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Reorganization of Septins Modulates Synaptic Transmission at Neuromuscular Junctions

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dc.contributor.author Nurullin L.
dc.contributor.author Khuzakhmetova V.
dc.contributor.author Khaziev E.
dc.contributor.author Samigullin D.
dc.contributor.author Tsentsevitsky A.
dc.contributor.author Skorinkin A.
dc.contributor.author Bukharaeva E.
dc.contributor.author Vagin O.
dc.date.accessioned 2020-01-15T21:18:14Z
dc.date.available 2020-01-15T21:18:14Z
dc.date.issued 2019
dc.identifier.issn 0306-4522
dc.identifier.uri https://dspace.kpfu.ru/xmlui/handle/net/155625
dc.description.abstract © 2019 IBRO Septins (Sept) are highly conserved Guanosine-5'-triphosphate (GTP)-binding cytoskeletal proteins involved in neuronal signaling in the central nervous system but their involvement in signal transmission in peripheral synapses remains unclear. Sept5 and Sept9 proteins were detected in mouse peripheral neuromuscular junctions by immunofluorescence with a greater degree of co-localization with presynaptic than postsynaptic membranes. Preincubation of neuromuscular junction preparations with the inhibitor of Sept dynamics, forchlorfenuron (FCF), decreased co-localization of Sept with presynaptic membranes. FCF introduced ex vivo or in vivo had no effect on the amplitude of the spontaneous endplate currents (EPCs), indicating the absence of postsynaptic effects of FCF. However, FCF decreased acetylcholine (ACh) quantal release in response to nerve stimulation, reduced the amplitude of evoked quantal currents and decreased the number of quanta with long synaptic delays, demonstrating the presynaptic action of FCF. Nevertheless, FCF had no effect on the amplitude of calcium transient in nerve terminals, as detected by calcium-sensitive dye, and slightly decreased the ratio of the second response amplitude to the first one in paired-pulse experiments. These results suggest that FCF-induced decrease in ACh quantal secretion is not due to a decrease in Ca 2+ influx but is likely related to the impairment of later stages occurring after Ca 2+ entry, such as trafficking, docking or membrane fusion of synaptic vesicles. Therefore, Sept9 and Sept5 are abundantly expressed in presynaptic membranes, and disruption of Sept dynamics suppresses the evoked synchronous and delayed asynchronous quantal release of ACh, strongly suggesting an important role of Sept in the regulation of neurotransmission in peripheral synapses.
dc.relation.ispartofseries Neuroscience
dc.subject acetylcholine quantal release
dc.subject calcium imaging
dc.subject neuromuscular junction
dc.subject septins
dc.title Reorganization of Septins Modulates Synaptic Transmission at Neuromuscular Junctions
dc.type Article
dc.relation.ispartofseries-volume 404
dc.collection Публикации сотрудников КФУ
dc.relation.startpage 91
dc.source.id SCOPUS03064522-2019-404-SID85062228122


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  • Публикации сотрудников КФУ Scopus [24551]
    Коллекция содержит публикации сотрудников Казанского федерального (до 2010 года Казанского государственного) университета, проиндексированные в БД Scopus, начиная с 1970г.

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