| Literature DB >> 25411505 |
Hiroshi Matsukawa1, Sachiko Akiyoshi-Nishimura1, Qi Zhang1, Rafael Luján2, Kazuhiko Yamaguchi1, Hiromichi Goto1, Kunio Yaguchi1, Tsutomu Hashikawa3, Chie Sano1, Ryuichi Shigemoto4, Toshiaki Nakashiba1, Shigeyoshi Itohara5.
Abstract
Synaptic cell adhesion molecules are increasingly gaining attention for conferring specific properties to individual synapses. Netrin-G1 and netrin-G2 are trans-synaptic adhesion molecules that distribute on distinct axons, and their presence restricts the expression of their cognate receptors, NGL1 and NGL2, respectively, to specific subdendritic segments of target neurons. However, the neural circuits and functional roles of netrin-G isoform complexes remain unclear. Here, we use netrin-G-KO and NGL-KO mice to reveal that netrin-G1/NGL1 and netrin-G2/NGL2 interactions specify excitatory synapses in independent hippocampal pathways. In the hippocampal CA1 area, netrin-G1/NGL1 and netrin-G2/NGL2 were expressed in the temporoammonic and Schaffer collateral pathways, respectively. The lack of presynaptic netrin-Gs led to the dispersion of NGLs from postsynaptic membranes. In accord, netrin-G mutant synapses displayed opposing phenotypes in long-term and short-term plasticity through discrete biochemical pathways. The plasticity phenotypes in netrin-G-KOs were phenocopied in NGL-KOs, with a corresponding loss of netrin-Gs from presynaptic membranes. Our findings show that netrin-G/NGL interactions differentially control synaptic plasticity in distinct circuits via retrograde signaling mechanisms and explain how synaptic inputs are diversified to control neuronal activity.Entities:
Keywords: excitatory synapse; mice; netrin-G1; netrin-G2; pathway specificity; trans-synaptic adhesion molecule
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Year: 2014 PMID: 25411505 PMCID: PMC6608433 DOI: 10.1523/JNEUROSCI.1141-14.2014
Source DB: PubMed Journal: J Neurosci ISSN: 0270-6474 Impact factor: 6.167