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首页> 外文期刊>Cell adhesion & migration >Probing cytoskeletal pre-stress and nuclear mechanics in endothelial cells with spatiotemporally controlled (de-)adhesion kinetics on micropatterned substrates
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Probing cytoskeletal pre-stress and nuclear mechanics in endothelial cells with spatiotemporally controlled (de-)adhesion kinetics on micropatterned substrates

机译:用空气控制(DE-)粘附性动力学在微型解放基板上的内皮细胞探测细胞骨骼预应力和核电机

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摘要

The mechanical properties of living cells reflect their propensity to migrate and respond to external forces. Both cellular and nuclear stiffnesses are strongly influenced by the rigidity of the extracellular matrix (ECM) through reorganization of the cyto- and nucleoskeletal protein connections. Changes in this architectural continuum affect cell mechanics and underlie many pathological conditions. In this context, an accurate and combined quantification of the mechanical properties of both cells and nuclei can contribute to a better understanding of cellular (dys-)function. To address this challenge, we have established a robust method for probing cellular and nuclear deformation during spreading and detachment from micropatterned substrates. We show that (de-)adhesion kinetics of endothelial cells are modulated by substrate stiffness and rely on the actomyosin network. We combined this approach with measurements of cell stiffness by magnetic tweezers to show that relaxation dynamics can be considered as a reliable parameter of cellular pre-stress in adherent cells. During the adhesion stage, large cellular and nuclear deformations occur over a long time span (>60min). Conversely, nuclear deformation and condensed chromatin are relaxed in a few seconds after detachment. Finally, our results show that accumulation of farnesylated prelamin leads to modifications of the nuclear viscoelastic properties, as reflected by increased nuclear relaxation times. Our method offers an original and non-intrusive way of simultaneously gauging cellular and nuclear mechanics, which can be extended to high-throughput screens of pathological conditions and potential countermeasures.
机译:活细胞的机械性能反映了它们对外力迁移和响应外力的倾向。细胞和核刚度都受细胞外基质(ECM)通过重组细胞和核心蛋白联系的刚性受到强烈影响。这种建筑连续体的变化影响细胞力学并提出了许多病理条件。在这种情况下,细胞和细胞核的机械性能的准确和综合定量可以有助于更好地理解细胞(Dys-)功能。为了解决这一挑战,我们已经建立了一种稳健的方法,用于在散布和脱离的展开和脱离的微型解放基板中探测蜂窝和核变形。我们表明(De-)内皮细胞的粘附动力学通过衬底刚度调节并依赖于血小杂素网络。我们将这种方法与磁镊子测量相结合,以显示粘附细胞中的弛豫动力学可以被认为是蜂窝状预应力的可靠参数。在粘合阶段,在长时间(> 60min)上发生大细胞和核变形。相反,核变形和浓缩染色质在分离后几秒钟轻松放松。最后,我们的结果表明,由于核松弛时间增加,法牛排的前素蛋白的累积导致核粘弹性的修饰。我们的方法提供了一种同时测量蜂窝和核电机的原始和非侵入性的方式,可以扩展到病理条件的高通量屏幕和潜在的对策。

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  • 来源
    《Cell adhesion & migration》 |2017年第1期|共12页
  • 作者单位

    Univ Mons Res Inst Biosci Mechanobiol &

    Soft Matter Grp Lab Interfaces &

    Fluides Complexes Mons;

    Univ Mons Res Inst Biosci Mechanobiol &

    Soft Matter Grp Lab Interfaces &

    Fluides Complexes Mons;

    Univ Antwerp Dept Pharmaceut Biomed &

    Vet Sci Lab Cell Biol &

    Histol Antwerp Belgium;

    Univ Mons Res Inst Biosci Mechanobiol &

    Soft Matter Grp Lab Interfaces &

    Fluides Complexes Mons;

    Univ Mons Res Inst Biosci Mechanobiol &

    Soft Matter Grp Lab Interfaces &

    Fluides Complexes Mons;

    Univ Mons Res Inst Biosci Mechanobiol &

    Soft Matter Grp Lab Interfaces &

    Fluides Complexes Mons;

    Univ Mons Res Inst Biosci Mechanobiol &

    Soft Matter Grp Lab Interfaces &

    Fluides Complexes Mons;

    Univ Mons Res Inst Biosci Mechanobiol &

    Soft Matter Grp Lab Interfaces &

    Fluides Complexes Mons;

    Univ Antwerp Dept Pharmaceut Biomed &

    Vet Sci Lab Cell Biol &

    Histol Antwerp Belgium;

    Univ Mons Res Inst Biosci Mechanobiol &

    Soft Matter Grp Lab Interfaces &

    Fluides Complexes Mons;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 细胞生物学;
  • 关键词

    cytoskeleton; (de-)adhesion; matrix rigidity; nucleus; pre-stress;

    机译:细胞骨架;(De-)粘附;基质刚性;核;预压力;

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