Mukhopadhyay Saikat, Lu Yun, Shaham Shai, Sengupta Piali
Department of Biology and National Center for Behavioral Genomics, Brandeis University, Waltham, MA 02454, USA.
Dev Cell. 2008 May;14(5):762-74. doi: 10.1016/j.devcel.2008.03.002.
Nonmotile primary cilia are sensory organelles composed of a microtubular axoneme and a surrounding membrane sheath that houses signaling molecules. Optimal cellular function requires the precise regulation of axoneme assembly, membrane biogenesis, and signaling protein targeting and localization via as yet poorly understood mechanisms. Here, we show that sensory signaling is required to maintain the architecture of the specialized AWB olfactory neuron cilia in C. elegans. Decreased sensory signaling results in alteration of axoneme length and expansion of a membraneous structure, thereby altering the topological distribution of a subset of ciliary transmembrane signaling molecules. Signaling-regulated alteration of ciliary structures can be bypassed by modulation of intracellular cGMP or calcium levels and requires kinesin-II-driven intraflagellar transport (IFT), as well as BBS- and RAB8-related proteins. Our results suggest that compensatory mechanisms in response to altered levels of sensory activity modulate AWB cilia architecture, revealing remarkable plasticity in the regulation of cilia structure.
非运动性初级纤毛是由微管轴丝和包裹着信号分子的周围膜鞘组成的感觉细胞器。最佳的细胞功能需要通过尚未完全了解的机制精确调控轴丝组装、膜生物合成以及信号蛋白的靶向和定位。在这里,我们表明感觉信号传导对于维持秀丽隐杆线虫中特化的AWB嗅觉神经元纤毛的结构是必需的。感觉信号传导减少会导致轴丝长度改变和膜结构扩张,从而改变纤毛跨膜信号分子子集的拓扑分布。通过调节细胞内cGMP或钙水平可以绕过信号传导调节的纤毛结构改变,这需要驱动蛋白-II驱动的鞭毛内运输(IFT),以及与BBS和RAB8相关的蛋白质。我们的结果表明,响应感觉活动水平改变的补偿机制调节AWB纤毛结构,揭示了纤毛结构调控中显著的可塑性。