Novel Roles for Diacylglycerol in Synaptic Vesicle Priming and Release Revealed by Complete Reconstitution of Core Protein Machinery
Sundaram, R. V. K.; Chatterjee, A.; Bera, M.; Grushin, K.; Panda, A.; Li, F.; Coleman, J.; Ramakrishnan, S.; Ernst, A.; Gupta, K.; Rothman, J. E.; Krishnakumar, S. S.
Show abstract
Here we introduce the full functional reconstitution of genetically-validated core protein machinery (SNAREs, Munc13, Munc18, Synaptotagmin, Complexin) for synaptic vesicle priming and release in a geometry that enables detailed characterization of the fate of docked vesicles both before and after release is triggered with Ca2+. Using this novel setup, we discover new roles for diacylglycerol (DAG) in regulating vesicle priming and Ca2+-triggered release involving the SNARE assembly chaperone Munc13. We find that low concentrations of DAG profoundly accelerate the rate of Ca2+-dependent release, and high concentrations reduce clamping and permit extensive spontaneous release. As expected, DAG also increases the number of ready-release vesicles. Dynamic single-molecule imaging of Complexin binding to ready-release vesicles directly establishes that DAG accelerates the rate of SNAREpin assembly mediated by Munc13 and Munc18 chaperones. The selective effects of physiologically validated mutations confirmed that the Munc18-Syntaxin-VAMP2 template complex is a functional intermediate in the production of primed, ready-release vesicles, which requires the coordinated action of Munc13 and Munc18. SIGNIFICANCE STATEMENTMunc13 and Munc18 are SNARE-associated chaperones that act as "priming" factors, facilitating the formation of a pool of docked, release-ready vesicles and regulating Ca2+-evoked neurotransmitter release. Although important insights into Munc18/Munc13 function have been gained, how they assemble and operate together remains enigmatic. To address this, we developed a novel biochemically-defined fusion assay which enabled us to investigate the cooperative action of Munc13 and Munc18 in molecular terms. We find that Munc18 nucleates the SNARE complex, while Munc13 promotes and accelerates the SNARE assembly in a DAG-dependent manner. The concerted action of Munc13 and Munc18 stages the SNARE assembly process to ensure efficient clamping and formation of stably docked vesicles, which can be triggered to fuse rapidly ([~]10 msec) upon Ca2+ influx.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Synaptophysin Chaperones the Assembly of 12 SNAREpins under each Ready-Release Vesicle 98%
- Synaptotagmin 1 oligomerization via the juxtamembrane linker regulates spontaneous and evoked neurotransmitter release 97%
- Neurotransmitter release is triggered by a calcium-induced rearrangement in the Synaptotagmin-1/SNARE complex primary interface 96%
Similar papers in this journal
- VARP binds SNX27 to promote endosomal supercomplex formation on membranes 97%
- Activated I-BAR IRSp53 clustering controls the formation of VASP-actin-based membrane protrusions 96%
- Cargo selective vesicle tethering: the structural basis for binding of specific cargo proteins by the Golgi tether component TBC1D23 95%
Similar papers in this journal
- The neuronal calcium sensor Synaptotagmin-1 and SNARE proteins cooperate to dilate fusion pores 97%
- Two forms of Opa1 cooperate to complete fusion of the mitochondrial inner-membrane 96%
- Direct Binding of Phosphatidylglycerol at Specific Sites Modulates Desensitization of a Pentameric Ligand-Gated Ion Channel 96%
Similar papers in this journal
- Two successive oligomeric Munc13 assemblies scaffold vesicle docking and SNARE assembly to support neurotransmitter release 97%
- Synaptotagmin 7 outperforms synaptotagmin 1 to open and stabilize nascent fusion pores via robust membrane penetration 96%
- Cardiolipin dynamics promote membrane remodeling by mitochondrial OPA1 96%
Similar papers in this journal
- A cholesterol switch controls phospholipid scrambling by G protein-coupled receptors 97%
- SH2-mediated steric occlusion of the C2 domain regulates autoinhibition of SHIP1 inositol 5-phosphatase 96%
- Two stages of substrate discrimination dictate selectivity in the E. coli MetNI-Q ABC transporter system 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.