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非洲爪蟾的体轴决定涉及轴蛋白、糖原合酶激酶3和β-连环蛋白的生化相互作用。

Axis determination in Xenopus involves biochemical interactions of axin, glycogen synthase kinase 3 and beta-catenin.

作者信息

Itoh K, Krupnik V E, Sokol S Y

机构信息

Department of Microbiology and Molecular Genetics, Harvard Medical School, Boston, Massachusetts, USA.

出版信息

Curr Biol. 1998 May 7;8(10):591-4. doi: 10.1016/s0960-9822(98)70229-5.

Abstract

Signaling by the Wnt family of extracellular proteins is critical in a variety of developmental processes in which cell and tissue polarity are established [1-5]. Wnt signal transduction has been studied mostly by the genetic approach in Drosophila and Caenorhabditis elegans [1,2,5], but the biochemical mechanisms involved remain to be elucidated. The Wnt pathway also operates during axis determination in vertebrates [3,5]. Frizzled receptors transduce a signal to Dishevelled, leading to inactivation of glycogen synthase kinase 3 (GSK3) and regulation of gene expression by the complex of beta-catenin with LEF/TCF (lymphocyte enhancer factor/T-cell factor) transcription factors [3,5]. Axin is a negative regulator of Wnt signaling and dorsal axial development in vertebrates [6]. Here, we demonstrate that axin is associated with GSK3 in the Xenopus embryo and we localize the GSK3-binding domain to a short region of axin. Binding of GSK3 correlates with the ability of axin to inhibit axial development and with the axis-inducing activity of its dominant-negative form (delta RGS). We also find that wild-type axin, but not delta RGS, forms a complex with beta-catenin. Thus, axin may act as a docking station mediating negative regulation of beta-catenin by GSK3 during dorsoventral axis determination in vertebrate embryos.

摘要

细胞外Wnt家族蛋白发出的信号在多种建立细胞和组织极性的发育过程中至关重要[1-5]。Wnt信号转导主要通过果蝇和秀丽隐杆线虫中的遗传学方法进行研究[1,2,5],但其涉及的生化机制仍有待阐明。Wnt信号通路在脊椎动物的轴决定过程中也发挥作用[3,5]。卷曲受体将信号传递给散乱蛋白,导致糖原合酶激酶3(GSK3)失活,并通过β-连环蛋白与LEF/TCF(淋巴细胞增强因子/T细胞因子)转录因子的复合物调节基因表达[3,5]。Axin是脊椎动物中Wnt信号和背轴发育的负调节因子[6]。在此,我们证明在非洲爪蟾胚胎中Axin与GSK3相关联,并且我们将GSK3结合结构域定位到Axin的一个短区域。GSK3的结合与Axin抑制轴发育的能力及其显性负性形式(δRGS)的轴诱导活性相关。我们还发现野生型Axin而非δRGS与β-连环蛋白形成复合物。因此,在脊椎动物胚胎的背腹轴决定过程中,Axin可能作为一个对接站介导GSK3对β-连环蛋白的负调节。

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