Notch和LIM-homeodomain蛋白Arrowhead通过反馈机制相互调节,在果蝇翅膀和神经元发育过程中发挥作用

Jyoti Singh, Dipti Verma, Bappi Sarkar, Maimuna Sali Paul, Mousumi Mutsuddi, Ashim Mukherjee
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摘要

Notch通路是一种进化保守的信号系统,它在不同的发育环境中影响着一系列惊人的细胞命运决定。为了找出Notch信号的新型效应物,我们分析了果蝇翅膀和眼睛显像盘的整个转录组,在这些显像盘中,Notch的活化形式被过度表达。一个 LIM 同源域蛋白箭头(Awh)被确定为新的候选者,它在 Notch 介导的发育事件中起着至关重要的作用。Awh等位基因与Notch通路成分有很强的遗传相互作用。Awh功能缺失会上调Notch靶标Cut和Wingless。Awh 功能增益则通过减少配体 Delta 的表达来下调 Notch 靶标。因此,Wingless效应分子Armadillo及其下游靶标Senseless和Vestigial的表达也会下调。Awh 的过表达会导致翼盘前部的节段极性基因 engrailed 的异位表达,从而导致模式化缺陷。此外,Notch功能增益介导的神经元缺陷在Awh过表达后得到明显的修复。激活的Notch抑制了Awh的活性,这表明Awh和Notch之间存在一个调控环。此外,Awh功能缺失导致的缺陷在含有LIM相互作用结构域的转录辅助因子Chip的作用下也得到了明显的修复。本研究强调了 Awh 和 Notch 之间的新型反馈调控。
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Notch and LIM-homeodomain protein Arrowhead regulate each other in a feedback mechanism to play a role in wing and neuronal development in Drosophila
Notch pathway is an evolutionarily conserved signaling system that operates to influence an astonishing array of cell fate decisions in different developmental contexts. To identify novel effectors of Notch signaling, we analyzed the whole transcriptome of Drosophila wing and eye imaginal discs in which an activated form of Notch was overexpressed. A LIM homeodomain protein Arrowhead (Awh) was identified as a novel candidate which plays a crucial role in Notch mediated developmental events. Awh alleles show strong genetic interaction with Notch pathway components. Awh loss-of-function upregulates Notch targets Cut and Wingless. Awh gain-of-function downregulates Notch targets by reducing the expression of ligand, Delta. Consequently, the expression of Wingless effector molecule Armadillo and its downstream targets, Senseless and Vestigial, also gets downregulated. Awh overexpression leads to ectopic expression of engrailed, a segment polarity gene in the anterior region of wing disc, leading to patterning defects. Additionally, Notch gain-of-function mediated neuronal defects get significantly rescued with Awh overexpression. Activated Notch inhibits Awh activity, suggesting a regulatory loop between Awh and Notch. Additionally, the defects caused by Awh gain-of-function were remarkably rescued by Chip, a LIM interaction domain containing transcriptional co-factor. The present study highlights the novel feedback regulation between Awh and Notch.
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