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用于重建毛囊样微结构的多层凝胶点样装置

Multilayered Gel-Spotting Device for Reconstruction of Hair Follicle-like Microstructure.

作者信息

Sugeno Aki, Sumi Takahiro, Sato-Yazawa Hanako, Yazawa Takuya, Inoue Hajime, Miyata Shogo

机构信息

Graduate School of Science and Technology, Keio University, 3-14-1 Hiyoshi, Yokohama 223-8522, Japan.

Department of Pathology, Dokkyo Medical University, Tochigi 321-0293, Japan.

出版信息

Micromachines (Basel). 2023 Aug 22;14(9):1651. doi: 10.3390/mi14091651.

Abstract

Hair follicles play an important role in hair development. This study aimed to develop a microgel-spotting device to fabricate a multilayered gel bead culture model and to mimic the early development of skin appendages to regenerate hair follicles . The model consists of an alginate gel layer containing cytokines as the core layer, a collagen gel layer containing mouse embryonic stem cells as the middle layer, and a collagen gel layer containing fetus-derived epidermal cells as the outer layer. A concentration gradient of cytokines is formed, which promotes interactions between epidermal and stem cells. Histological and immunnohistological analyses confirmed the reconstruction of hair follicle structures. As a result, the cell number and gel bead size could be precisely controlled by the developed microgel-spotting device. In the multilayered gel bead, the embryonic and epidermal cells cultured with the cytokine gradient formed cell aggregates with keratinized tissue in the center similar to "native" hair follicle structure. Sweat gland-like luminal tissue and erector pilorum-like structures were also observed around aggregates with concentric structures. In conclusion, the multilayered gel bead culture model demonstrated potential for hair follicle regeneration. The findings of this study provide insight into the early development of skin appendages.

摘要

毛囊在毛发发育中起着重要作用。本研究旨在开发一种微凝胶点样装置,以构建多层凝胶珠培养模型,并模拟皮肤附属器的早期发育以再生毛囊。该模型由含有细胞因子的藻酸盐凝胶层作为核心层、含有小鼠胚胎干细胞的胶原凝胶层作为中间层以及含有胎儿来源表皮细胞的胶原凝胶层作为外层组成。形成了细胞因子浓度梯度,促进了表皮细胞与干细胞之间的相互作用。组织学和免疫组织学分析证实了毛囊结构的重建。结果,所开发的微凝胶点样装置能够精确控制细胞数量和凝胶珠大小。在多层凝胶珠中,与细胞因子梯度一起培养的胚胎细胞和表皮细胞形成了细胞聚集体,其中心有角质化组织,类似于“天然”毛囊结构。在具有同心结构的聚集体周围还观察到了汗腺样腔组织和立毛肌样结构。总之,多层凝胶珠培养模型显示出毛囊再生的潜力。本研究结果为皮肤附属器的早期发育提供了见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b6c5/10535646/ddb4bb6fdc8a/micromachines-14-01651-g001.jpg

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