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发育稳健性:果蝇平衡棒的案例

Developmental Robustness: The Haltere Case in .

作者信息

Giraud Guillaume, Paul Rachel, Duffraisse Marilyne, Khan Soumen, Shashidhara L S, Merabet Samir

机构信息

IGFL, ENS Lyon, UMR 5242, Lyon, France.

Indian Institute of Science Education and Research (IISER), Pune, India.

出版信息

Front Cell Dev Biol. 2021 Jul 23;9:713282. doi: 10.3389/fcell.2021.713282. eCollection 2021.

Abstract

Developmental processes have to be robust but also flexible enough to respond to genetic and environmental variations. Different mechanisms have been described to explain the apparent antagonistic nature of developmental robustness and plasticity. Here, we present a "self-sufficient" molecular model to explain the development of a particular flight organ that is under the control of the Hox gene () in the fruit fly . Our model is based on a candidate RNAi screen and additional genetic analyses that all converge to an autonomous and cofactor-independent mode of action for Ubx. We postulate that this self-sufficient molecular mechanism is possible due to an unusually high expression level of the Hox protein. We propose that high dosage could constitute a so far poorly investigated molecular strategy for allowing Hox proteins to both innovate and stabilize new forms during evolution.

摘要

发育过程必须稳健,但也要足够灵活,以应对基因和环境变化。人们已经描述了不同的机制来解释发育稳健性和可塑性之间明显的拮抗性质。在这里,我们提出一个“自给自足”的分子模型,以解释果蝇中受Hox基因()控制的特定飞行器官的发育。我们的模型基于一个候选RNAi筛选和其他遗传分析,所有这些都汇聚到Ubx的一种自主且不依赖辅因子的作用模式。我们推测,这种自给自足的分子机制可能是由于Hox蛋白异常高的表达水平。我们提出,高剂量可能构成一种迄今为止研究较少的分子策略,使Hox蛋白在进化过程中既能创新又能稳定新的形态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c834/8343187/f80cc1f78741/fcell-09-713282-g001.jpg

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