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Modulating and measuring Wingless signalling

机译:调制和测量无翼信令

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摘要

The main Wnt ligand of Drosophila activates a conserved canonical signalling pathway to regulate a plethora of cellular activities during development, regeneration and nervous system function. Here I first describe experimental means of measuring and modulating Wingless signalling in Drosophila cell culture. Various reporters have been devised by placing TCF-binding sites or DNA fragments from known target genes upstream of luciferase-coding sequences. Signalling can be activated in cells by addition of Wingless conditioned medium, treatment with a chemical inhibitor of Shaggy/GSK3 or transfection with a plasmid encoding activated Armadillo (Drosophila β-catenin). Measuring Wingless signalling in intact tissue is somewhat more challenging than in cell culture. Synthetic transgenic reporters have been devised but further improvements are needed to achieve sensitive responsiveness to Wingless at all times and places. As an alternative, gene traps in frizzled3 and notum/. wingful, two context-independent endogenous targets, can be used as reporters. It is hoped that further modification of these loci could lead to more versatile and sensitive means of detecting signalling. Many genetic tools are available to trigger ectopic signalling or prevent endogenous signalling. These mostly rely on RNAi-producing transgenes or the generation of mutant patches by mitotic recombination. New developments in genome engineering are opening further means of manipulating the components of Wingless signalling with exquisite temporal and spatial precision.
机译:果蝇的主要Wnt配体激活了保守的经典信号通路,以调节发育,再生和神经系统功能过程中的大量细胞活动。在这里,我首先描述在果蝇细胞培养中测量和调节无翅信号传导的实验方法。通过将来自已知靶基因的TCF结合位点或DNA片段置于萤光素酶编码序列的上游,设计了各种报道分子。可以通过添加无翅条件培养基,用Shaggy / GSK3的化学抑制剂处理或用编码激活的犰狳(Drosophilaβ-catenin)的质粒转染来激活细胞中的信号传导。在完整组织中测量无翼信号传导比在细胞培养中更具挑战性。已经设计了合成的转基因报告基因,但是需要进一步的改进以在任何时间和任何地方实现对Wingless的敏感反应。或者,将基因捕获在卷曲的3和notum /中。机翼的,两个与上下文无关的内源性目标可用作报告者。希望对这些基因座的进一步修饰可以导致检测信号的更加通用和灵敏的手段。许多遗传工具可用于触发异位信号或预防内源性信号。这些主要依靠产生RNAi的转基因或通过有丝分裂重组产生突变斑块。基因组工程的新发展为以精致的时空精度操纵无翼信号的组成部分提供了进一步的手段。

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