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Balance of microtubule stiffness and cortical tension determines the size of blood cells with marginal band across species

机译:微管刚度和皮质张力的平衡决定了跨物种边缘带的血细胞大小

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摘要

The fast bloodstream of animals is associated with large shear stresses. To withstand these conditions, blood cells have evolved a special morphology and a specific internal architecture to maintain their integrity over several weeks. For instance, nonmammalian red blood cells, mammalian erythroblasts, and platelets have a peripheral ring of microtubules, called the marginal band, that flattens the overall cell morphology by pushing on the cell cortex. In this work, we model how the shape of these cells stems from the balance between marginal band rigidity and cortical tension. We predict that the diameter of the cell scales with the total microtubule polymer and verify the predicted law across a wide range of species. Our analysis also shows that the combination of the marginal band rigidity and cortical tension increases the ability of the cell to withstand forces without deformation. Finally, we model the marginal band coiling that occurs during the disk-to-sphere transition observed, for instance, at the onset of blood platelet activation. We show that when cortical tension increases faster than cross-linkers can unbind, the marginal band will coil, whereas if the tension increases more slowly, the marginal band may shorten as microtubules slide relative to each other.
机译:动物的快速血流与较大的切应力有关。为了承受这些条件,血细胞已经进化出特殊的形态和特定的内部结构,以在数周内保持其完整性。例如,非哺乳动物的红细胞,哺乳动物的成红细胞和血小板都有一个微管的外围环,称为边缘带,通过推动细胞皮层使整个细胞形态变平。在这项工作中,我们模拟了这些细胞的形状如何源自边缘带的刚度和皮质张力之间的平衡。我们预测细胞的直径与总的微管聚合物成比例,并在各种物种中验证预测的规律。我们的分析还表明,边缘带的刚度和皮质张力的组合增加了细胞承受力而不变形的能力。最后,我们对在观察到的从磁盘到球的过渡过程中发生的边缘带卷曲进行建模,例如,在血小板活化开始时。我们显示,当皮质张力的增加速度快于交联剂无法结合的速度时,边缘带会盘绕,而如果张力增加得更慢,则边缘带会随着微管彼此相对滑动而缩短。

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