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  Synaptic UNC13A protein variant causes increased neurotransmission and dyskinetic movement disorder

Lipstein, N., Verhoeven-Duif, N. M., Michelassi, F. E., Calloway, N., van Hasselt, P. M., Pienkowska, K., et al. (2017). Synaptic UNC13A protein variant causes increased neurotransmission and dyskinetic movement disorder. The Journal of Clinical Investigation, 127(3), 1005-1018. doi:10.1172/JCI90259.

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 Creators:
Lipstein, Noa1, Author           
Verhoeven-Duif, Nanda M., Author
Michelassi, Francesco E., Author
Calloway, Nathaniel, Author
van Hasselt, Peter M., Author
Pienkowska, Katarzyna, Author
van Haaften, Gijs, Author
van Haelst, Mieke M., Author
van Empelen, Ron, Author
Cuppen, Inge, Author
van Teeseling, Heleen C., Author
Evelein, Annemieke M. V., Author
Vorstman, Jacob A., Author
Thoms, Sven, Author
Jahn, Olaf2, Author           
Duran, Karen J., Author
Monroe, Glen R., Author
Ryan, Timothy A., Author
Taschenberger, Holger1, Author                 
Dittman, Jeremy S., Author
Rhee, JeongSeop3, Author           Visser, Gepke, AuthorJans, Judith J., AuthorBrose, Nils1, Author            more..
Affiliations:
1Molecular neurobiology, Max Planck Institute of Experimental Medicine, Max Planck Society, ou_2173659              
2Proteomics, Wiss. Servicegruppen, Max Planck Institute of Experimental Medicine, Max Planck Society, ou_2173673              
3Neurophysiology of synapse, Molecular neurobiology, Max Planck Institute of Experimental Medicine, Max Planck Society, ou_2173660              

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 Abstract: Munc13 proteins are essential regulators of neurotransmitter release at nerve cell synapses. They mediate the priming step that renders synaptic vesicles fusion-competent, and their genetic elimination causes a complete block of synaptic transmission. Here we have described a patient displaying a disorder characterized by a dyskinetic movement disorder, developmental delay, and autism. Using whole-exome sequencing, we have shown that this condition is associated with a rare, de novo Pro814Leu variant in the major human Munc13 paralog UNC13A (also known as Munc13-1). Electrophysiological studies in murine neuronal cultures and functional analyses in Caenorhabditis elegans revealed that the UNC13A variant causes a distinct dominant gain of function that is characterized by increased fusion propensity of synaptic vesicles, which leads to increased initial synaptic vesicle release probability and abnormal short-term synaptic plasticity. Our study underscores the critical importance of fine-tuned presynaptic control in normal brain function. Further, it adds the neuronal Munc13 proteins and the synaptic vesicle priming process that they control to the known etiological mechanisms of psychiatric and neurological synaptopathies.

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Language(s): eng - English
 Dates: 2016-12-152017-02-132017-03
 Publication Status: Issued
 Pages: -
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 Table of Contents: -
 Rev. Type: Peer
 Identifiers: DOI: 10.1172/JCI90259
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Title: The Journal of Clinical Investigation
Source Genre: Journal
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Publ. Info: New York, NY : American Society for Clinical Investigation
Pages: - Volume / Issue: 127 (3) Sequence Number: - Start / End Page: 1005 - 1018 Identifier: ISSN: 0021-9738
CoNE: https://pure.mpg.de/cone/journals/resource/954926940717_2