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模仿囊肿三维结构的纳米纤维纸浆空心球

Nanofiber-Mâché Hollow Ball Mimicking the Three-Dimensional Structure of a Cyst.

作者信息

Huang Wan-Ying, Hashimoto Norichika, Kitai Ryuhei, Suye Shin-Ichiro, Fujita Satoshi

机构信息

Department of Advanced Interdisciplinary Science and Technology, Graduate School of Engineering, University of Fukui, 3-9-1 Bukyo, Fukui-shi 910-8507, Japan.

Department of Neurosurgery, Fukui Health Sciences University, 55-13-1 Egami, Fukui-shi 910-3190, Japan.

出版信息

Polymers (Basel). 2021 Jul 11;13(14):2273. doi: 10.3390/polym13142273.

Abstract

The occasional malignant transformation of intracranial epidermoid cysts into squamous cell carcinomas remains poorly understood; the development of an in vitro cyst model is urgently needed. For this purpose, we designed a hollow nanofiber sphere, the "nanofiber-mâché ball." This hollow structure was fabricated by electrospinning nanofiber onto alginate hydrogel beads followed by dissolving the beads. A ball with approximately 230 mm inner volume provided a fibrous geometry mimicking the topography of the extracellular matrix. Two ducts located on opposite sides provided a route to exchange nutrients and waste. This resulted in a concentration gradient that induced oriented migration, in which seeded cells adhered randomly to the inner surface, formed a highly oriented structure, and then secreted a dense web of collagen fibrils. Circumferentially aligned fibers on the internal interface between the duct and hollow ball inhibited cells from migrating out of the interior, similar to a fish bottle trap. This structure helped to form an adepithelial layer on the inner surface. The novel nanofiber-mâché technique, using a millimeter-sized hollow fibrous scaffold, is excellently suited to investigating cyst physiology.

摘要

颅内表皮样囊肿偶尔恶变为鳞状细胞癌的机制仍不清楚;迫切需要建立一种体外囊肿模型。为此,我们设计了一种中空纳米纤维球,即“纳米纤维马卡球”。这种中空结构是通过将纳米纤维静电纺丝到海藻酸盐水凝胶珠上,然后溶解珠子而制成的。一个内部体积约为230立方毫米的球提供了一种模仿细胞外基质拓扑结构的纤维几何形状。位于相对两侧的两个管道提供了营养物质和废物交换的途径。这导致了一个浓度梯度,诱导定向迁移,接种的细胞随机粘附在内表面,形成高度定向的结构,然后分泌密集的胶原纤维网。管道和中空球之间内部界面上沿圆周排列的纤维抑制细胞从内部迁移出去,类似于鱼瓶陷阱。这种结构有助于在内表面形成上皮下层。使用毫米大小的中空纤维支架的新型纳米纤维马卡技术非常适合研究囊肿生理学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c7d7/8309222/38f54116babf/polymers-13-02273-sch001.jpg

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