bioRxiv · 10.1101/2024.05.25.595887
Circadian clock neurons use activity-regulated gene expression for structural plasticity
Abstract
Drosophila s-LNv circadian pacemaker neurons show dramatic structural plasticity, with their projections expanded at dawn and then retracted by dusk. This predictable plasticity makes s-LNvs ideal to study molecular mechanisms of plasticity. Although s-LNv plasticity is controlled by their molecular clock, changing s-LNv excitability also regulates plasticity. Here, we tested the idea that s-LNvs use activity-regulated genes to control plasticity. We found that inducing expression of either of the activity-regulated transcription factors Hr38 or Sr (orthologs of mammalian Nr4a1 and Egr1) is sufficient to rapidly expand s-LNv projections. Conversely, transiently knocking down expression of either Hr38 or sr blocks expansion of s-LNv projections at dawn. We show that Hr38 rapidly induces transcription of sif, which encodes a Rac1 GEF required for s-LNv plasticity rhythms. We conclude that the s-LNv molecular clock controls s-LNv excitability, which couples to an activity-regulated gene expression program to control s-LNv plasticity.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Lymer, S., Patel, K., Lennon, J., Blau, J.. 2024-05-26. Circadian clock neurons use activity-regulated gene expression for structural plasticity. https://doi.org/10.1101/2024.05.25.595887
Cite the original work for its findings. Save a collection to share your selection of sources.