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Modeling spontaneous activity across an excitable epithelium: Support for a coordination scenario of early neural evolution

机译:模拟可兴奋上皮细胞的自发活动:支持早期神经进化的协调方案

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摘要

Internal coordination models hold that early nervous systems evolved in the first place to coordinate internal activity at a multicellular level, most notably the use of multicellular contractility as an effector for motility. A recent example of such a model, the skin brain thesis, suggests that excitable epithelia using chemical signaling are a potential candidate as a nervous system precursor. We developed a computational model and a measure for whole body coordination to investigate the coordinative properties of such excitable epithelia. Using this measure we show that excitable epithelia can spontaneously exhibit body-scale patterns of activation. Relevant factors determining the extent of patterning are the noise level for exocytosis, relative body dimensions, and body size. In smaller bodies whole-body coordination emerges from cellular excitability and bidirectional excitatory transmission alone. Our results show that basic internal coordination as proposed by the skin brain thesis could have arisen in this potential nervous system precursor, supporting that this configuration may have played a role as a proto-neural system and requires further investigation.
机译:内部协调模型认为,早期神经系统首先在多细胞水平上协调内部活动,最显着的是利用多细胞收缩作为运动的效应器。这种模型的最新实例,即皮肤大脑论文,表明使用化学信号的可兴奋上皮细胞是神经系统前体的潜在候选者。我们开发了一种计算模型和一种用于全身协调的措施,以研究这种兴奋性上皮细胞的协调特性。使用这种措施,我们表明,可兴奋的上皮细胞可以自发地表现出人体规模的激活模式。决定图案形成程度的相关因素是胞吐作用的噪声水平,相对身体尺寸和身体尺寸。在较小的身体中,仅通过细胞兴奋性和双向兴奋性传递就出现了全身协调。我们的研究结果表明,在这种潜在的神经系统前体中可能发生了皮肤大脑论文提出的基本内部协调,支持这种构型可能发挥了原始神经系统的作用,需要进一步研究。

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