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Rebuilding essential active zone functions within a synapse.

Chao Tan, Shan Shan H Wang, Giovanni de Nola, Pascal S Kaeser
Other Neuron 2022 29 trích dẫn
PubMed DOI
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Study Design

Loại nghiên cứu
Other
Đối tượng nghiên cứu
In vitro neuronal model
Can thiệp
Rebuilding essential active zone functions within a synapse. None
Đối chứng
None
Kết quả chính
Synaptic active zone assembly
Xu hướng hiệu quả
Neutral
Nguy cơ sai lệch
Unclear

Abstract

Presynaptic active zones are molecular machines that control neurotransmitter secretion. They form sites for vesicle docking and priming and couple vesicles to Ca2+ entry for release triggering. The complexity of active zone machinery has made it challenging to determine its mechanisms in release. Simultaneous knockout of the active zone proteins RIM and ELKS disrupts active zone assembly, abolishes vesicle docking, and impairs release. We here rebuild docking, priming, and Ca2+ secretion coupling in these mutants without reinstating active zone networks. Re-expression of RIM zinc fingers recruited Munc13 to undocked vesicles and rendered the vesicles release competent. Action potential triggering of release was reconstituted by docking these primed vesicles to Ca2+ channels through attaching RIM zinc fingers to CaVβ4-subunits. Our work identifies an 80-kDa β4-Zn protein that bypasses the need for megadalton-sized secretory machines, establishes that fusion competence and docking are mechanistically separable, and defines RIM zinc finger-Munc13 complexes as hubs for active zone function.

Tóm lược

This work identifies an 80-kDa β4-Zn protein that bypasses the need for megadalton-sized secretory machines, establishes that fusion competence and docking are mechanistically separable, and defines RIM zinc finger-Munc13 complexes as hubs for active zone function.

Used In Evidence Reviews

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