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Keywords = trans-synaptic adhesion

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32 pages, 14230 KB  
Review
Transsynaptic Bridges: Molecular Architects of Synaptic Identity, Plasticity and Disease
by Swetha K. Godavarthi
Receptors 2026, 5(3), 22; https://doi.org/10.3390/receptors5030022 - 7 Jul 2026
Viewed by 489
Abstract
Transsynaptic bridges are molecular complexes spanning the synaptic cleft that physically couple presynaptic release machinery to postsynaptic receptor fields. That this architecture is the direct target of autoimmune attack in myasthenia gravis and a primary locus of genetic risk in autism spectrum disorder [...] Read more.
Transsynaptic bridges are molecular complexes spanning the synaptic cleft that physically couple presynaptic release machinery to postsynaptic receptor fields. That this architecture is the direct target of autoimmune attack in myasthenia gravis and a primary locus of genetic risk in autism spectrum disorder and schizophrenia underscores that transsynaptic bridges are not only important during synapse development but are continuously required organizers of neural function. This review traces the evolution of structural, molecular, and functional evidence that shaped our understanding of the synapse as a single integrated trans-cellular unit. Several defining properties of a synapse emerge as a consequence of transsynaptic bridges—for example, the nanoscale alignment they impose between vesicle fusion sites and receptor nanodomains determines transmission efficacy, the bidirectional communication they coordinate across the cleft drives signaling specificity, and they undergo activity-dependent remodeling, thereby physically encoding synaptic history. Full article
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19 pages, 2979 KB  
Review
Connecting the Dots: AMOG/β2 and Its Elusive Adhesion Partner in CNS
by Liora Shoshani, Christian Sosa Huerta, María Luisa Roldán, Arturo Ponce and Marlet Martínez-Archundia
Int. J. Mol. Sci. 2025, 26(17), 8744; https://doi.org/10.3390/ijms26178744 - 8 Sep 2025
Viewed by 1530
Abstract
AMOG/β2, the β2 isoform of the sodium pump (Na+/K+-ATPase), functions as an adhesion molecule on glial cells, mediating critical neuron–astrocyte interactions during central nervous system (CNS) development. Despite its established role in glial adhesion, the neuronal [...] Read more.
AMOG/β2, the β2 isoform of the sodium pump (Na+/K+-ATPase), functions as an adhesion molecule on glial cells, mediating critical neuron–astrocyte interactions during central nervous system (CNS) development. Despite its established role in glial adhesion, the neuronal receptor that partners with AMOG/β2 remains unknown. This review examines the structural and functional properties of AMOG/β2, including its capacity to form trans-dimers, both homophilic and potentially heterophilic—drawing comparisons with the β1 subunit, a well-characterized adhesion molecule. By integrating computational modeling, in vitro data, and structural predictions, we explore how factors such as N-glycosylation and cis-membrane interactions influence β2-mediated adhesion. We further consider candidate neuronal partners, including TSPAN31 and RTN4, and speculate on their potential roles in mediating heterophilic AMOG/β2 interactions. Finally, we discuss the broader implications of AMOG/β2 in neuron–glia communication, synaptic organization, neurodevelopment, and CNS disorders such as glioblastoma. Identifying the binding partner of AMOG/β2 holds promise not only for understanding the molecular basis of CNS adhesion but also for uncovering novel mechanisms of neuroglial regulation in health and disease. Full article
(This article belongs to the Special Issue The Na, K-ATPase in Health and Disease)
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11 pages, 5723 KB  
Article
Effects of Human Neural Stem Cells Overexpressing Neuroligin and Neurexin in a Spinal Cord Injury Model
by Jiwon Jeong, Yunseo Choi, Narae Kim, Haneul Lee, Eun-Jung Yoon and Dongsun Park
Int. J. Mol. Sci. 2024, 25(16), 8744; https://doi.org/10.3390/ijms25168744 - 10 Aug 2024
Cited by 6 | Viewed by 2761
Abstract
Recent studies have highlighted the therapeutic potential of stem cells for various diseases. However, unlike other tissues, brain tissue has a specific structure, consisting of synapses. These synapses not only transmit but also process and refine information. Therefore, synaptic regeneration plays a key [...] Read more.
Recent studies have highlighted the therapeutic potential of stem cells for various diseases. However, unlike other tissues, brain tissue has a specific structure, consisting of synapses. These synapses not only transmit but also process and refine information. Therefore, synaptic regeneration plays a key role in therapy of neurodegenerative disorders. Neurexins (NRXNs) and neuroligins (NLGNs) are synaptic cell adhesion molecules that connect pre- and postsynaptic neurons at synapses, mediate trans-synaptic signaling, and shape neural network properties by specifying synaptic functions. In this study, we investigated the synaptic regeneration effect of human neural stem cells (NSCs) overexpressing NRXNs (F3.NRXN) and NLGNs (F3.NLGN) in a spinal cord injury model. Overexpression of NRXNs and NLGNs in the neural stem cells upregulated the expression of synaptophysin, PSD95, VAMP2, and synapsin, which are synaptic markers. The BMS scores indicated that the transplantation of F3.NRXN and F3.NLGN enhanced the recovery of locomotor function in adult rodents following spinal cord injury. Transplanted F3.NRXN and F3.NLGN differentiated into neurons and formed a synapse with the host cells in the spinal cord injury mouse model. In addition, F3.NRXN and F3.NLGN cells restored growth factors (GFs) and neurotrophic factors (NFs) and induced the proliferation of host cells. This study suggested that NSCs overexpressing NRXNs and NLGNs could be candidates for cell therapy in spinal cord injuries by facilitating synaptic regeneration. Full article
(This article belongs to the Special Issue Therapeutic Uses of Adult Stem Cells)
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21 pages, 6223 KB  
Article
Distinct Alterations in Dendritic Spine Morphology in the Absence of β-Neurexins
by Leonie Mohrmann, Jochen Seebach, Markus Missler and Astrid Rohlmann
Int. J. Mol. Sci. 2024, 25(2), 1285; https://doi.org/10.3390/ijms25021285 - 20 Jan 2024
Cited by 3 | Viewed by 3778
Abstract
Dendritic spines are essential for synaptic function because they constitute the postsynaptic compartment of the neurons that receives the most excitatory input. The extracellularly shorter variant of the presynaptic cell adhesion molecules neurexins, β-neurexin, has been implicated in various aspects of synaptic function, [...] Read more.
Dendritic spines are essential for synaptic function because they constitute the postsynaptic compartment of the neurons that receives the most excitatory input. The extracellularly shorter variant of the presynaptic cell adhesion molecules neurexins, β-neurexin, has been implicated in various aspects of synaptic function, including neurotransmitter release. However, its role in developing or stabilizing dendritic spines as fundamental computational units of excitatory synapses has remained unclear. Here, we show through morphological analysis that the deletion of β-neurexins in hippocampal neurons in vitro and in hippocampal tissue in vivo affects presynaptic dense-core vesicles, as hypothesized earlier, and, unexpectedly, alters the postsynaptic spine structure. Specifically, we observed that the absence of β-neurexins led to an increase in filopodial-like protrusions in vitro and more mature mushroom-type spines in the CA1 region of adult knockout mice. In addition, the deletion of β-neurexins caused alterations in the spine head dimension and an increase in spines with perforations of their postsynaptic density but no changes in the overall number of spines or synapses. Our results indicate that presynaptic β-neurexins play a role across the synaptic cleft, possibly by aligning with postsynaptic binding partners and glutamate receptors via transsynaptic columns. Full article
(This article belongs to the Special Issue Morphology-Function Relationships of Neurons and Glia Cells)
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15 pages, 998 KB  
Review
Modulation of Trans-Synaptic Neurexin–Neuroligin Interaction in Pathological Pain
by Huili Li, Ruijuan Guo, Yun Guan, Junfa Li and Yun Wang
Cells 2022, 11(12), 1940; https://doi.org/10.3390/cells11121940 - 16 Jun 2022
Cited by 13 | Viewed by 5772
Abstract
Synapses serve as the interface for the transmission of information between neurons in the central nervous system. The structural and functional characteristics of synapses are highly dynamic, exhibiting extensive plasticity that is shaped by neural activity and regulated primarily by trans-synaptic cell-adhesion molecules [...] Read more.
Synapses serve as the interface for the transmission of information between neurons in the central nervous system. The structural and functional characteristics of synapses are highly dynamic, exhibiting extensive plasticity that is shaped by neural activity and regulated primarily by trans-synaptic cell-adhesion molecules (CAMs). Prototypical trans-synaptic CAMs, such as neurexins (Nrxs) and neuroligins (Nlgs), directly regulate the assembly of presynaptic and postsynaptic molecules, including synaptic vesicles, active zone proteins, and receptors. Therefore, the trans-synaptic adhesion mechanisms mediated by Nrx–Nlg interaction can contribute to a range of synaptopathies in the context of pathological pain and other neurological disorders. The present review provides an overview of the current understanding of the roles of Nrx–Nlg interaction in the regulation of trans-synaptic connections, with a specific focus on Nrx and Nlg structures, the dynamic shaping of synaptic function, and the dysregulation of Nrx–Nlg in pathological pain. Additionally, we discuss a range of proteins capable of modulating Nrx–Nlg interactions at the synaptic cleft, with the objective of providing a foundation to guide the future development of novel therapeutic agents for managing pathological pain. Full article
(This article belongs to the Special Issue Cell-Cell Interactions and Cell Adhesion Signaling in Disease States)
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15 pages, 1895 KB  
Communication
Aerobic Exercise Induces Alternative Splicing of Neurexins in Frontal Cortex
by Elisa Innocenzi, Ida Cariati, Emanuela De Domenico, Erika Tiberi, Giovanna D’Arcangelo, Veronica Verdile, Maria Paola Paronetto, Virginia Tancredi, Marco Barchi, Pellegrino Rossi, Claudio Sette and Paola Grimaldi
J. Funct. Morphol. Kinesiol. 2021, 6(2), 48; https://doi.org/10.3390/jfmk6020048 - 31 May 2021
Cited by 11 | Viewed by 4413
Abstract
Aerobic exercise (AE) is known to produce beneficial effects on brain health by improving plasticity, connectivity, and cognitive functions, but the underlying molecular mechanisms are still limited. Neurexins (Nrxns) are a family of presynaptic cell adhesion molecules that are important in synapsis formation [...] Read more.
Aerobic exercise (AE) is known to produce beneficial effects on brain health by improving plasticity, connectivity, and cognitive functions, but the underlying molecular mechanisms are still limited. Neurexins (Nrxns) are a family of presynaptic cell adhesion molecules that are important in synapsis formation and maturation. In vertebrates, three-neurexin genes (NRXN1, NRXN2, and NRXN3) have been identified, each encoding for α and β neurexins, from two independent promoters. Moreover, each Nrxns gene (1–3) has several alternative exons and produces many splice variants that bind to a large variety of postsynaptic ligands, playing a role in trans-synaptic specification, strength, and plasticity. In this study, we investigated the impact of a continuous progressive (CP) AE program on alternative splicing (AS) of Nrxns on two brain regions: frontal cortex (FC) and hippocampus. We showed that exercise promoted Nrxns1–3 AS at splice site 4 (SS4) both in α and β isoforms, inducing a switch from exon-excluded isoforms (SS4−) to exon-included isoforms (SS4+) in FC but not in hippocampus. Additionally, we showed that the same AE program enhanced the expression level of other genes correlated with synaptic function and plasticity only in FC. Altogether, our findings demonstrated the positive effect of CP AE on FC in inducing molecular changes underlying synaptic plasticity and suggested that FC is possibly a more sensitive structure than hippocampus to show molecular changes. Full article
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27 pages, 3722 KB  
Article
Mapping the Proteome of the Synaptic Cleft through Proximity Labeling Reveals New Cleft Proteins
by Tony Cijsouw, Austin M. Ramsey, TuKiet T. Lam, Beatrice E. Carbone, Thomas A. Blanpied and Thomas Biederer
Proteomes 2018, 6(4), 48; https://doi.org/10.3390/proteomes6040048 - 28 Nov 2018
Cited by 52 | Viewed by 14710
Abstract
Synapses are specialized neuronal cell-cell contacts that underlie network communication in the mammalian brain. Across neuronal populations and circuits, a diverse set of synapses is utilized, and they differ in their molecular composition to enable heterogenous connectivity patterns and functions. In addition to [...] Read more.
Synapses are specialized neuronal cell-cell contacts that underlie network communication in the mammalian brain. Across neuronal populations and circuits, a diverse set of synapses is utilized, and they differ in their molecular composition to enable heterogenous connectivity patterns and functions. In addition to pre- and post-synaptic specializations, the synaptic cleft is now understood to be an integral compartment of synapses that contributes to their structural and functional organization. Aiming to map the cleft proteome, this study applied a peroxidase-mediated proximity labeling approach and used the excitatory synaptic cell adhesion protein SynCAM 1 fused to horseradish peroxidase (HRP) as a reporter in cultured cortical neurons. This reporter marked excitatory synapses as measured by confocal microcopy and was targeted to the edge zone of the synaptic cleft as determined using 3D dSTORM super-resolution imaging. Proximity labeling with a membrane-impermeant biotin-phenol compound restricted labeling to the cell surface, and Label-Free Quantitation (LFQ) mass spectrometry combined with ratiometric HRP tagging of membrane vs. synaptic surface proteins was used to identify the proteomic content of excitatory clefts. Novel cleft candidates were identified, and Receptor-type tyrosine-protein phosphatase zeta was selected and successfully validated. This study supports the robust applicability of peroxidase-mediated proximity labeling for synaptic cleft proteomics and its potential for understanding synapse heterogeneity in health and changes in diseases such as psychiatric disorders and addiction. Full article
(This article belongs to the Special Issue Neuroproteomics)
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