Epithelial cell-cell interactions in an overcrowded environment: jamming or live cell extrusion.

IF 5.7 3区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS Journal of Biological Engineering Pub Date : 2024-09-05 DOI:10.1186/s13036-024-00442-3
Ivana Pajic-Lijakovic, Milan Milivojevic, Peter V E McClintock
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Abstract

Epithelial tissues respond strongly to the mechanical stress caused by collective cell migration and are able to regulate it, which is important for biological processes such as morphogenesis, wound healing, and suppression of the spread of cancer. Compressive, tensional, and shear stress components are produced in cells when epithelial monolayers on substrate matrices are actively or passively wetted or de-wetted. Increased compressive stress on cells leads to enhanced cell-cell interactions by increasing the frequency of change the cell-cell distances, triggering various signalling pathways within the cells. This can ultimately lead either to cell jamming or to the extrusion of live cells. Despite extensive research in this field, it remains unclear how cells decide whether to jam, or to extrude a cell or cells, and how cells can reduce the compressive mechanical stress. Live cell extrusion from the overcrowded regions of the monolayers is associated with the presence of topological defects of cell alignment, induced by an interplay between the cell compressive and shear stress components. These topological defects stimulate cell re-alignment, as a part of the cells' tendency to re-establish an ordered trend of cell migration, by intensifying the glancing interactions in overcrowded regions. In addition to individual cell extrusion, collective cell extrusion has also been documented during monolayer active de-wetting, depending on the cell type, matrix stiffness, and boundary conditions. Cell jamming has been discussed in the context of the cells' contact inhibition of locomotion caused by cell head-on interactions. Since cell-cell interactions play a crucial role in cell rearrangement in an overcrowded environment, this review is focused on physical aspects of these interactions in order to stimulate further biological research in the field.

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过度拥挤环境中上皮细胞与细胞之间的相互作用:干扰还是活细胞挤压。
上皮组织对细胞集体迁移造成的机械应力反应强烈,并能对其进行调节,这对形态发生、伤口愈合和抑制癌症扩散等生物过程非常重要。当基底基质上的上皮单层被主动或被动润湿或去湿时,细胞中会产生压应力、张应力和剪切应力成分。细胞受到的压应力增加,会导致细胞-细胞间距的变化频率增加,从而增强细胞-细胞间的相互作用,触发细胞内的各种信号通路。这最终可能导致细胞堵塞或活细胞挤出。尽管在这一领域进行了广泛的研究,但目前仍不清楚细胞是如何决定是卡住还是挤出一个或多个细胞的,也不清楚细胞如何减少压缩机械应力。单层细胞拥挤区域的活细胞挤出与细胞排列的拓扑缺陷有关,这种缺陷是由细胞压应力和剪切应力相互作用引起的。这些拓扑缺陷会刺激细胞重新排列,通过加强过度拥挤区域的闪烁相互作用,使细胞重新形成有序的迁移趋势。除了单个细胞挤压外,在单层主动去湿过程中,细胞集体挤压也被记录在案,这取决于细胞类型、基质硬度和边界条件。细胞堵塞是在细胞接触抑制运动的背景下讨论的,这种运动是由细胞正面相互作用引起的。由于细胞与细胞之间的相互作用对细胞在拥挤环境中的重新排列起着至关重要的作用,因此本综述将重点放在这些相互作用的物理方面,以促进该领域的进一步生物学研究。
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来源期刊
Journal of Biological Engineering
Journal of Biological Engineering BIOCHEMICAL RESEARCH METHODS-BIOTECHNOLOGY & APPLIED MICROBIOLOGY
CiteScore
7.10
自引率
1.80%
发文量
32
审稿时长
17 weeks
期刊介绍: Biological engineering is an emerging discipline that encompasses engineering theory and practice connected to and derived from the science of biology, just as mechanical engineering and electrical engineering are rooted in physics and chemical engineering in chemistry. Topical areas include, but are not limited to: Synthetic biology and cellular design Biomolecular, cellular and tissue engineering Bioproduction and metabolic engineering Biosensors Ecological and environmental engineering Biological engineering education and the biodesign process As the official journal of the Institute of Biological Engineering, Journal of Biological Engineering provides a home for the continuum from biological information science, molecules and cells, product formation, wastes and remediation, and educational advances in curriculum content and pedagogy at the undergraduate and graduate-levels. Manuscripts should explore commonalities with other fields of application by providing some discussion of the broader context of the work and how it connects to other areas within the field.
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