Brady Megan L, Jacob Tija C
Department of Pharmacology and Chemical Biology, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania, 15261.
Dev Neurobiol. 2015 Nov;75(11):1241-51. doi: 10.1002/dneu.22280. Epub 2015 Feb 18.
GABAA receptor subunit composition is a critical determinant of receptor localization and physiology, with synaptic receptors generating phasic inhibition and extrasynaptic receptors producing tonic inhibition. Extrasynaptically localized α5 GABAA receptors are largely responsible for tonic inhibition in hippocampal neurons. However, we show here that inhibitory synapses also contain a constant level of α5 GABAA receptors throughout neuronal development, as measured by its colocalization with gephyrin, the inhibitory postsynaptic scaffolding protein. Immunoprecipitation of the α5 subunit from both cultured neurons and adult rat brain coimmunoprecipitated gephyrin, confirming this interaction in vivo. Furthermore, the α5 subunit can interact with gephyrin independent of other synaptically localized alpha subunits, as shown by immunoprecipitation experiments in HEK cells. By replacing the α5 predicted gephyrin binding domain (Residues 370-385) with either the high affinity gephyrin binding domain of the α2 subunit or homologous residues from the extrasynaptic α4 subunit that does not interact with gephyrin, α5 GABAA receptor localization shifted into or out of the synapse, respectively. These shifts in the ratio of synaptic/extrasynaptic α5 localization disrupted dendritic outgrowth and spine maturation. In contrast to the predominant view of α5 GABAA receptors being extrasynaptic and modulating tonic inhibition, we identify an intimate association of the α5 subunit with gephyrin, resulting in constant synaptic levels of α5 GABAA R throughout circuit formation that regulates neuronal development.
GABAA受体亚基组成是受体定位和生理学的关键决定因素,突触受体产生相位抑制,而突触外受体产生紧张性抑制。突触外定位的α5 GABAA受体在很大程度上负责海马神经元的紧张性抑制。然而,我们在此表明,通过与抑制性突触后支架蛋白gephyrin共定位测量,抑制性突触在整个神经元发育过程中也含有恒定水平的α5 GABAA受体。从培养的神经元和成年大鼠脑中免疫沉淀α5亚基,共免疫沉淀出gephyrin,证实了体内的这种相互作用。此外,如在HEK细胞中的免疫沉淀实验所示,α5亚基可以独立于其他突触定位的α亚基与gephyrin相互作用。通过用α2亚基的高亲和力gephyrin结合域或不与gephyrin相互作用的突触外α4亚基的同源残基替换α5预测的gephyrin结合域(第370 - 385位残基),α5 GABAA受体定位分别移入或移出突触。突触/突触外α5定位比例的这些变化破坏了树突生长和棘突成熟。与α5 GABAA受体位于突触外并调节紧张性抑制的主流观点相反,我们发现α5亚基与gephyrin密切相关,导致在整个回路形成过程中α5 GABAA R的突触水平恒定,从而调节神经元发育。