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A framework for quantification and physical modeling of cell mixing applied to oscillator synchronization in vertebrate somitogenesis

机译:用于脊椎动物体发生中振荡器同步的细胞混合定量和物理建模框架

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In development and disease, cells move as they exchange signals. One example is found in vertebrate development, during which the timing of segment formation is set by a ‘segmentation clock’, in which oscillating gene expression is synchronized across a population of cells by Delta-Notch signaling. Delta-Notch signaling requires local cell-cell contact, but in the zebrafish embryonic tailbud, oscillating cells move rapidly, exchanging neighbors. Previous theoretical studies proposed that this relative movement or cell mixing might alter signaling and thereby enhance synchronization. However, it remains unclear whether the mixing timescale in the tissue is in the right range for this effect, because a framework to reliably measure the mixing timescale and compare it with signaling timescale is lacking. Here, we develop such a framework using a quantitative description of cell mixing without the need for an external reference frame and constructing a physical model of cell movement based on the data. Numerical simulations show that mixing with experimentally observed statistics enhances synchronization of coupled phase oscillators, suggesting that mixing in the tailbud is fast enough to affect the coherence of rhythmic gene expression. Our approach will find general application in analyzing the relative movements of communicating cells during development and disease.
机译:在发育和疾病中,细胞在交换信号时移动。在脊椎动物发育中发现了一个例子,在此过程中,通过“分段时钟”设定了分段形成的时间,在该时钟中,振荡基因的表达通过Delta-Notch信号在整个细胞群中同步。 Delta-Notch信号传导需要局部细胞间接触,但在斑马鱼的胚胎尾巴中,振荡细胞迅速移动,交换邻居。先前的理论研究提出,这种相对运动或细胞混合可能会改变信号传导,从而增强同步性。然而,由于缺乏可靠地测量混合时间尺度并将其与信号时间尺度进行比较的框架,因此尚不清楚组织中的混合时间尺度是否在此范围内正确。在这里,我们使用细胞混合的定量描述来开发这样的框架,而无需外部参考框架,并基于数据构建细胞运动的物理模型。数值模拟表明,与通过实验观察到的统计数据进行的混合可以增强耦合相位振荡器的同步性,这表明尾巴中的混合速度足够快,可以影响有节奏的基因表达的连贯性。我们的方法将在分析发育和疾病过程中通讯细胞的相对运动中找到一般的应用。

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