Ternary Neurexin-T178-PTPR complexes represent a pre-synaptic core-module of neuronal synapse organization

Abstract Synapses, prototypic sites for neuronal communication, are key to brain function. Their organization and properties are instructed by synaptic cell adhesion molecules (sCAMs) that may operate independently or in coordination through yet unknown linker proteins. Here, we used multi-epitope affinity-purifications combined with quantitative mass spectrometry and immuno-EM to comprehensively map synaptic protein networks in the mouse brain. We identify a pre-synaptic core-module assembled from the major sCAMs, Neurexins1-3 and LAR-type receptor protein-tyrosine-phosphatases (PTPRs), and the previously uncharacterized tetraspanins T178A/B. These ternary Neurexin-T178-PTPR complexes form through their trans-membrane domains and assemble during biogenesis in the ER. Loss of T178B leads to module destabilization, accompanied by strong reduction of LAR-PTPRs and re-distribution of synaptic Neurexins. At synapses, the Neurexin-T178-PTPR module recruits stable trans-synaptic protein networks thereby interlinking machineries of the pre-synaptic active zone and establishing stable associations with post-synaptic neurotransmitter receptors. This work uncovers a widely distributed core-module for synaptic adhesion and trans-synaptic signaling in the mammalian brain.

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Publication Details

Journal
Nature Communications
Published
2026-09-05
DOI
https://doi.org/10.1038/s41467-026-77377-4
Citations
3
Primary Topic
RNA regulation and disease
Type
article
Field-Weighted Citation Impact
2.87

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article

Ternary Neurexin-T178-PTPR complexes represent a pre-synaptic core-module of neuronal synapse organization

Peter Scheiffele, Uwe Schulte, Alexander Haupt, Nithya Sethumadhavan et al.
3 citations
Nature Communications
RNA regulation and disease
2.87
article

Ternary Neurexin-T178-PTPR complexes represent a pre-synaptic core-module of neuronal synapse organization

Peter Scheiffele, Uwe Schulte, Alexander Haupt, Nithya Sethumadhavan, Dietmar Schreiner, Sami Boudkkazi, Maciej K. Kocylowski, Aline Bréchet, Ákos Kulik, Michisuke Yuzaki, Bernd Fakler, Fredrik Sterky, Agata Nowacka, Eriko Miura, Jochen Schwenk, Jean-Baptiste van den Broucke, Phil Henneken, Spyros Thivaios, Debora Kaminski, Ayumi Hayashi
article en
3 citations

Abstract

Abstract Synapses, prototypic sites for neuronal communication, are key to brain function. Their organization and properties are instructed by synaptic cell adhesion molecules (sCAMs) that may operate independently or in coordination through yet unknown linker proteins. Here, we used multi-epitope affinity-purifications combined with quantitative mass spectrometry and immuno-EM to comprehensively map synaptic protein networks in the mouse brain. We identify a pre-synaptic core-module assembled from the major sCAMs, Neurexins1-3 and LAR-type receptor protein-tyrosine-phosphatases (PTPRs), and the previously uncharacterized tetraspanins T178A/B. These ternary Neurexin-T178-PTPR complexes form through their trans-membrane domains and assemble during biogenesis in the ER. Loss of T178B leads to module destabilization, accompanied by strong reduction of LAR-PTPRs and re-distribution of synaptic Neurexins. At synapses, the Neurexin-T178-PTPR module recruits stable trans-synaptic protein networks thereby interlinking machineries of the pre-synaptic active zone and establishing stable associations with post-synaptic neurotransmitter receptors. This work uncovers a widely distributed core-module for synaptic adhesion and trans-synaptic signaling in the mammalian brain.

Nature CommunicationsVol. 17(1)
University of Freiburg (DE), University of Basel (CH), Keio University (JP), Sahlgrenska University Hospital (SE), Bernstein Center for Computational Neuroscience Freiburg (DE), Logopharm (Germany) (DE), International Neuromodulation Society (US), University of Gothenburg (SE)
Deutsche Forschungsgemeinschaft
Openalex Percentile: Top 17%
RNA regulation and disease
2.87
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