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三维上皮干细胞微环境的仿生精密工程。

Bioinspired Precision Engineering of Three-Dimensional Epithelial Stem Cell Microniches.

机构信息

Division of Regenerative Medicine and Cellular Therapies, School of Pharmacy, Nottingham Biodiscovery Institute, University of Nottingham, Nottingham, NG7 2RD, UK.

Academic Ophthalmology, Division of Clinical Neuroscience, University of Nottingham, Nottingham, NG7 2UH, UK.

出版信息

Adv Biosyst. 2020 Jun;4(6):e2000016. doi: 10.1002/adbi.202000016. Epub 2020 Apr 24.

Abstract

Maintenance of the epithelium relies on stem cells residing within specialized microenvironments, known as epithelial crypts. Two-photon polymerization (2PP) is a valuable tool for fabricating 3D micro/nanostructures for stem cell niche engineering applications. Herein, biomimetic gelatin methacrylate-based constructs, replicating the precise geometry of the limbal epithelial crypt structures (limbal stem cell "microniches") as an exemplar epithelial niche, are fabricated using 2PP. Human limbal epithelial stem cells (hLESCs) are seeded within the microniches in xeno-free conditions to investigate their ability to repopulate the crypts and the expression of various differentiation markers. Cell proliferation and a zonation in cell phenotype along the z-axis are observed without the use of exogenous signaling molecules. Significant differences in cell phenotype between cells located at the base of the microniche and those situated towards the rim are observed, demonstrating that stem cell fate is strongly influenced by its location within a niche and the geometrical details of where it resides. This study provides insight into the influence of the niche's spatial geometry on hLESCs and demonstrates a flexible approach for the fabrication of biomimetic crypt-like structures in epithelial tissues. This has significant implications for regenerative medicine applications and can ultimately lead to implantable synthetic "niche-based" treatments.

摘要

上皮组织的维持依赖于位于特殊微环境(称为上皮隐窝)中的干细胞。双光子聚合(2PP)是用于制造用于干细胞巢工程应用的 3D 微/纳米结构的有价值的工具。本文中,通过 2PP 制造了仿生明胶甲基丙烯酸盐基构建体,其复制了角膜缘上皮隐窝结构(角膜缘干细胞“微龛”)的精确几何形状作为典型的上皮龛。在无异种条件下,将人角膜缘上皮干细胞(hLESCs)接种到微龛中,以研究它们重新填充隐窝的能力和各种分化标志物的表达。观察到细胞增殖和细胞表型沿 z 轴的分区,而无需使用外源性信号分子。在微龛底部的细胞和位于边缘的细胞之间观察到细胞表型的显著差异,表明干细胞命运受到其在龛内的位置和其所在位置的空间几何形状的强烈影响。这项研究深入了解了龛的空间几何形状对 hLESCs 的影响,并展示了一种用于制造上皮组织中仿生隐窝样结构的灵活方法。这对于再生医学应用具有重要意义,并最终可以导致可植入的合成“基于龛”的治疗方法。

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