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Bardet-Biedl 综合征相关小 GTP 酶 ARL6(BBS3)在纤毛门或附近发挥作用,并调节 Wnt 信号通路。

Bardet-Biedl syndrome-associated small GTPase ARL6 (BBS3) functions at or near the ciliary gate and modulates Wnt signaling.

机构信息

Department of Molecular Biology and Biochemistry, Simon Fraser University, Burnaby, British Columbia V5A 1S6, Canada.

出版信息

J Biol Chem. 2010 May 21;285(21):16218-30. doi: 10.1074/jbc.M109.070953. Epub 2010 Mar 5.

Abstract

The expansive family of metazoan ADP-ribosylation factor and ADP-ribosylation factor-like small GTPases is known to play essential roles in modulating membrane trafficking and cytoskeletal functions. Here, we present the crystal structure of ARL6, mutations in which cause Bardet-Biedl syndrome (BBS3), and reveal its unique ring-like localization at the distal end of basal bodies, in proximity to the so-called ciliary gate where vesicles carrying ciliary cargo fuse with the membrane. Overproduction of GDP- or GTP-locked variants of ARL6/BBS3 in vivo influences primary cilium length and abundance. ARL6/BBS3 also modulates Wnt signaling, a signal transduction pathway whose association with cilia in vertebrates is just emerging. Importantly, this signaling function is lost in ARL6 variants containing BBS-associated point mutations. By determining the structure of GTP-bound ARL6/BBS3, coupled with functional assays, we provide a mechanistic explanation for such pathogenic alterations, namely altered nucleotide binding. Our findings therefore establish a previously unknown role for ARL6/BBS3 in mammalian ciliary (dis)assembly and Wnt signaling and provide the first structural information for a BBS protein.

摘要

后生动物 ADP-核糖基化因子和 ADP-核糖基化因子样小 GTP 酶家族已知在调节膜运输和细胞骨架功能方面发挥着重要作用。在这里,我们展示了 ARL6 的晶体结构,其突变会导致 Bardet-Biedl 综合征(BBS3),并揭示了其在基底体外端的独特环状定位,接近所谓的纤毛门,其中携带纤毛货物的囊泡与膜融合。ARL6/BBS3 的 GDP-或 GTP 锁定变体的过表达会影响初级纤毛的长度和丰度。ARL6/BBS3 还调节 Wnt 信号转导途径,该途径在脊椎动物中的纤毛关联刚刚出现。重要的是,这种信号功能在包含 BBS 相关点突变的 ARL6 变体中丧失。通过确定 GTP 结合的 ARL6/BBS3 的结构,以及功能测定,我们为这种致病改变提供了一种机制解释,即改变核苷酸结合。因此,我们的发现确立了 ARL6/BBS3 在哺乳动物纤毛(解体)组装和 Wnt 信号中的先前未知作用,并为 BBS 蛋白提供了第一个结构信息。

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