Zhang Jie, Carver Chase M, Choveau Frank S, Shapiro Mark S
Department of Physiology, University of Texas Health Science Center at San Antonio, San Antonio, TX 78229, USA.
Department of Physiology, University of Texas Health Science Center at San Antonio, San Antonio, TX 78229, USA.
Neuron. 2016 Oct 19;92(2):461-478. doi: 10.1016/j.neuron.2016.09.014. Epub 2016 Sep 29.
The fidelity of neuronal signaling requires organization of signaling molecules into macromolecular complexes, whose components are in intimate proximity. The intrinsic diffraction limit of light makes visualization of individual signaling complexes using visible light extremely difficult. However, using super-resolution stochastic optical reconstruction microscopy (STORM), we observed intimate association of individual molecules within signaling complexes containing ion channels (M-type K, L-type Ca, or TRPV1 channels) and G protein-coupled receptors coupled by the scaffolding protein A-kinase-anchoring protein (AKAP)79/150. Some channels assembled as multi-channel supercomplexes. Surprisingly, we identified novel layers of interplay within macromolecular complexes containing diverse channel types at the single-complex level in sensory neurons, dependent on AKAP79/150. Electrophysiological studies revealed that such ion channels are functionally coupled as well. Our findings illustrate the novel role of AKAP79/150 as a molecular coupler of different channels that conveys crosstalk between channel activities within single microdomains in tuning the physiological response of neurons.
神经元信号传导的保真度需要将信号分子组织成大分子复合物,其组分紧密相邻。光的固有衍射极限使得使用可见光可视化单个信号复合物极其困难。然而,利用超分辨率随机光学重建显微镜(STORM),我们观察到在含有离子通道(M型钾通道、L型钙通道或TRPV1通道)和由支架蛋白A激酶锚定蛋白(AKAP)79/150偶联的G蛋白偶联受体的信号复合物中,单个分子紧密关联。一些通道组装成多通道超复合物。令人惊讶的是,我们在感觉神经元的单复合物水平上,在含有不同通道类型的大分子复合物中发现了新的相互作用层次,这依赖于AKAP79/150。电生理研究表明,此类离子通道在功能上也是偶联的。我们的发现阐明了AKAP79/150作为不同通道的分子偶联剂的新作用,它在调节神经元的生理反应时,在单个微区内传递通道活动之间的串扰。