PUBLICATION

Electrical synapse structure requires distinct isoforms of a postsynaptic scaffold

Authors
Michel, J.C., Grivette, M.M.B., Harshfield, A.T., Huynh, L., Komons, A.P., Loomis, B., McKinnis, K., Miller, B.T., Nguyen, E.Q., Huang, T.W., Lauf, S., Michel, E.S., Michel, M.E., Kissinger, J.S., Marsh, A.J., Crow, W.E., Kaye, L.E., Lasseigne, A.M., Lukowicz-Bedford, R.M., Farnsworth, D.R., Martin, E.A., Miller, A.C.
ID
ZDB-PUB-231128-6
Date
2023
Source
PLoS Genetics   19: e1011045e1011045 (Journal)
Registered Authors
Farnsworth, Dylan, Marsh, Audrey, Miller, Adam
Keywords
none
MeSH Terms
  • Animals
  • Electrical Synapses*/physiology
  • Gap Junctions/physiology
  • Ion Channels
  • Protein Isoforms/genetics
  • Proteomics
  • Synapses/genetics
  • Zebrafish*/genetics
PubMed
38011265 Full text @ PLoS Genet.
Abstract
Electrical synapses are neuronal gap junction (GJ) channels associated with a macromolecular complex called the electrical synapse density (ESD), which regulates development and dynamically modifies electrical transmission. However, the proteomic makeup and molecular mechanisms utilized by the ESD that direct electrical synapse formation are not well understood. Using the Mauthner cell of zebrafish as a model, we previously found that the intracellular scaffolding protein ZO1b is a member of the ESD, localizing postsynaptically, where it is required for GJ channel localization, electrical communication, neural network function, and behavior. Here, we show that the complexity of the ESD is further diversified by the genomic structure of the ZO1b gene locus. The ZO1b gene is alternatively initiated at three transcriptional start sites resulting in isoforms with unique N-termini that we call ZO1b-Alpha, -Beta, and -Gamma. We demonstrate that ZO1b-Beta and ZO1b-Gamma are broadly expressed throughout the nervous system and localize to electrical synapses. By contrast, ZO1b-Alpha is expressed mainly non-neuronally and is not found at synapses. We generate mutants in all individual isoforms, as well as double mutant combinations in cis on individual chromosomes, and find that ZO1b-Beta is necessary and sufficient for robust GJ channel localization. ZO1b-Gamma, despite its localization to the synapse, plays an auxiliary role in channel localization. This study expands the notion of molecular complexity at the ESD, revealing that an individual genomic locus can contribute distinct isoforms to the macromolecular complex at electrical synapses. Further, independent scaffold isoforms have differential contributions to developmental assembly of the interneuronal GJ channels. We propose that ESD molecular complexity arises both from the diversity of unique genes and from distinct isoforms encoded by single genes. Overall, ESD proteomic diversity is expected to have critical impacts on the development, structure, function, and plasticity of electrical transmission.
Genes / Markers
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Mutations / Transgenics
Human Disease / Model
Sequence Targeting Reagents
Fish
Antibodies
Orthology
Engineered Foreign Genes
Mapping