Brains are built from a fundamental structural motif comprised of a single neuron and its synapses. Because distinct genetic programs specify each type of neuron, the goal of building a molecular model of brain structure and function requires a gene expression map at single-cell resolution. As members of the C. elegans Neuronal Gene Expression Map and Network (CeNGEN) consortium, we are using 10X Genomics droplet-based sequencing to produce a gene expression fingerprint of the C. elegans nervous system at the single cell level. In an initial experiment, we used a pan-neural marker (
rab-3::NLS-tagRFP) to isolate all L4-stage neurons by FACS. From 9,268 cells, we identified at least 84 clusters of single cell profiles. This approach also revealed that several neuronal classes, including ventral cord motor neurons, were detected at less than expected frequencies. To ensure capture of all neuron types, we are now performing single-cell profiling of FACS-isolated samples of subgroups of C. elegans neurons (e.g., glutamatergic, GABAergic). To date, we have identified > 50 known neuron classes from ~20,000 single cell profiles. We are using a combination of smFISH and GFP reporters to assign unknown clusters to specific neuron types. To define the "wireless" neuropeptide signaling network that complements the physical wiring diagram, we mapped neuropeptide expression patterns. We determined that most clusters contain multiple neuropeptide genes including several nlp transcripts with highly restricted expression patterns. Preliminary evidence suggests that our approach is likely to reveal more than the 118 neuron classes originally predicted by anatomical data. For example, we have identified likely subclasses of both the VA and VC motor neurons that express unique combinations of HOX genes, wnt pathway components and peptide neurotransmitters. Ultimately, our approach will provide an invaluable gene expression catalog for delineating the underlying mechanisms that define the developmental lineage, detailed anatomy, synaptic connectivity and function of each type of C. elegans neuron.