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LRRTM3 Regulates Excitatory Synapse Development through Alternative Splicing and Neurexin Binding

Authors
Um, Ji WonChoi, Tae-YongKang, HyeyeonCho, Yi SulChoii, GayoungUvarov, PavelPark, DongseokJeong, DaunJeon, SangminLee, DongminKim, HyunLee, Seung-HeeBae, Yong-ChulChoi, Se-YoungAiraksinen, Matti S.Ko, Jaewon
Issue Date
2-2월-2016
Publisher
CELL PRESS
Keywords
Alternative splicing; Dentate gyrus; Excitatory synapse development; Glypican; LRRTM3; LRRTM4; Neurexin
Citation
CELL REPORTS, v.14, no.4, pp.808 - 822
Indexed
SCIE
SCOPUS
Journal Title
CELL REPORTS
Volume
14
Number
4
Start Page
808
End Page
822
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/89556
DOI
10.1016/j.celrep.2015.12.081
ISSN
2211-1247
Abstract
The four members of the LRRTM family (LRRTM1-4) are postsynaptic adhesion molecules essential for excitatory synapse development. They have also been implicated in neuropsychiatric diseases. Here, we focus on LRRTM3, showing that two distinct LRRTM3 variants generated by alternative splicing regulate LRRTM3 interaction with PSD-95, but not its excitatory synapse-promoting activity. Overexpression of either LRRTM3 variant increased excitatory synapse density in dentate gyrus (DG) granule neurons, whereas LRRTM3 knockdown decreased it. LRRTM3 also controlled activity-regulated AMPA receptor surface expression in an alternative splicing-dependent manner. Furthermore, Lrrtm3-knockout mice displayed specific alterations in excitatory synapse density, excitatory synaptic transmission and excitability in DG granule neurons but not in CA1 pyramidal neurons. Lastly, LRRTM3 required only specific splice variants of presynaptic neurexins for their synaptogenic activity. Collectively, our data highlight alternative splicing and differential presynaptic ligand utilization in the regulation of LRRTMs, revealing key regulatory mechanisms for excitatory synapse development.
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