Electrical synapse molecular diversity revealed by proximity-based proteomic discovery
Michel, J. C.; Martin, E. A.; Crow, W. E.; Kissinger, J. S.; Lukowicz-Bedford, R. M.; Horrocks, M.; Branon, T. C.; Ting, A. Y.; Miller, A. C.
Show abstract
Neuronal circuits are composed of synapses that are either chemical, where signals are transmitted via neurotransmitter release and reception, or electrical, where signals pass directly through interneuronal gap junction channels. While the molecular complexity that controls chemical synapse structure and function is well appreciated, the proteins of electrical synapses beyond the gap-junction-forming Connexins are not well defined. Yet, electrical synapses are expected to be molecularly complex beyond the gap junctions. Connexins are integral membrane proteins requiring vesicular transport and membrane insertion/retrieval to achieve function, homeostasis, and plasticity. Additionally, electron microscopy of neuronal gap junctions reveals neighboring electron dense regions termed the electrical synapse density (ESD). To reveal the molecular complexity of the electrical synapse proteome, we used proximity-dependent biotinylation (TurboID) linked to neural Connexins in zebrafish. Proteomic analysis of developing and mature nervous systems identifies hundreds of Connexin-associated proteins, with overlapping and distinct representation during development and adulthood. The identified protein classes span cell adhesion molecules, cytoplasmic scaffolds, vesicular trafficking, and proteins usually associated with the post synaptic density (PSD) of chemical synapses. Using circuits with stereotyped electrical and chemical synapses, we define molecular sub-synaptic compartments of ESD localizing proteins, we find molecular heterogeneity amongst electrical synapse populations, and we examine the synaptic intermingling of electrical and chemical synapse proteins. Taken together, these results reveal a new complexity of electrical synapse molecular diversity and highlight a novel overlap between chemical and electrical synapse proteomes. Moreover, human homologs of the electrical synapse proteins are associated with autism, epilepsy, and other neurological disorders, providing a novel framework towards understanding neuro-atypical states.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Tomosyns attenuate SNARE assembly and synaptic depression by binding to VAMP2-containing template complexes 97%
- Antibody-directed extracellular proximity biotinylation reveals Contactin-1 regulates axo-axonic innervation of axon initial segments. 96%
- Trans-synaptic molecular context of NMDA receptor nanodomains 96%
Similar papers in this journal
- MDGAs are fast-diffusing molecules that delay excitatory synapse development by altering neuroligin behavior 96%
- Motor neurons are dispensable for the assembly of a sensorimotor circuit for gaze stabilization 96%
- An antagonism between Spinophilin and Syd-1 operates upstream of memory promoting presynaptic long-term plasticity 96%
Similar papers in this journal
- CTNND2 regulation by the SRGAP2 protein family links human evolution to synaptic neoteny 96%
- Spinal microcircuits go through multiphasic homeostatic compensations in a mouse model of motoneuron degeneration 96%
- The Intrinsically Disordered Region of Coronins Fine-tunes Oligomerization and Actin Polymerization 95%
Similar papers in this journal
- FAM57B is a modulator of ceramide synthesis that regulates sphingolipid homeostasis and synaptic composition in the developing brain 95%
- A spatially-tracked single cell transcriptomics map of neuronal networks in the intrinsic cardiac nervous system 95%
- Post-Synaptic Density Proteins in Oligodendrocytes are Required for Activity-Dependent Myelin Sheath Growth 94%
Similar papers in this journal
- NeuroPAL: A Neuronal Polychromatic Atlas of Landmarks for Whole-Brain Imaging in C. elegans 95%
- Simultaneous CRISPR screening and spatial transcriptomics reveals intracellular, intercellular, and functional transcriptional circuits. 95%
- A conserved fertilization complex of Izumo1, Spaca6, and Tmem81 mediates sperm-egg interaction in vertebrates 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.