The Prop1-like homeobox gene <i>unc-42</i> specifies the identity of synaptically connected neurons.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 34165428.
- Also identified by DOI 10.7554/eLife.64903 and PMC identifier 8225392.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
Many neuronal identity regulators are expressed in distinct populations of cells in the nervous system, but their function is often analyzed only in specific isolated cellular contexts, thereby potentially leaving overarching themes in gene function undiscovered. We show here that the <i>Caenorhabditis elegans</i> Prop1-like homeobox gene <i>unc-42</i> is expressed in 15 distinct sensory, inter- and motor neuron classes throughout the entire <i>C. elegans</i> nervous system. Strikingly, all 15 neuron classes expressing <i>unc-42</i> are synaptically interconnected, prompting us to investigate whether <i>unc-42</i> controls the functional properties of this circuit and perhaps also the assembly of these neurons into functional circuitry. We found that <i>unc-42</i> defines the routes of communication between these interconnected neurons by controlling the expression of neurotransmitter pathway genes, neurotransmitter receptors, neuropeptides, and neuropeptide receptors. Anatomical analysis of <i>unc-42</i> mutant animals reveals defects in axon pathfinding and synaptic connectivity, paralleled by expression defects of molecules involved in axon pathfinding, cell-cell recognition, and synaptic connectivity. We conclude that <i>unc-42</i> establishes functional circuitry by acting as a terminal selector of functionally connected neuron types. We identify a number of additional transcription factors that are also expressed in synaptically connected neurons and propose that terminal selectors may also function as 'circuit organizer transcription factors' to control the assembly of functional circuitry throughout the nervous system. We hypothesize that such organizational properties of transcription factors may be reflective of not only ontogenetic, but perhaps also phylogenetic trajectories of neuronal circuit establishment.
Medical subject headings
- Body Patterning
- Caenorhabditis elegans
- Caenorhabditis elegans Proteins
- Homeodomain Proteins
- Interneurons
- Motor Neurons
- Sensory Receptor Cells