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分割中的时间与空间。

Time and space in segmentation.

作者信息

Clark Erik

机构信息

Department of Systems Biology, Harvard Medical School, 210 Longwood Ave, Boston, MA 02115, USA.

Trinity College Cambridge, University of Cambridge, Trinity Street, Cambridge CB2 1TQ, UK.

出版信息

Interface Focus. 2021 Apr 16;11(3):20200049. doi: 10.1098/rsfs.2020.0049. eCollection 2021 Jun 6.

Abstract

Arthropod segmentation and vertebrate somitogenesis are leading fields in the experimental and theoretical interrogation of developmental patterning. However, despite the sophistication of current research, basic conceptual issues remain unresolved. These include: (i) the mechanistic origins of spatial organization within the segment addition zone (SAZ); (ii) the mechanistic origins of segment polarization; (iii) the mechanistic origins of axial variation; and (iv) the evolutionary origins of simultaneous patterning. Here, I explore these problems using coarse-grained models of cross-regulating dynamical processes. In the morphogenetic framework of a row of cells undergoing axial elongation, I simulate interactions between an 'oscillator', a 'switch' and up to three 'timers', successfully reproducing essential patterning behaviours of segmenting systems. By comparing the output of these largely cell-autonomous models to variants that incorporate positional information, I find that scaling relationships, wave patterns and patterning dynamics all depend on whether the SAZ is regulated by temporal or spatial information. I also identify three mechanisms for polarizing oscillator output, all of which functionally implicate the oscillator frequency profile. Finally, I demonstrate significant dynamical and regulatory continuity between sequential and simultaneous modes of segmentation. I discuss these results in the context of the experimental literature.

摘要

节肢动物的体节形成和脊椎动物的体节发生是发育模式实验和理论研究的前沿领域。然而,尽管当前研究已经很成熟,但一些基本概念问题仍未得到解决。这些问题包括:(i)体节添加区(SAZ)内空间组织的机制起源;(ii)体节极化的机制起源;(iii)轴向变异的机制起源;以及(iv)同步模式形成的进化起源。在这里,我使用交叉调节动态过程的粗粒度模型来探讨这些问题。在一排细胞进行轴向伸长的形态发生框架中,我模拟了一个“振荡器”、一个“开关”和多达三个“定时器”之间的相互作用,成功再现了分段系统的基本模式形成行为。通过将这些主要是细胞自主模型的输出与包含位置信息的变体进行比较,我发现比例关系、波模式和模式形成动力学都取决于SAZ是由时间信息还是空间信息调节。我还确定了三种使振荡器输出极化的机制,所有这些机制在功能上都与振荡器频率分布有关。最后,我证明了分段的顺序模式和同步模式之间存在显著的动态和调节连续性。我将在实验文献的背景下讨论这些结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/20e7/8086912/4d1b2bc416c9/rsfs20200049f01.jpg

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