Department of Neurobiology, University of Alabama at Birmingham, Birmingham, AL, 35294, USA.
Howard Hughes Medical Institute Janelia Research Campus, Ashburn, VA, 20147, USA.
Nat Commun. 2023 May 30;14(1):3113. doi: 10.1038/s41467-023-38854-2.
Precise alignment of pre- and postsynaptic elements optimizes the activation of glutamate receptors at excitatory synapses. Nonetheless, glutamate that diffuses out of the synaptic cleft can have actions at distant receptors, a mode of transmission called spillover. To uncover the extrasynaptic actions of glutamate, we localized AMPA receptors (AMPARs) mediating spillover transmission between climbing fibers and molecular layer interneurons in the cerebellar cortex. We found that climbing fiber spillover generates calcium transients mediated by Ca-permeable AMPARs at parallel fiber synapses. Spillover occludes parallel fiber synaptic currents, indicating that separate, independently regulated afferent pathways converge onto a common pool of AMPARs. Together these findings demonstrate a circuit motif wherein glutamate 'spill-in' from an unconnected afferent pathway co-opts synaptic receptors, allowing activation of postsynaptic AMPARs even when canonical glutamate release is suppressed.
精确对准突触前和突触后成分可优化兴奋性突触处谷氨酸受体的激活。然而,从突触间隙扩散出来的谷氨酸可以在远处的受体上发挥作用,这种传递方式称为溢出。为了揭示谷氨酸的突触外作用,我们定位了 AMPA 受体(AMPARs),介导小脑皮层中 climbing fibers 和分子层中间神经元之间的溢出传递。我们发现 climbing fiber 溢出通过 Ca 可渗透的 AMPAR 在平行纤维突触处产生钙瞬变。溢出阻断了平行纤维突触电流,表明单独的、独立调节的传入途径汇聚到共同的 AMPAR 池中。这些发现共同证明了一种电路模式,其中来自未连接的传入途径的谷氨酸“溢出”会劫持突触受体,即使经典的谷氨酸释放受到抑制,也能激活突触后 AMPAR。