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通过缺口-德尔塔信号传递有序的六边形模式。

Ordered hexagonal patterns via notch-delta signaling.

机构信息

Department of Physics, Bar-Ilan University, Ramat-Gan 52900, Israel.

Dept of Physics, Northeastern Univ., Boston MA, United States of America.

出版信息

Phys Biol. 2021 Oct 21;18(6). doi: 10.1088/1478-3975/ac28a4.

Abstract

Many developmental processes in biology utilize notch-delta signaling to construct an ordered pattern of cellular differentiation. This signaling modality is based on nearest-neighbor contact, as opposed to the more familiar mechanism driven by the release of diffusible ligands. Here, exploiting this 'juxtacrine' property, we present an exact treatment of the pattern formation problem via a system of nine coupled ordinary differential equations. The possible patterns that are realized for realistic parameters can be analyzed by considering a co-dimension 2 pitchfork bifurcation of this system. This analysis explains the observed prevalence of hexagonal patterns with high delta at their center, as opposed to those with central high notch levels (referred to as anti-hexagons). We show that outside this range of parameters, in particular for low-coupling, a novel kind of pattern is produced, where high delta cells have high notch as well. It also suggests that the biological system is only weakly first order, so that an additional mechanism is required to generate the observed defect-free patterns. We construct a simple strategy for producing such defect-free patterns.

摘要

许多生物学中的发育过程利用 Notch-Delta 信号来构建细胞分化的有序模式。这种信号模式基于最近邻接触,而不是更常见的由扩散配体释放驱动的机制。在这里,我们利用这种“旁分泌”特性,通过一个由九个耦合常微分方程组成的系统来对模式形成问题进行精确处理。通过考虑该系统的二维叉形分岔,可以分析对于实际参数可以实现的可能模式。该分析解释了为什么观察到的具有高中心 Delta 的六边形模式很常见,而具有中央高 Notch 水平的模式(称为反六边形)则很少见。我们表明,在这个参数范围之外,特别是在低耦合的情况下,会产生一种新的模式,其中高 Delta 细胞的 Notch 也很高。这也表明生物系统只有弱一阶,因此需要额外的机制来产生观察到的无缺陷模式。我们构建了一种产生这种无缺陷模式的简单策略。

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