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聚二甲基硅氧烷基底硬度对角膜上皮细胞的影响。

Influence of polydimethylsiloxane substrate stiffness on corneal epithelial cells.

作者信息

Masterton Sophia, Ahearne Mark

机构信息

Department of Mechanical and Manufacturing Engineering, School of Engineering, University of Dublin, Dublin, Ireland.

Trinity Centre for Biomedical Engineering, Trinity Biomedical Science Institute, Trinity College Dublin, University of Dublin, Dublin, Ireland.

出版信息

R Soc Open Sci. 2019 Dec 4;6(12):191796. doi: 10.1098/rsos.191796. eCollection 2019 Dec.

Abstract

Many cell types are known to modulate their behaviour in response to changes in material stiffness; however, little is known about how stiffness affects corneal epithelial cells. This study aims to investigate the response of a corneal epithelial cell line to polydimethylsiloxane (PDMS) substrates with a range of Young's moduli from 10 to 1500 kPa. Cellular morphology, proliferation, differentiation and mechanobiology were examined. Cells grown on PDMS adopted the typical cobblestone morphology exhibited by the corneal epithelium. Proliferative markers pERK and Ki67 were higher in cells cultured on stiffer substrates compared with those on softer substrates. Material stiffness was also found to influence the cell phenotype with cells on stiffer substrates having higher cytokeratin 3 gene expression, a mature epithelial marker, while cells on softer substrates expressed more cytokeratin 14, a basal epithelial marker. Cells grown on softer substrates also displayed higher levels of focal adhesions and intermediate filaments compared with cells on stiff substrates. This research will aid in designing novel biomaterials for the culture and transplantation of corneal epithelial cells.

摘要

已知许多细胞类型会根据材料硬度的变化来调节其行为;然而,关于硬度如何影响角膜上皮细胞却知之甚少。本研究旨在探究一种角膜上皮细胞系对杨氏模量范围为10至1500 kPa的聚二甲基硅氧烷(PDMS)基底的反应。研究了细胞形态、增殖、分化和力学生物学。在PDMS上生长的细胞呈现出角膜上皮典型的鹅卵石形态。与较软基底上的细胞相比,在较硬基底上培养的细胞中增殖标志物pERK和Ki67更高。还发现材料硬度会影响细胞表型,较硬基底上的细胞具有更高的细胞角蛋白3基因表达,这是一种成熟的上皮标志物,而较软基底上的细胞表达更多的细胞角蛋白14,这是一种基底上皮标志物。与在硬基底上的细胞相比,在较软基底上生长的细胞还表现出更高水平的粘着斑和中间丝。这项研究将有助于设计用于角膜上皮细胞培养和移植的新型生物材料。

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