论文标题

珍珠细胞中动作电位期间的表面变形

Surface Deformation During an Action Potential in Pearled Cells

论文作者

Mussel, Matan, Fillafer, Christian, Ben-Porath, Gal, Schneider, Matthias F.

论文摘要

据报道,生物细胞中的电脉冲(动作电位)伴随着具有纳米级振幅的传播细胞表面变形。通常,该细胞表面被聚合物材料的外部层覆盖(细胞外基质,细胞壁材料等)。最近在令人兴奋的植物细胞(Chara braunii)中证明了刚性外层(细胞壁)阻碍了潜在的变形。当细胞膜通过渗透分离到细胞壁时,在细胞激发后观察到了微米范围内的机械变形。这种机械脉冲的基本机制仍然难以捉摸。在此,我们报告说,夏拉细胞可以经历珍珠不稳定性,当珍珠碎片激发甚至更大的且观察到更常规的细胞形状变化时(幅度约为10至100 UM)。这些瞬态细胞变形是通过基于三个参数的曲率模型捕获的:表面张力,弯曲刚度和整个表面的压力差。在本文中,这些参数是通过曲线拟合到静止和激发期间的实验细胞形状提取的。这是确定在动作电位期间变化的机械参数的必要步骤。

Electric pulses in biological cells (action potentials) have been reported to be accompanied by a propagating cell-surface deformation with a nano-scale amplitude. Typically, this cell surface is covered by external layers of polymer material (extracellular matrix, cell wall material etc.). It was recently demonstrated in excitable plant cells (Chara Braunii) that the rigid external layer (cell wall) hinders the underlying deformation. When the cell membrane was separated from the cell wall by osmosis, a mechanical deformation, in the micrometer range, was observed upon excitation of the cell. The underlying mechanism of this mechanical pulse has up to date remained elusive. Herein we report that Chara cells can undergo a pearling instability, and when the pearled fragments were excited even larger and more regular cell shape changes were observed (about 10 to 100 um in amplitude). These transient cellular deformations were captured by a curvature model that is based on three parameters: surface tension, bending rigidity and pressure difference across the surface. In this paper these parameters are extracted by curve-fitting to the experimental cellular shapes at rest and during excitation. This is a necessary step to identify the mechanical parameters that change during an action potential.

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