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四足动物肢体关节模式形成的点条纹图灵模型。

A dot-stripe Turing model of joint patterning in the tetrapod limb.

机构信息

Department of Zoology, University of Cambridge, Cambridge CB2 3EJ, UK.

Wellcome Trust/Cancer Research UK Gurdon Institute, University of Cambridge, Cambridge CB2 1QN, UK

出版信息

Development. 2020 Apr 12;147(8):dev183699. doi: 10.1242/dev.183699.

Abstract

Iterative joints are a hallmark of the tetrapod limb, and their positioning is a key step during limb development. Although the molecular regulation of joint formation is well studied, it remains unclear what controls the location, number and orientation (i.e. the pattern) of joints within each digit. Here, we propose the dot-stripe mechanism for joint patterning, comprising two coupled Turing systems inspired by published gene expression patterns. Our model can explain normal joint morphology in wild-type limbs, hyperphalangy in cetacean flippers, mutant phenotypes with misoriented joints and suggests a reinterpretation of the polydactylous Ichthyosaur fins as a polygonal joint lattice. By formulating a generic dot-stripe model, describing joint patterns rather than molecular joint markers, we demonstrate that the insights from the model should apply regardless of the biological specifics of the underlying mechanism, thus providing a unifying framework to interrogate joint patterning in the tetrapod limb.

摘要

迭代关节是四足动物肢体的标志,其定位是肢体发育过程中的关键步骤。尽管关节形成的分子调控已得到很好的研究,但仍不清楚是什么控制了每个指骨内关节的位置、数量和方向(即模式)。在这里,我们提出了关节模式形成的点条纹机制,该机制由两个受发表的基因表达模式启发的耦合图灵系统组成。我们的模型可以解释野生型肢体的正常关节形态、鲸类鳍肢的多指畸形、关节错位的突变表型,并提示重新解释多鳍鱼龙的多鳍作为多边形关节晶格。通过制定通用的点条纹模型,描述关节模式而不是分子关节标记,我们证明了该模型的见解应该适用于潜在机制的生物学细节,从而为研究四足动物肢体的关节模式提供了一个统一的框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/71a1/7174842/296f74e00238/develop-147-183699-g1.jpg

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