State Key Laboratory of Cell Biology, Shanghai Institute of Biochemistry and Cell Biology, Center for Excellence in Molecular Cell Science, Chinese Academy of Sciences, Shanghai, China.
University of Chinese Academy of Sciences, Beijing, China.
EMBO J. 2021 Jan 15;40(2):e105499. doi: 10.15252/embj.2020105499. Epub 2020 Nov 26.
Cilia of higher animals sense various environmental stimuli. Proper ciliary signaling requires appropriate extent of BBSome-mediated export of membrane receptors across ciliary barrier transition zone (TZ) through retrograde intraflagellar transport (IFT) machinery. How the barrier passage is controlled, however, remains unknown. Here, we show that small GTPase Rabl2 functions as a molecular switch for the outward TZ passage. Rabl2-GTP enters cilia by binding to IFT-B complex. Its GTP hydrolysis enables the outward TZ passage of the BBSome and its cargos with retrograde IFT machinery, whereas its persistent association leads to their shedding from IFT-B during the passing process and consequently ciliary retention. Rabl2 deficiency or expression of a GTP-locked mutant impairs the ciliary hedgehog signaling without interfering with ciliation and respectively results in different spectrums of mouse developmental disorders. We propose that the switch role of Rabl2 ensures proper turnover of the BBSome and ciliary membrane receptors to fine-tune cilia-dependent signaling for normal embryonic development and organismic homeostasis.
高等动物的纤毛感知各种环境刺激。适当的纤毛信号传导需要通过逆行鞭毛内运输(IFT)机制,使 BBSome 介导的膜受体在纤毛屏障过渡区(TZ)的适当程度的跨膜输出。然而,屏障通过的控制方式仍然未知。在这里,我们表明小 GTPase Rabl2 作为分子开关,控制着 TZ 的外向通过。Rabl2-GTP 通过与 IFT-B 复合物结合进入纤毛。其 GTP 水解使 BBSome 及其 cargo 与逆行 IFT 机制一起向外通过 TZ,而其持续的结合导致它们在通过过程中从 IFT-B 上脱落,从而导致纤毛滞留。Rabl2 缺失或表达锁定 GTP 的突变会损害纤毛信号转导而不干扰纤毛形成,分别导致不同谱的小鼠发育障碍。我们提出,Rabl2 的开关作用确保了 BBSome 和纤毛膜受体的适当周转率,以微调依赖纤毛的信号转导,从而维持正常的胚胎发育和机体稳态。