Literature DB >> 28498492

Multiple roles of afadin in the ultrastructural morphogenesis of mouse hippocampal mossy fiber synapses.

Kousyoku Sai1, Shujie Wang1,2, Aika Kaito1, Takeshi Fujiwara1,2, Tomohiko Maruo2,3, Yu Itoh1, Muneaki Miyata3, Shotaro Sakakibara3, Naoyuki Miyazaki4, Kazuyoshi Murata4, Yuuki Yamaguchi5, Tomohiro Haruta6, Hideo Nishioka6, Yuki Motojima7, Miyuki Komura7, Kazushi Kimura8, Kenji Mandai2,3, Yoshimi Takai2,3, Akira Mizoguchi1,2.   

Abstract

A hippocampal mossy fiber synapse, which is implicated in learning and memory, has a complex structure in which mossy fiber boutons attach to the dendritic shaft by puncta adherentia junctions (PAJs) and wrap around a multiply-branched spine, forming synaptic junctions. Here, we electron microscopically analyzed the ultrastructure of this synapse in afadin-deficient mice. Transmission electron microscopy analysis revealed that typical PAJs with prominent symmetrical plasma membrane darkening undercoated with the thick filamentous cytoskeleton were observed in the control synapse, whereas in the afadin-deficient synapse, atypical PAJs with the symmetrical plasma membrane darkening, which was much less in thickness and darkness than those of the control typical PAJs, were observed. Immunoelectron microscopy analysis revealed that nectin-1, nectin-3, and N-cadherin were localized at the control typical PAJs, whereas nectin-1 and nectin-3 were localized at the afadin-deficient atypical PAJs to extents lower than those in the control synapse and N-cadherin was localized at their nonjunctional flanking regions. These results indicate that the atypical PAJs are formed by nectin-1 and nectin-3 independently of afadin and N-cadherin and that the typical PAJs are formed by afadin and N-cadherin cooperatively with nectin-1 and nectin-3. Serial block face-scanning electron microscopy analysis revealed that the complexity of postsynaptic spines and mossy fiber boutons, the number of spine heads, the area of postsynaptic densities, and the density of synaptic vesicles docked to active zones were decreased in the afadin-deficient synapse. These results indicate that afadin plays multiple roles in the complex ultrastructural morphogenesis of hippocampal mossy fiber synapses.
© 2017 Wiley Periodicals, Inc.

Entities:  

Keywords:  RRID:AB_1977459; RRID:AB_2038857; RRID:AB_2077527; RRID:AB_2292909; RRID:AB_2301751; RRID:AB_262044; RRID:AB_590847; RRID:AB_592587; RRID:SCR_000034; RRID:SCR_003070; RRID:SCR_014305; afadin, cadherin; hippocampus; mossy fiber, nectin; synapse

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Year:  2017        PMID: 28498492     DOI: 10.1002/cne.24238

Source DB:  PubMed          Journal:  J Comp Neurol        ISSN: 0021-9967            Impact factor:   3.215


  3 in total

1.  Immature morphological properties in subcellular-scale structures in the dentate gyrus of Schnurri-2 knockout mice: a model for schizophrenia and intellectual disability.

Authors:  Akito Nakao; Naoyuki Miyazaki; Koji Ohira; Hideo Hagihara; Tsuyoshi Takagi; Nobuteru Usuda; Shunsuke Ishii; Kazuyoshi Murata; Tsuyoshi Miyakawa
Journal:  Mol Brain       Date:  2017-12-12       Impact factor: 4.041

2.  Rehabilitative Impact of Exercise Training on Human Skeletal Muscle Transcriptional Programs in Parkinson's Disease.

Authors:  Kaleen M Lavin; Yongchao Ge; Stuart C Sealfon; Venugopalan D Nair; Katarzyna Wilk; Jeremy S McAdam; Samuel T Windham; Preeti Lakshman Kumar; Merry-Lynn N McDonald; Marcas M Bamman
Journal:  Front Physiol       Date:  2020-06-17       Impact factor: 4.566

3.  Postnatal nectin-3 knockdown induces structural abnormalities of hippocampal principal neurons and memory deficits in adult mice.

Authors:  Rui Liu; Han Wang; Hong-Li Wang; Ya-Xin Sun; Yun-Ai Su; Xiao-Dong Wang; Ji-Tao Li; Tian-Mei Si
Journal:  Hippocampus       Date:  2019-05-08       Impact factor: 3.899

  3 in total

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