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Control of neurotransmitter release by two distinct membrane-binding faces of the Munc13-1 C(1)C(2)B region

Munc13-1 plays a central role in neurotransmitter release through its conserved C-terminal region, which includes a diacyglycerol (DAG)-binding C(1) domain, a Ca(2+)/PIP(2)-binding C(2)B domain, a MUN domain and a C(2)C domain. Munc13-1 was proposed to bridge synaptic vesicles to the plasma membrane...

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Autores principales: Camacho, Marcial, Quade, Bradley, Trimbuch, Thorsten, Xu, Junjie, Sari, Levent, Rizo, Josep, Rosenmund, Christian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8648301/
https://www.ncbi.nlm.nih.gov/pubmed/34779770
http://dx.doi.org/10.7554/eLife.72030
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author Camacho, Marcial
Quade, Bradley
Trimbuch, Thorsten
Xu, Junjie
Sari, Levent
Rizo, Josep
Rosenmund, Christian
author_facet Camacho, Marcial
Quade, Bradley
Trimbuch, Thorsten
Xu, Junjie
Sari, Levent
Rizo, Josep
Rosenmund, Christian
author_sort Camacho, Marcial
collection PubMed
description Munc13-1 plays a central role in neurotransmitter release through its conserved C-terminal region, which includes a diacyglycerol (DAG)-binding C(1) domain, a Ca(2+)/PIP(2)-binding C(2)B domain, a MUN domain and a C(2)C domain. Munc13-1 was proposed to bridge synaptic vesicles to the plasma membrane through distinct interactions of the C(1)C(2)B region with the plasma membrane: (i) one involving a polybasic face that is expected to yield a perpendicular orientation of Munc13-1 and hinder release; and (ii) another involving the DAG-Ca(2+)-PIP(2)-binding face that is predicted to result in a slanted orientation and facilitate release. Here, we have tested this model and investigated the role of the C(1)C(2)B region in neurotransmitter release. We find that K603E or R769E point mutations in the polybasic face severely impair Ca(2+)-independent liposome bridging and fusion in in vitro reconstitution assays, and synaptic vesicle priming in primary murine hippocampal cultures. A K720E mutation in the polybasic face and a K706E mutation in the C(2)B domain Ca(2+)-binding loops have milder effects in reconstitution assays and do not affect vesicle priming, but enhance or impair Ca(2+)-evoked release, respectively. The phenotypes caused by combining these mutations are dominated by the K603E and R769E mutations. Our results show that the C(1)-C(2)B region of Munc13-1 plays a central role in vesicle priming and support the notion that two distinct faces of this region control neurotransmitter release and short-term presynaptic plasticity.
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spelling pubmed-86483012021-12-08 Control of neurotransmitter release by two distinct membrane-binding faces of the Munc13-1 C(1)C(2)B region Camacho, Marcial Quade, Bradley Trimbuch, Thorsten Xu, Junjie Sari, Levent Rizo, Josep Rosenmund, Christian eLife Neuroscience Munc13-1 plays a central role in neurotransmitter release through its conserved C-terminal region, which includes a diacyglycerol (DAG)-binding C(1) domain, a Ca(2+)/PIP(2)-binding C(2)B domain, a MUN domain and a C(2)C domain. Munc13-1 was proposed to bridge synaptic vesicles to the plasma membrane through distinct interactions of the C(1)C(2)B region with the plasma membrane: (i) one involving a polybasic face that is expected to yield a perpendicular orientation of Munc13-1 and hinder release; and (ii) another involving the DAG-Ca(2+)-PIP(2)-binding face that is predicted to result in a slanted orientation and facilitate release. Here, we have tested this model and investigated the role of the C(1)C(2)B region in neurotransmitter release. We find that K603E or R769E point mutations in the polybasic face severely impair Ca(2+)-independent liposome bridging and fusion in in vitro reconstitution assays, and synaptic vesicle priming in primary murine hippocampal cultures. A K720E mutation in the polybasic face and a K706E mutation in the C(2)B domain Ca(2+)-binding loops have milder effects in reconstitution assays and do not affect vesicle priming, but enhance or impair Ca(2+)-evoked release, respectively. The phenotypes caused by combining these mutations are dominated by the K603E and R769E mutations. Our results show that the C(1)-C(2)B region of Munc13-1 plays a central role in vesicle priming and support the notion that two distinct faces of this region control neurotransmitter release and short-term presynaptic plasticity. eLife Sciences Publications, Ltd 2021-11-15 /pmc/articles/PMC8648301/ /pubmed/34779770 http://dx.doi.org/10.7554/eLife.72030 Text en © 2021, Camacho et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Neuroscience
Camacho, Marcial
Quade, Bradley
Trimbuch, Thorsten
Xu, Junjie
Sari, Levent
Rizo, Josep
Rosenmund, Christian
Control of neurotransmitter release by two distinct membrane-binding faces of the Munc13-1 C(1)C(2)B region
title Control of neurotransmitter release by two distinct membrane-binding faces of the Munc13-1 C(1)C(2)B region
title_full Control of neurotransmitter release by two distinct membrane-binding faces of the Munc13-1 C(1)C(2)B region
title_fullStr Control of neurotransmitter release by two distinct membrane-binding faces of the Munc13-1 C(1)C(2)B region
title_full_unstemmed Control of neurotransmitter release by two distinct membrane-binding faces of the Munc13-1 C(1)C(2)B region
title_short Control of neurotransmitter release by two distinct membrane-binding faces of the Munc13-1 C(1)C(2)B region
title_sort control of neurotransmitter release by two distinct membrane-binding faces of the munc13-1 c(1)c(2)b region
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8648301/
https://www.ncbi.nlm.nih.gov/pubmed/34779770
http://dx.doi.org/10.7554/eLife.72030
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