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Concentration Sensing by the Moving Nucleus in Cell Fate Determination: A Computational Analysis

机译:运动命运确定细胞命运时的浓度感应:计算分析。

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摘要

During development of the vertebrate neuroepithelium, the nucleus in neural progenitor cells (NPCs) moves from the apex toward the base and returns to the apex (called interkinetic nuclear migration) at which point the cell divides. The fate of the resulting daughter cells is thought to depend on the sampling by the moving nucleus of a spatial concentration profile of the cytoplasmic Notch intracellular domain (NICD). However, the nucleus executes complex stochastic motions including random waiting and back and forth motions, which can expose the nucleus to randomly varying levels of cytoplasmic NICD. How nuclear position can determine daughter cell fate despite the stochastic nature of nuclear migration is not clear. Here we derived a mathematical model for reaction, diffusion, and nuclear accumulation of NICD in NPCs during interkinetic nuclear migration (INM). Using experimentally measured trajectory-dependent probabilities of nuclear turning, nuclear waiting times and average nuclear speeds in NPCs in the developing zebrafish retina, we performed stochastic simulations to compute the nuclear trajectory-dependent probabilities of NPC differentiation. Comparison with experimentally measured nuclear NICD concentrations and trajectory-dependent probabilities of differentiation allowed estimation of the NICD cytoplasmic gradient. Spatially polarized production of NICD, rapid NICD cytoplasmic consumption and the time-averaging effect of nuclear import/export kinetics are sufficient to explain the experimentally observed differentiation probabilities. Our computational studies lend quantitative support to the feasibility of the nuclear concentration-sensing mechanism for NPC fate determination in zebrafish retina.
机译:在脊椎动物神经上皮细胞的发育过程中,神经祖细胞(NPC)中的核从顶点移向基部,然后返回到顶点(称为运动核迁移),此时细胞分裂。据认为,所得子细胞的命运取决于细胞核Notch细胞内结构域(NICD)的空间浓度分布图的移动核采样。然而,核执行复杂的随机运动,包括随机的等待和来回运动,这会使核暴露于随机变化的细胞质NICD水平。尽管核迁移是随机的,但核位置如何确定子细胞的命运尚不清楚。在这里,我们推导了NPC中动能核迁移(INM)过程中NICD反应,扩散和核积累的数学模型。使用实验测量的斑马鱼视网膜中NPC的核转弯,核等待时间和平均核速度的轨迹相关概率,我们进行了随机模拟,以计算NPC分化的核轨迹相关概率。与实验测量的核NICD浓度和轨迹相关的分化概率进行比较,可以估算NICD的细胞质梯度。 NICD的空间极化产生,NICD的快速胞质消耗和核进出口动力学的时均效应足以解释实验观察到的分化概率。我们的计算研究为斑马鱼视网膜中NPC命运确定的核浓度传感机制的可行性提供了定量支持。

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