytosolic Ca concentration to a dose of bradykinin. This portability is the unique advantage of the present system that will open novel possibility of cellular engineering including the on-demand combination with analytical devices. The repetitive lamination of the film on a microelectrode chip was demonstrated for local electrical stimulation of a specific part of the grid micropattern of neurons, showing Ca wave propagation along the neurites. The molecular permeability is the further advantage of the free-standing hydrogel substrate, which allows external supply of nutrients and dosing with chemical stimulants through the film even under rolled and laminated conditions.

摘要

通过引导神经元沿着先前用微接触印刷法在膜上制备的基质胶图案迁移和延伸,在自由站立的胶原膜(厚度35μm)上形成了神经元细胞的网格微图案。神经元迁移至网格图案上的节点,并伸出神经突以连接节点处的细胞体。如通过胞质钙浓度对一定剂量缓激肽的反应所检测到的,含有培养基的胶原膜上形成的神经元微图案可用镊子操作和变形,同时保持神经元的生理活性。这种便携性是本系统的独特优势,它将为细胞工程开辟新的可能性,包括与分析设备的按需组合。已证明可将该膜重复层压在微电极芯片上,以对神经元网格微图案的特定部分进行局部电刺激,显示钙波沿神经突传播。分子渗透性是自由站立水凝胶基质的另一个优势,即使在卷起和层压条件下,它也允许通过膜从外部供应营养物质并施加化学刺激剂。

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