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果蝇翅成虫盘Dpp梯度的大小归一化稳健性

Size-normalized Robustness of Dpp Gradient in Drosophila Wing Imaginal Disc.

作者信息

Lander A D, Nie Q, Vargas B, Wan F Y M

机构信息

Department of Developmental and Cell Biology, University of California, Irvine Irvine, CA 92697-3875.

出版信息

J Mech Mater Struct. 2011 Jan 1;6(1-4):321-350. doi: 10.2140/jomms.2011.6.321.

DOI:10.2140/jomms.2011.6.321
PMID:21841941
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3154743/
Abstract

Exogenous environmental changes are known to affect the intrinsic characteristics of biological organizms. For instance, the synthesis rate of the morphogen decapentaplegic (Dpp) in a Drosophila wing imaginal disc has been found to double with an increase of 5.9°C in ambient temprerature. If not compensated, such a change would alter the signaling Dpp gradient significantly and thereby the development of thewing imaginal disc. To learn how flies continue to develop "normally" under such an exogenous change, we formulate in this paper a spatially two-dimensional reaction-diffusion system of partial differential equations (PDE) that accounts for the biological processes at work in the Drosophila wing disc essential for the formation of signaling Dpp gradient. By way of this PDE model, we investigate the effect of the apical-basal thickness and antero-posterior span of the wing on the shape of signaling gradients and the robustness of wing development in an altered environment (including an enhanced morphogen synthesis rate). Our principal result is a delineation of the role of wing disc size change in maintaining the magnitude and shape of the signaling Dpp gradient. The result provides a theoretical basis for the observed robustness of wing development, preserving relative but not absolute tissue pattern, when the morphogen synthesis rate is significantly altered. A similar robustness considerqation for simultaneous changes of multiple intrinsic system characteristics is also discussed briefly.

摘要

已知外源环境变化会影响生物有机体的内在特性。例如,在果蝇翅成虫盘(imaginal disc)中,形态发生素“五体不全”(Dpp)的合成速率已被发现会随着环境温度升高5.9°C而翻倍。如果不进行补偿,这种变化将显著改变Dpp信号梯度,进而影响翅成虫盘的发育。为了了解果蝇在这种外源变化下如何继续“正常”发育,我们在本文中构建了一个二维空间的偏微分方程(PDE)反应扩散系统,该系统考虑了果蝇翅盘中对形成Dpp信号梯度至关重要的生物学过程。通过这个PDE模型,我们研究了翅的顶 - 基厚度和前后跨度对信号梯度形状以及在变化环境(包括形态发生素合成速率增强)中翅发育稳健性的影响。我们的主要结果是描绘了翅成虫盘大小变化在维持Dpp信号梯度大小和形状方面的作用。该结果为当形态发生素合成速率显著改变时观察到的翅发育稳健性提供了理论基础,即保留相对而非绝对的组织模式。还简要讨论了对于多个内在系统特征同时变化的类似稳健性考量。

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