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Beyond the French Flag Model: Exploiting Spatial and Gene Regulatory Interactions for Positional Information

机译:超越法国国旗模型:利用空间和基因调控相互作用获取位置信息

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摘要

A crucial step in the early development of multicellular organisms involves the establishment of spatial patterns of gene expression which later direct proliferating cells to take on different cell fates. These patterns enable the cells to infer their global position within a tissue or an organism by reading out local gene expression levels. The patterning system is thus said to encode positional information, a concept that was formalized recently in the framework of information theory. Here we introduce a toy model of patterning in one spatial dimension, which can be seen as an extension of Wolpert’s paradigmatic “French Flag” model, to patterning by several interacting, spatially coupled genes subject to intrinsic and extrinsic noise. Our model, a variant of an Ising spin system, allows us to systematically explore expression patterns that optimally encode positional information. We find that optimal patterning systems use positional cues, as in the French Flag model, together with gene-gene interactions to generate combinatorial codes for position which we call “Counter” patterns. Counter patterns can also be stabilized against noise and variations in system size or morphogen dosage by longer-range spatial interactions of the type invoked in the Turing model. The simple setup proposed here qualitatively captures many of the experimentally observed properties of biological patterning systems and allows them to be studied in a single, theoretically consistent framework.
机译:多细胞生物早期发展中的关键步骤涉及建立基因表达的空间模式,该模式随后指导增殖细胞承担不同的细胞命运。这些模式使细胞能够通过读出局部基因表达水平来推断其在组织或生物体内的整体位置。因此,据说图案化系统对位置信息进行编码,这个概念最近在信息论的框架中正式化。在这里,我们介绍了一个在一个空间维度上进行图案化的玩具模型,该模型可以看作是Wolpert范式“法国国旗”模型的扩展,可以通过多个相互作用的,空间耦合的,受到内在和外在噪声影响的基因进行图案化。我们的模型是Ising自旋系统的变体,它使我们能够系统地探索可最佳编码位置信息的表达模式。我们发现,最佳构图系统使用位置线索(如法国国旗模型中那样)以及基因-基因相互作用来生成位置的组合代码,我们称之为“计数器”模式。通过图灵模型中调用的这种类型的更远距离的空间相互作用,还可以使计数器模式稳定,以防噪声和系统大小或形态发生剂剂量变化。本文提出的简单设置定性地捕获了生物图案系统许多实验观察到的特性,并允许在一个理论上一致的框架中对其进行研究。

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