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各向异性多通道胶原凝胶(MCCG)引导 PC12 细胞神经突样突起的生长方向。

Anisotropic Multi-channel Collagen Gel (MCCG) Guides the Growth Direction of the Neurite-like Processes of PC12 Cells.

机构信息

Graduate School of Life Science, Hokkaido University, Kita-ku Kita 10 Nishi 8, Sapporo, 060-0810, Hokkaido, Japan.

Faculty of Advanced Life Science, Hokkaido University, Kita-ku, Kita 10 Nishi 8, Sapporo, Hokkaido, 060-0810, Japan.

出版信息

Sci Rep. 2018 Sep 17;8(1):13901. doi: 10.1038/s41598-018-32156-0.

Abstract

Hydrogels made of various materials using a variety of methods have been extensively studied for use in tissue engineering, and collagen is one of the most common material used for its biocompatibility due to it being a major component of the extracellular matrix (ECM). Furthermore, the alignment of collagen fibres has been shown to direct the growth of neurites, an important criterion for engineering nervous tissues. The Multi-channel Collagen Gel (MCCG) has collagen fibres aligned circumferentially around the channel structures of the gel, and we predicted that the MCCG could guide the growth direction of neurites. In this study, we showed that the growth pathway of the neurite-like processes of PC12 cells were guided in MCCG but not in normal collagen gel (COL). The gelation of collagen gels are known to be affected by ionic concentrations, and hence we also investigated the effects of different concentrations of NaCl on the properties of MCCG. We found that, despite differences in channel density, spacing between channels, and degree of collagen fibre alignment, all MCCGs had similar guiding properties on the growth of neurites. Therefore, we believe that anisotropic MCCG could be a useful biomaterial for neural tissue engineering in the future.

摘要

已广泛研究了使用各种方法由各种材料制成的水凝胶在组织工程中的应用,而胶原蛋白由于是细胞外基质(ECM)的主要成分之一,因其生物相容性而成为最常用的材料之一。此外,已经证明胶原蛋白纤维的排列可以指导神经突的生长,这是工程化神经组织的重要标准。多通道胶原凝胶(MCCG)具有沿凝胶通道结构周向排列的胶原纤维,我们预测 MCCG 可以引导神经突的生长方向。在这项研究中,我们表明,PC12 细胞的神经突样过程的生长途径在 MCCG 中受到引导,但在正常胶原凝胶(COL)中不受引导。众所周知,胶原凝胶的胶凝作用受离子浓度的影响,因此我们还研究了不同浓度的 NaCl 对 MCCG 性质的影响。我们发现,尽管通道密度、通道之间的间距和胶原纤维排列程度存在差异,但所有 MCCG 对神经突生长的引导特性相似。因此,我们相信各向异性的 MCCG 在未来可能成为神经组织工程的有用生物材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f112/6141479/d85cc1c3ad30/41598_2018_32156_Fig1_HTML.jpg

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