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喷墨打印细胞图案诱导纤维母细胞填充的 3D 胶原微结构的自组织。

Self-Organization of Fibroblast-Laden 3D Collagen Microstructures from Inkjet-Printed Cell Patterns.

机构信息

Department of Creative IT Engineering, Pohang University of Science and Technology (POSTECH), 77 Cheongam-Ro, Nam-Gu, Pohang, Gyeongbuk, 37673, Republic of Korea.

Department of Life Sciences, Pohang University of Science and Technology (POSTECH), 77 Cheongam-Ro, Nam-Gu, Pohang, Gyeongbuk, 37673, Republic of Korea.

出版信息

Adv Biosyst. 2020 May;4(5):e1900280. doi: 10.1002/adbi.201900280. Epub 2020 Mar 17.

Abstract

One of the major challenges encountered in engineering complex tissues in vitro is to increase levels of complexity at the micron scale in 3D structures. Here, a strategy to create self-organized 3D collagen microstructures by 2D micropatterning of fibroblasts is developed. Drop-on-demand inkjet printing is used to pattern fibroblast cells on a collagen substrate in pre-designed patterns and with controlled density. It is found that cell-to-ECM interaction promotes cellular self-organization of 3D microstructures on collagen hydrogel, whereas the formation of 3D microstructure is inhibited by disruption of actin polymerization. Using this phenomena, the controlled sizes and morphologies of the 3D collagen microstructures is demonstrated by manipulating the designs of cell patterns and the density of cells. Finally, this technique is applied to build a human skin model with papillary microstructures at the dermo-epidermal junction. This approach to create 3D cell-laden collagen microstructures by cell patterning provides a simple and powerful way to mimic the structures and functions of complex tissues and organs, and can make a contribution to reduce the gap between the human body and in vitro tissue models.

摘要

在体外工程复杂组织时,遇到的主要挑战之一是在 3D 结构中增加微米级的复杂性水平。在这里,开发了一种通过 2D 纤维母细胞微图案化来创建自组织 3D 胶原微结构的策略。按需喷墨打印用于在预先设计的图案和受控密度的胶原基底上对成纤维细胞进行图案化。研究发现,细胞与细胞外基质的相互作用促进了细胞在胶原水凝胶上的 3D 微结构的自组织,而肌动蛋白聚合的破坏则抑制了 3D 微结构的形成。通过操纵细胞图案的设计和细胞密度,可以证明 3D 胶原微结构的受控尺寸和形态。最后,该技术被应用于构建具有真皮-表皮交界处乳头状微结构的人皮肤模型。通过细胞图案化来创建 3D 细胞负载胶原微结构的方法为模拟复杂组织和器官的结构和功能提供了一种简单而强大的方法,并有助于缩小人体与体外组织模型之间的差距。

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