AbstractTranslocation of dense nucleus along gravity vector initiates mechanical remodeling of a eukar'/> Theoretical modeling of mechanical homeostasis of a mammalian cell under gravity-directed vector
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Theoretical modeling of mechanical homeostasis of a mammalian cell under gravity-directed vector

机译:哺乳动物传染料中哺乳动物细胞机械稳态的理论建模

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AbstractTranslocation of dense nucleus along gravity vector initiates mechanical remodeling of a eukaryotic cell. In our previous experiments, we quantified the impact of gravity vector on cell remodeling by placing an MC3T3-E1 cell onto upward (U)-, downward (D)-, or edge-on (E)- orientated substrate. Our experimental data demonstrate that orientation dependence of nucleus longitudinal translocation is positively correlated with cytoskeletal (CSK) remodeling of their expressions and structures and also is associated with rearrangement of focal adhesion complex (FAC). However, the underlying mechanism how CSK network and FACs are reorganized in a mammalian cell remains unclear. In this paper, we developed a theoretical biomechanical model to integrate the mechanosensing of nucleus translocation with CSK remodeling and FAC reorganization induced by a gravity vector. The cell was simplified as a nucleated tensegrity structure in the model. The cell and CSK filaments were considered to be symmetrical. All elements of CSK filaments and cytomembrane that support the nucleus were simplified as springs. FACs were simplified as an adhesion cluster of parallel bonds with shared force. Our model proposed that gravity vector-directed translocation of the cell nucleus is mechanically balanced by CSK remodeling and FAC reorganization induced by a gravitational force. Under gravity, dense nucleus tends to translocate and exert additional compressive or stretching force on the cytoskeleton. Finally, changes of the tension force acting on talin by microfilament alter the size of FACs. Results from our model are in qualitative agreement with those from experiments.]]>
机译:<![cdata [ <标题>抽象 ara id =“par1”>沿着重力的致密核的易位启动机械重塑真核细胞。在我们之前的实验中,我们通过将MC3T3-E1细胞放置在向上(<强调类型=“斜体”> U ) - 向下(<重点类型=“斜体”来量化重力载体对细胞重塑的影响> D ) - 或边缘开启(<强调类型=“斜体”> E ) - 定向基板。我们的实验数据表明,核纵向易位的取向依赖性与其表达和结构的细胞骨骼(CSK)重塑呈正相关,并且还与局灶性粘附复合物(FAC)的重排相关。然而,基础机制如何在哺乳动物细胞中重组CSK网络和FAC仍然尚不清楚。在本文中,我们开发了一种理论生物力学模型,可与重力载体诱导的CSK重塑和FAC重组集成核易位的机械静电。在模型中被简化为核化的矩形结构。将细胞和CSK细丝被认为是对称的。支持核的CSK丝和细胞膜的所有元素被简化为弹簧。设计为具有共用力的平行键的粘附簇。我们的模型提出了通过引力诱导的CSK重塑和FAC重组来机械地平衡细胞核的重力矢量定向易位。在重力下,致密核倾向于在细胞骨架上倾斜和施加额外的压缩或拉伸力。最后,微丝作用于山间粘附力的变化改变了FACS的尺寸。我们的模型的结果与实验中的那些进行定性协议。 ]]>

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  • 作者单位

    Center for Biomechanics and Bioengineering Key Laboratory of Microgravity (National Microgravity Laboratory) and Beijing Key Laboratory of Engineered Construction and Mechanobiology Institute of Mechanics Chinese Academy of Sciences;

    Center for Biomechanics and Bioengineering Key Laboratory of Microgravity (National Microgravity Laboratory) and Beijing Key Laboratory of Engineered Construction and Mechanobiology Institute of Mechanics Chinese Academy of Sciences;

    Center for Biomechanics and Bioengineering Key Laboratory of Microgravity (National Microgravity Laboratory) and Beijing Key Laboratory of Engineered Construction and Mechanobiology Institute of Mechanics Chinese Academy of Sciences;

    Center for Biomechanics and Bioengineering Key Laboratory of Microgravity (National Microgravity Laboratory) and Beijing Key Laboratory of Engineered Construction and Mechanobiology Institute of Mechanics Chinese Academy of Sciences;

    Center for Biomechanics and Bioengineering Key Laboratory of Microgravity (National Microgravity Laboratory) and Beijing Key Laboratory of Engineered Construction and Mechanobiology Institute of Mechanics Chinese Academy of Sciences;

    Center for Biomechanics and Bioengineering Key Laboratory of Microgravity (National Microgravity Laboratory) and Beijing Key Laboratory of Engineered Construction and Mechanobiology Institute of Mechanics Chinese Academy of Sciences;

    Center for Biomechanics and Bioengineering Key Laboratory of Microgravity (National Microgravity Laboratory) and Beijing Key Laboratory of Engineered Construction and Mechanobiology Institute of Mechanics Chinese Academy of Sciences;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物力学;
  • 关键词

    Gravity directed; Mechanosensing; Nucleus translocation; Cytoskeletal remodeling; FAC reorganization;

    机译:重力定向;机械溶解;核易位;细胞骨骼重塑;FAC重组;

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