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小鼠胚胎干细胞中多能性标志物与生物力学特性的协变

Covariation of Pluripotency Markers and Biomechanical Properties in Mouse Embryonic Stem Cells.

作者信息

Brookes Oliver, Thorpe Stephen D, Rigby Evans Olga, Keeling Michael C, Lee David A

机构信息

School of Engineering and Materials Science, Queen Mary University of London, London, United Kingdom.

UCD School of Medicine, UCD Conway Institute of Biomolecular and Biomedical Research, University College Dublin, Dublin, Ireland.

出版信息

Front Cell Dev Biol. 2022 May 16;10:858884. doi: 10.3389/fcell.2022.858884. eCollection 2022.

Abstract

Pluripotent cells are subject to much interest as a source of differentiated cellular material for research models, regenerative medical therapies and novel applications such as lab-cultured meat. Greater understanding of the pluripotent state and control over its differentiation is therefore desirable. The role of biomechanical properties in directing cell fate and cell behavior has been increasingly well described in recent years. However, many of the mechanisms which control cell morphology and mechanical properties in somatic cells are absent from pluripotent cells. We leveraged naturally occurring variation in biomechanical properties and expression of pluripotency genes in murine ESCs to investigate the relationship between these parameters. We observed considerable variation in a Rex1-GFP expression reporter line and found that this variation showed no apparent correlation to cell spreading morphology as determined by circularity, Feret ratio, phase contrast brightness or cell spread area, either on a parameter-by-parameter basis, or when evaluated using a combined metric derived by principal component analysis from the four individual criteria. We further confirmed that cell volume does not co-vary with Rex1-GFP expression. Interestingly, we did find that a subpopulation of cells that were readily detached by gentle agitation collectively exhibited higher expression of , and reduced expression, suggesting that elevated pluripotency gene expression may correlate with reduced adhesion to the substrate. Furthermore, atomic force microscopy and quantitative fluorescent imaging revealed a connection between cell stiffness and Rex1-GFP reporter expression. Cells expressing high levels of Rex1-GFP are consistently of a relatively low stiffness, while cells with low levels of Rex1-GFP tend toward higher stiffness values. These observations indicate some interaction between pluripotency gene expression and biomechanical properties, but also support a strong role for other interactions between the cell culture regime and cellular biomechanical properties, occurring independently of the core transcriptional network that supports pluripotency.

摘要

多能细胞作为研究模型、再生医学疗法及新型应用(如实验室培养肉)中分化细胞材料的来源,备受关注。因此,更深入地了解多能状态并控制其分化是很有必要的。近年来,生物力学特性在指导细胞命运和细胞行为方面的作用已得到越来越充分的描述。然而,多能细胞缺乏许多控制体细胞形态和力学特性的机制。我们利用小鼠胚胎干细胞中生物力学特性和多能性基因表达的自然变异来研究这些参数之间的关系。我们在一个Rex1-GFP表达报告系中观察到了相当大的变异,并且发现这种变异与通过圆形度、费雷特直径比、相差亮度或细胞铺展面积所确定的细胞铺展形态没有明显的相关性,无论是逐个参数分析,还是使用由主成分分析从这四个单独标准得出的综合指标进行评估时都是如此。我们进一步证实细胞体积与Rex1-GFP表达不存在共变关系。有趣的是,我们确实发现,通过轻轻搅拌容易分离的细胞亚群共同表现出更高的[此处原文缺失相关基因]表达,以及降低的[此处原文缺失相关基因]表达,这表明多能性基因表达升高可能与对底物的粘附减少相关。此外,原子力显微镜和定量荧光成像揭示了细胞硬度与Rex1-GFP报告基因表达之间的联系。高表达Rex1-GFP的细胞始终具有相对较低的硬度,而低表达Rex1-GFP的细胞往往具有较高的硬度值。这些观察结果表明多能性基因表达与生物力学特性之间存在一些相互作用,但也支持细胞培养条件与细胞生物力学特性之间其他相互作用的重要作用,这些相互作用独立于支持多能性的核心转录网络而发生。

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