Division of Symbiotic Systems, National Institute for Basic Biology, National Institute for Natural Sciences, Okazaki 444-8585, Japan.
J Theor Biol. 2013 Apr 7;322:33-45. doi: 10.1016/j.jtbi.2013.01.008. Epub 2013 Jan 20.
Many multicellular organisms have a layered structure. The interaction between these layers plays an essential role in many developmental processes, and key molecules involved in these processes are often expressed in a layer-specific manner. On the other hand, pattern formation of organisms has been frequently discussed in connection with the Turing system. However, the Turing system has so far been studied mainly in single-layered space. In this paper, we thus investigate a two-layer Turing system with complementary synthesis, in which two interacting molecules are exclusively synthesized in different layers. From a linear stability analysis, we determine the Turing condition of the complementary system, and show that this condition requires stronger regulatory interactions of the molecules than that of the system with usual ubiquitous synthesis. We then confirm that this complementary system affects pattern types in fixed and expanding two-dimensional spaces in a similar way to the system with ubiquitous synthesis. In addition, the two-layer system includes two types of diffusion, lateral and transversal, and these have distinct effects on pattern formation with lateral diffusion mainly determining the periodicity of patterns generated and transversal diffusion affecting pattern type. These results suggest that the transversal diffusion functions as a time delay in the two-layer system. Finally, we apply this complementary system to explain pattern formation of the shoot apical meristem of plants. These findings provide an understanding of pattern formation caused by the interaction between cell layers in multicellular organisms.
许多多细胞生物具有分层结构。这些层之间的相互作用在许多发育过程中起着至关重要的作用,而参与这些过程的关键分子通常以特定于层的方式表达。另一方面,生物体的模式形成经常与图灵系统联系在一起进行讨论。然而,到目前为止,图灵系统主要在单层空间中进行研究。在本文中,我们因此研究了一个具有互补合成的双层图灵系统,其中两种相互作用的分子专门在不同的层中合成。通过线性稳定性分析,我们确定了互补系统的图灵条件,并表明该条件要求分子的调节相互作用比具有普遍存在合成的系统更强。然后,我们确认该互补系统以类似于具有普遍存在合成的系统的方式在固定和扩展的二维空间中影响图案类型。此外,双层系统包括侧向和横向两种扩散类型,它们对图案形成有不同的影响,侧向扩散主要决定所生成图案的周期性,而横向扩散影响图案类型。这些结果表明,横向扩散在双层系统中起时间延迟的作用。最后,我们将此互补系统应用于解释植物茎尖分生组织的模式形成。这些发现为理解多细胞生物中细胞层之间相互作用引起的模式形成提供了依据。