果蝇翼盘中 Hh 梯度的动态读数揭示了稳健性与精确性之间的特定模式权衡。

IF 6.4 1区 生物学 Q1 BIOLOGY eLife Pub Date : 2024-11-07 DOI:10.7554/eLife.85755
Rosalio Reyes, Arthur D Lander, Marcos Nahmad
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引用次数: 0

摘要

了解设计稳健而灵活的模式系统的基本原理是发育生物学的一个关键问题。在果蝇的翅膀中,刺猬(Hh)信号利用 Hh 梯度的动态特性决定模式输出。特别是,collier(col)的模式是由稳态 Hh 梯度建立的,而 decapentaplegic(dpp)的模式则是由称为 Hh 过冲的 Hh 瞬态梯度建立的。在这里,我们通过数学建模提出,Hh 梯度的这种动态解释会产生特定的稳健性和精确性。例如,对于形态发生物剂量的变化,受自我增强配体降解影响的 col 的前缘位置比 dpp 的前缘位置更稳健,我们提供了这一预测的实验证据。然而,过冲梯度所确定的 dpp 表达模式的前缘比稳态梯度所预期的要精确得多。因此,Hh 信号的动态解释提供了在以下两个方面的权衡。
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Dynamic readout of the Hh gradient in the Drosophila wing disc reveals pattern-specific tradeoffs between robustness and precision.

Understanding the principles underlying the design of robust, yet flexible patterning systems is a key problem in developmental biology. In the Drosophila wing, Hedgehog (Hh) signaling determines patterning outputs using dynamical properties of the Hh gradient. In particular, the pattern of collier (col) is established by the steady-state Hh gradient, whereas the pattern of decapentaplegic (dpp), is established by a transient gradient of Hh known as the Hh overshoot. Here we use mathematical modeling to suggest that this dynamical interpretation of the Hh gradient results in specific robustness and precision properties. For instance, the location of the anterior border of col, which is subject to self-enhanced ligand degradation is more robustly specified than that of dpp to changes in morphogen dosage, and we provide experimental evidence of this prediction. However, the anterior border of dpp expression pattern, which is established by the overshoot gradient is much more precise to what would be expected by the steady-state gradient. Therefore, the dynamical interpretation of Hh signaling offers tradeoffs between.

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来源期刊
eLife
eLife BIOLOGY-
CiteScore
12.90
自引率
3.90%
发文量
3122
审稿时长
17 weeks
期刊介绍: eLife is a distinguished, not-for-profit, peer-reviewed open access scientific journal that specializes in the fields of biomedical and life sciences. eLife is known for its selective publication process, which includes a variety of article types such as: Research Articles: Detailed reports of original research findings. Short Reports: Concise presentations of significant findings that do not warrant a full-length research article. Tools and Resources: Descriptions of new tools, technologies, or resources that facilitate scientific research. Research Advances: Brief reports on significant scientific advancements that have immediate implications for the field. Scientific Correspondence: Short communications that comment on or provide additional information related to published articles. Review Articles: Comprehensive overviews of a specific topic or field within the life sciences.
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