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首页> 外文期刊>The international journal of developmental biology >Modeling pattern formation in hydra: A route to understanding essential steps in development
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Modeling pattern formation in hydra: A route to understanding essential steps in development

机译:在九头蛇中建模模式形成:理解开发中基本步骤的途径

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Modeling of pattern formation in hydra has revealed basic mechanisms that underlie the reproducible generation of complex and self-regulating patterns. Organizing regions can be generated by a local self-enhancing reaction that is coupled with an inhibitory effect of longer range. Such reactions enable pattern formation even in an initially almost homogeneous assembly of cells. A long-ranging feedback of the organizer onto the competence to perform the pattern-forming reaction stabilizes the polar axial pattern during growth and allows for regeneration with preserved polarity. Hypostome formation is assumed to be under the control of two positive feedback loops in which Wnt3 is a common element. In addition to the well-established loop employing b-catenin, a second cell-local loop is involved, possibly with Brachyury as an additional component. This model accounts for the different expression patterns of β-catenin and Wnt3. Wnt molecules are proposed to play a dual role, functioning as activators and, after processing, as inhibitors. Since Wnt genes code for complete pattern-forming systems, gene duplication and diversification lead to a family of genes whose expression regions have a precise relation to each other. Tentacle formation is an example of positioning a second pattern-forming system by medium-ranging activation and local exclusion exerted by the primary system. A model for bud formation suggests that a transient pre-bud signal is involved that initiates the formation of the foot of the bud, close to the normal foot, as well as close to the bud tip. Many dynamic regulations, as observed in classical and molecular observations, are reproduced in computer simulations. A case is made that hydra can be regarded as a living fossil, documenting an evolutionary early axis formation before trunk formation and bilaterality were invented. Animated simulations are available in the supplementary information accompanying this paper.
机译:九头蛇图案形成的建模揭示了基本机制,这些基本机制是可重现的复杂和自我调节图案生成的基础。组织区域可以通过局部自我增强反应生成,再加上更长范围的抑制作用。这样的反应即使在最初几乎均匀的细胞组装中也能够形成图案。组织者对执行图案形成反应的能力的长期反馈使生长过程中的极性轴向图案稳定,并允许保留极性的再生。假定假基因组的形成受两个正反馈环的控制,其中Wnt3是一个共同元素。除了使用b-catenin的成熟环以外,还涉及第二个细胞局部环,可能与Brachyury作为附加组件。该模型解释了β-catenin和Wnt3的不同表达模式。有人提出Wnt分子起着双重作用,起活化剂的作用,在加工后起抑制剂的作用。由于Wnt基因编码完整的模式形成系统,因此基因复制和多样化导致了一个基因家族,其表达区域彼此之间有着精确的关系。触手形成是通过中等范围的激活和主要系统施加的局部排斥来定位第二个图形形成系统的示例。芽形成的模型表明,涉及到短暂的芽前信号,该信号会启动芽脚的形成,该芽的脚靠近正常脚以及芽尖。在计算机模拟中复制了经典和分子观测中观察到的许多动态规则。有一个例子可以说,九头蛇可以视为活化石,记录了在发明树干形成和双侧性之前的进化早期轴形成。动画仿真可从本文附带的补充信息中获得。

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