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Rho1在果蝇翅膀平面极性中具有多种功能。

Rho1 has multiple functions in Drosophila wing planar polarity.

作者信息

Yan Jie, Lu Qiuheng, Fang Xiaolan, Adler Paul N

机构信息

Biology Department, Department of Cell Biology, Morphogenesis and Regenerative Medicine Institute and Cancer Center, University of Virginia, Charlottesville, VA 22903, USA.

出版信息

Dev Biol. 2009 Sep 1;333(1):186-99. doi: 10.1016/j.ydbio.2009.06.027. Epub 2009 Jul 1.

Abstract

The frizzled (fz) signaling/signal transduction pathway controls planar cell polarity in both vertebrates and invertebrates. Previous data implicated Rho1 as a component of the fz pathway in Drosophila but it was unclear how it functioned. The existence of a G Protein Binding-Formin Homology 3 (GBD-FH3) domain in Multiple Wing Hairs, a downstream component of the pathway suggested that Rho1 might function by binding to and activating Mwh. We re-examined the role of Rho1 in wing planar polarity and found that it had multiple functions. Aberrant Rho1 activity led to changes in the number of hairs formed, changes in cell shape and F-actin and changes in cellular junctions. Experiments that utilized Rho effector loop mutations argued that these phenotypes were mediated by effects of Rho1 on the cytoskeleton and not by effects on transcription. We found strong positive genetic interactions between Rho1 and mwh, that Rho1 regulated the accumulation of Mwh protein and that these two proteins could be co-immunoprecipitated. The Mwh GBD:FH3 domain was sufficient for co-immunoprecipitation with Rho1, consistent with this domain mediating the interaction. However, further experiments showed that Rho1 function in wing differentiation was not limited to interacting with Mwh. We established by genetic experiments that Rho1 could influence hair morphogenesis in the absence of mwh and that the disruption of Rho1 activity could interfere with the zig zag accumulation pattern of upstream fz pathway proteins. Thus, our results argue that in addition to its interaction with Mwh Rho1 has functions in wing planar polarity that are parallel to and upstream of fz. The upstream function may be an indirect one and associated with the requirement for normal apical basal polarity and adherens junctions for the accumulation of PCP protein complexes.

摘要

卷曲蛋白(fz)信号传导/信号转导通路控制脊椎动物和无脊椎动物的平面细胞极性。先前的数据表明Rho1是果蝇fz通路的一个组成部分,但尚不清楚其如何发挥作用。该通路的下游成分多毛翅(Multiple Wing Hairs)中存在一个G蛋白结合-formin同源3(GBD-FH3)结构域,这表明Rho1可能通过与Mwh结合并激活Mwh来发挥作用。我们重新研究了Rho1在翅平面极性中的作用,发现它具有多种功能。Rho1活性异常导致毛发生成数量的变化、细胞形状和F-肌动蛋白的变化以及细胞连接的变化。利用Rho效应环突变的实验表明,这些表型是由Rho1对细胞骨架的作用介导的,而不是对转录的作用。我们发现Rho1和mwh之间存在强烈的正向遗传相互作用,Rho1调节Mwh蛋白的积累,并且这两种蛋白可以共免疫沉淀。Mwh的GBD:FH3结构域足以与Rho1共免疫沉淀,这与该结构域介导相互作用一致。然而,进一步的实验表明,Rho1在翅分化中的功能并不局限于与Mwh相互作用。我们通过遗传实验确定,在没有mwh的情况下,Rho1可以影响毛发生成,并且Rho1活性的破坏会干扰fz通路上游蛋白的锯齿状积累模式。因此,我们的结果表明,除了与Mwh相互作用外,Rho1在翅平面极性中还具有与fz平行且在其上游的功能。上游功能可能是间接的,并且与正常的顶基极性和粘附连接对PCP蛋白复合物积累的需求有关。

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Rho1 has multiple functions in Drosophila wing planar polarity.Rho1在果蝇翅膀平面极性中具有多种功能。
Dev Biol. 2009 Sep 1;333(1):186-99. doi: 10.1016/j.ydbio.2009.06.027. Epub 2009 Jul 1.

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