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用于活细胞局部机械刺激的磁活性基底。

Magneto-active substrates for local mechanical stimulation of living cells.

机构信息

University Grenoble Alpes, CNRS, LIPhy, 38000, Grenoble, France.

University Grenoble Alpes, CNRS, Grenoble INP, Institut Néel, 38000, Grenoble, France.

出版信息

Sci Rep. 2018 Jan 23;8(1):1464. doi: 10.1038/s41598-018-19804-1.

Abstract

Cells are able to sense and react to their physical environment by translating a mechanical cue into an intracellular biochemical signal that triggers biological and mechanical responses. This process, called mechanotransduction, controls essential cellular functions such as proliferation and migration. The cellular response to an external mechanical stimulation has been investigated with various static and dynamic systems, so far limited to global deformations or to local stimulation through discrete substrates. To apply local and dynamic mechanical constraints at the single cell scale through a continuous surface, we have developed and modelled magneto-active substrates made of magnetic micro-pillars embedded in an elastomer. Constrained and unconstrained substrates are analysed to map surface stress resulting from the magnetic actuation of the micro-pillars and the adherent cells. These substrates have a rigidity in the range of cell matrices, and the magnetic micro-pillars generate local forces in the range of cellular forces, both in traction and compression. As an application, we followed the protrusive activity of cells subjected to dynamic stimulations. Our magneto-active substrates thus represent a new tool to study mechanotransduction in single cells, and complement existing techniques by exerting a local and dynamic stimulation, traction and compression, through a continuous soft substrate.

摘要

细胞能够通过将机械刺激转化为细胞内生化信号来感知和响应其物理环境,从而触发生物和机械响应。这个过程被称为力学转导,它控制着细胞的基本功能,如增殖和迁移。迄今为止,已经使用各种静态和动态系统研究了细胞对外界机械刺激的反应,但这些系统仅限于全局变形或通过离散基底进行局部刺激。为了通过连续表面在单细胞尺度上施加局部和动态力学约束,我们开发并模拟了由嵌入弹性体中的磁性微柱制成的磁活性基底。分析约束和非约束基底,以绘制由于微柱的磁致动和附着细胞而产生的表面应力。这些基底的刚性在细胞基质的范围内,并且磁性微柱在牵引力和压缩力的范围内产生细胞力范围内的局部力。作为应用,我们跟踪了受动态刺激的细胞的突起活性。因此,我们的磁活性基底代表了一种研究单细胞力学转导的新工具,通过在连续软基底上施加局部和动态刺激、牵引力和压缩力,补充了现有的技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4bf9/5780514/0460677c4a59/41598_2018_19804_Fig1_HTML.jpg

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