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Emperador-Melero, J.

Publications and source records attributed to Emperador-Melero, J..

2 recordsLinked to original sources

Molecular definition of distinct active zone protein machineries for Ca2+ channel clustering and synaptic vesicle priming

Action potentials trigger neurotransmitter release with minimal delay. Active zones mediate this temporal precision by co-organizing primed vesicles with CaV2 Ca2+ channels. The presumed model is that scaffolding proteins directly tether primed vesicles to CaV2s. We find that CaV2 clustering and vesicle priming are executed by separate machineries. At hippocampal synapses, CaV2 nanoclusters are positioned at variable distances from those of the priming protein Munc13. The active zone organizer RIM anchors both proteins, but distinct interaction motifs independently execute these functions. In heterologous cells, Liprin- and RIM from co- assemblies that are separate from CaV2-organizing complexes upon co-transfection. At synapses, Liprin-1-4 knockout impairs vesicle priming, but not CaV2 clustering. The cell adhesion protein PTP{sigma} recruits Liprin-, RIM and Munc13 into priming complexes without co- clustering of CaV2s. We conclude that active zones consist of distinct complexes to organize CaV2s and vesicle priming, and Liprin- and PTP{sigma} specifically support priming site assembly.

neuroscience↗

Intact synapse structure and function after combined knockout of PTPδ, PTPσ and LAR

It has long been proposed that Leukocyte common Antigen-Related Receptor Protein Tyrosine Phosphatases (LAR-RPTPs) are cell-adhesion proteins for the control of synapse assembly. Their synaptic nanoscale localization, however, has not been established, and the fine structure of synapses after knockout of the three vertebrate genes for LAR-RPTPs (PTP{delta}, PTP{sigma} and LAR) has not been tested. Here, we find that PTP{delta} is precisely apposed to postsynaptic scaffolds at excitatory and inhibitory synapses using superresolution microscopy. We generated triple-conditional knockout mice for PTP{delta}, PTP{sigma} and LAR to test whether they are essential for synapse structure. While mild effects on synaptic vesicle clustering and active zone architecture were detected, synapse numbers and their overall structure were unaffected, membrane anchoring of the active zone persisted, and vesicle docking and release were normal. We conclude that LAR-RPTPs, despite their localization at synaptic appositions, are dispensable for the organization and function of presynaptic nerve terminals.

neuroscience↗