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Updated: Feb 24, 2026

Immobilization of Caenorhabditis elegans to Analyze Intracellular Transport in Neurons
Published on: October 18, 2017
UNC-18 and Tomosyn Antagonistically Control Synaptic Vesicle Priming Downstream of UNC-13 in Caenorhabditis elegans
Seungmee Park1,2, Na-Ryum Bin1,2, Bin Yu3
1Divisions of Fundamental Neurobiology and.
Abstract:
Munc18-1/UNC-18 is believed to prime SNARE-mediated membrane fusion, yet the underlying mechanisms remain enigmatic. Here, we examine how potential gain-of-function mutations of Munc18-1/UNC-18 affect locomotory behavior and synaptic transmission, and how Munc18-1-mediated priming is related to Munc13-1/UNC-13 and Tomosyn/TOM-1, positive and negative SNARE regulators, respectively. We show that a Munc18-1(P335A)/UNC-18(P334A) mutation leads to significantly increased locomotory activity and acetylcholine release in Caenorhabditis elegans, as well as enhanced synaptic neurotransmission in cultured mammalian neurons. Importantly, similar to tom-1 null mutants, unc-18(P334A) mutants partially bypass the requirement of UNC-13. Moreover, unc-18(P334A) and tom-1 null mutations confer a strong synergy in suppressing the phenotypes of unc-13 mutants. Through biochemical experiments, we demonstrate that Munc18-1(P335A) exhibits enhanced activity in SNARE complex formation as well as in binding to the preformed SNARE complex, and partially bypasses the Munc13-1 requirement in liposome fusion assays. Our results indicate that Munc18-1/UNC-18 primes vesicle fusion downstream of Munc13-1/UNC-13 by templating SNARE complex assembly and acts antagonistically with Tomosyn/TOM-1.SIGNIFICANCE STATEMENT At presynaptic sites, SNARE-mediated membrane fusion is tightly regulated by several key proteins including Munc18/UNC-18, Munc13/UNC-13, and Tomosyn/TOM-1. However, how these proteins interact with each other to achieve the precise regulation of neurotransmitter release remains largely unclear. Using Caenorhabditis elegans as an in vivo model, we found that a gain-of-function mutant of UNC-18 increases locomotory activity and synaptic acetylcholine release, that it partially bypasses the requirement of UNC-13 for release, and that this bypass is synergistically augmented by the lack of TOM-1. We also elucidated the biochemical basis for the gain-of-function caused by this mutation. Thus, our study provides novel mechanistic insights into how Munc18/UNC-18 primes synaptic vesicle release and how this protein interacts functionally with Munc13/UNC-13 and Tomosyn/TOM-1.
Insights
A Munc18-1/UNC-18 mutation enhances synaptic vesicle release and locomotion by improving SNARE complex formation. This gain-of-function mutant partially bypasses UNC-13 requirements, revealing Munc18-1
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- SNARE-mediated membrane fusion is crucial for neurotransmitter release.
- Munc18-1/UNC-18 is a key regulator of this process, but its precise mechanism remains unclear.
- Interactions with Munc13-1/UNC-13 and Tomosyn/TOM-1 are known but not fully elucidated.
Purpose of the Study:
- To investigate the functional consequences of Munc18-1/UNC-18 gain-of-function mutations.
- To elucidate the relationship between Munc18-1/UNC-18, Munc13-1/UNC-13, and Tomosyn/TOM-1 in regulating synaptic transmission.
- To understand the biochemical basis of Munc18-1/UNC-18's role in priming SNARE-mediated fusion.
Main Methods:
- Utilized *Caenorhabditis elegans* as an in vivo model to study locomotory behavior and acetylcholine release.
- Employed cultured mammalian neurons to assess synaptic neurotransmission.
- Performed biochemical experiments, including liposome fusion assays, to analyze SNARE complex formation and binding.
Main Results:
- A Munc18-1(P335A)/UNC-18(P334A) mutation significantly increased locomotory activity and acetylcholine release.
- This mutation led to enhanced synaptic neurotransmission in mammalian neurons.
- Mutants partially bypassed the requirement for UNC-13 and showed synergistic suppression of *unc-13* phenotypes with *tom-1* null mutations.
- Biochemical assays revealed enhanced SNARE complex formation and binding by Munc18-1(P335A).
Conclusions:
- Munc18-1/UNC-18 primes vesicle fusion downstream of Munc13-1/UNC-13 by templating SNARE complex assembly.
- Munc18-1/UNC-18 acts antagonistically with Tomosyn/TOM-1 in regulating membrane fusion.
- The study provides novel mechanistic insights into the regulation of synaptic vesicle release.
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