[PDF][PDF] The morphological and molecular nature of synaptic vesicle priming at presynaptic active zones

C Imig, SW Min, S Krinner, M Arancillo, C Rosenmund… - Neuron, 2014 - cell.com
C Imig, SW Min, S Krinner, M Arancillo, C Rosenmund, TC Südhof, JS Rhee, N Brose
Neuron, 2014cell.com
Synaptic vesicle docking, priming, and fusion at active zones are orchestrated by a complex
molecular machinery. We employed hippocampal organotypic slice cultures from mice
lacking key presynaptic proteins, cryofixation, and three-dimensional electron tomography to
study the mechanism of synaptic vesicle docking in the same experimental setting, with high
precision, and in a near-native state. We dissected previously indistinguishable, sequential
steps in synaptic vesicle active zone recruitment (tethering) and membrane attachment …
Summary
Synaptic vesicle docking, priming, and fusion at active zones are orchestrated by a complex molecular machinery. We employed hippocampal organotypic slice cultures from mice lacking key presynaptic proteins, cryofixation, and three-dimensional electron tomography to study the mechanism of synaptic vesicle docking in the same experimental setting, with high precision, and in a near-native state. We dissected previously indistinguishable, sequential steps in synaptic vesicle active zone recruitment (tethering) and membrane attachment (docking) and found that vesicle docking requires Munc13/CAPS family priming proteins and all three neuronal SNAREs, but not Synaptotagmin-1 or Complexins. Our data indicate that membrane-attached vesicles comprise the readily releasable pool of fusion-competent vesicles and that synaptic vesicle docking, priming, and trans-SNARE complex assembly are the respective morphological, functional, and molecular manifestations of the same process, which operates downstream of vesicle tethering by active zone components.
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