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Excitable Waves and Direction-Sensing in Dictyostelium Discoideum: Steps Towards a Chemotaxis Model

机译:Dicoyostelium Discoideum中的激发波和方向感测:趋化模型的步骤

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摘要

In recent years, there have been significant advances in our understanding of the mechanisms underlying chemically directed motility by eukaryotic cells such as Dictyostelium. In particular, the LEGI model has proven capable of providing a framework for quantitatively explaining many experiments that present Dictyostelium cells with tailored chemical stimuli and monitor their subsequent polarization. In their natural setting, cells generate their own directional signals via the detection and secretion of cAMP. Here, we couple the LEGI approach to an excitable medium model of the cAMP wave-field that is propagated by the cells and investigate the possibility for this class of models to enable accurate chemotaxis to the cAMP waveforms expected in vivo. Our results indicate that the ultra-sensitive version of the model does an excellent job in providing natural wave rectification, thereby providing a compelling solution to the “back-of-the-wave paradox” during cellular aggregation.
机译:近年来,在我们对真核细胞(如盘基网柄菌)化学定向运动的潜在机制的理解方面取得了重大进展。特别是,LEGI模型已被证明能够提供定量分析许多实验的框架,这些实验可以为拟杆菌属细胞提供量身定制的化学刺激并监测其随后的极化。在自然状态下,细胞通过检测和分泌cAMP产生自己的定向信号。在这里,我们将LEGI方法与细胞传播的cAMP波场的可激发介质模型相结合,并研究此类模型对体内预期的cAMP波形进行精确趋化的可能性。我们的结果表明,该模型的超灵敏版本在提供自然波整流方面做得非常出色,从而为细胞聚集过程中的“波后悖论”提供了引人注目的解决方案。

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