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Persistence period and precision of autonomous cellular oscillators fromthe zebrafish segmentation clock

机译:自主蜂窝振荡器的持续性周期和精度斑马鱼分段时钟

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摘要

In vertebrate development, the sequential and rhythmic segmentation of the body axis is regulated by a “segmentation clock”. This clock is comprised of a population of coordinated oscillating cells that together produce rhythmic gene expression patterns in the embryo. Whether individual cells autonomously maintain oscillations, or whether oscillations depend on signals from neighboring cells is unknown. Using a transgenic zebrafish reporter line for the cyclic transcription factor Her1, we recorded single tailbud cells in vitro. We demonstrate that individual cells can behave as autonomous cellular oscillators. We described the observed variability in cell behavior using a theory of generic oscillators with correlated noise. Single cells have longer periods and lower precision than the tissue, highlighting the role of collective processes in the segmentation clock. Our work reveals a population of cells from the zebrafish segmentation clock that behave as self-sustained, autonomous oscillators with distinctive noisy dynamics.>DOI:
机译:在脊椎动物发育中,体轴的顺序和节律性分割是由“分割时钟”调节的。该时钟由协调振荡的细胞群组成,这些细胞一起在胚胎中产生有节奏的基因表达模式。各个单元是否自主维持振荡,或者振荡是否取决于来自相邻单元的信号尚不清楚。使用转基因的斑马鱼报告基因循环转录因子Her1,我们记录了单个尾巴细胞在体外。我们证明了单个细胞可以充当自主细胞振荡器。我们使用具有相关噪声的通用振荡器理论描述了观察到的细胞行为变异性。单细胞比组织具有更长的周期和更低的精度,突出了集体过程在分割时钟中的作用。我们的工作揭示了斑马鱼分段时钟中的一群细胞,这些细胞的行为就像是自我维持的,具有独特噪声动态的自主振荡器。> DOI:

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