Title : The neuroligins and their ligands: from structure to function at the synapse - Bourne_2014_J.Mol.Neurosci_53_387 |
Author(s) : Bourne Y , Marchot P |
Ref : Journal of Molecular Neuroscience , 53 :387 , 2014 |
Abstract :
The neuroligins are cell adhesion proteins whose extracellular domain belongs to the alpha/beta-hydrolase fold family of proteins, mainly containing enzymes and exemplified by acetylcholinesterase. The ectodomain of postsynaptic neuroligins interacts through a calcium ion with the ectodomain of presynaptic neurexins to form flexible trans-synaptic associations characterized by selectivity for neuroligin or neurexin subtypes. This heterophilic interaction, essential for synaptic differentiation, maturation, and maintenance, is regulated by gene selection, alternative mRNA splicing, and posttranslational modifications. Mutations leading to deficiencies in the expression, folding, maturation, and binding properties of either partner are associated with autism spectrum disorders. The currently available structural and functional data illustrate how these two families of cell adhesion molecules bridge the synaptic cleft to participate in synapse plasticity and support its dynamic nature. Neuroligin partners distinct from the neurexins, and which may undergo either trans or cis interaction, have also been described, and tridimensional structures of some of them are available. Our study emphasizes the partnership versatility of the neuroligin ectodomain associated with molecular flexibility and alternative binding sites, proposes homology models of the structurally non-characterized neuroligin partners, and exemplifies the large structural variability at the surface of the alpha/beta-hydrolase fold subunit. This study also provides new insights into possible surface binding sites associated with non-catalytic properties of the acetylcholinesterase subunit. |
PubMedSearch : Bourne_2014_J.Mol.Neurosci_53_387 |
PubMedID: 24497299 |
Bourne Y, Marchot P (2014)
The neuroligins and their ligands: from structure to function at the synapse
Journal of Molecular Neuroscience
53 :387
Bourne Y, Marchot P (2014)
Journal of Molecular Neuroscience
53 :387