α2δ-2 mediates coupling of presynaptic calcium entry to vesicle release in hippocampal parvalbumin-expressing interneurons
The 2{delta} family of auxiliary voltage-gated calcium channel (VGCC) subunits have critical but incompletely understood roles in brain function. Parvalbumin-positive (PV+) interneurons in the hippocampus highly express the 2{delta}-2 isoform, and mice lacking 2{delta}-2 exhibit spontaneous seizures. Thus, we examined PV+ neuron-mediated synaptic inhibition in acutely prepared brain slices from 2{delta}-2 knockout (KO) mice. In the inner molecular layer of the dentate gyrus, 2{delta}-2 KO mice demonstrated an increase in the excitation/inhibition ratio of synaptic inputs onto granule cells. We then used optogenetics to activate PV+ interneurons, which produced dramatically smaller inhibitory synaptic currents in granule cells from 2{delta}-2 KO mice. There was a reduction in PV+ inputs onto granule cells as determined by immunostaining. Functionally, these inputs had a lower probability of GABA release and a decreased readily releasable pool of vesicles compared to littermate controls. VGCC coupling to presynaptic vesicle release was also reduced in dentate gyrus PV+ cells in 2{delta}-2 KO mice, based on manipulations of intracellular and extracellular calcium. Together, our data indicate that 2{delta}-2 plays a critical role in PV+ interneuron-mediated synaptic inhibition, which may contribute to seizures in 2{delta}-2 mutant mice.