Steering From the Rear: Coordination of Central Pattern Generators Underlying Navigation by Ascending Interneurons
Jonaitis, J.; Hibbard, K. L.; Layte, K. M.; Hiramoto, A.; Cardona, A.; Truman, J. W.; Nose, A.; Zwart, M. F.; Pulver, S. R.
Show abstract
Understanding how animals coordinate movements to achieve goals is a fundamental pursuit in neuroscience. Here we explore how neurons that reside in posterior lower-order regions of a locomotor system project to anterior higher-order regions to influence steering and navigation. We characterized the anatomy and functional role of a population of ascending interneurons in the ventral nerve cord of Drosophila larvae. Through electron microscopy reconstructions and light microscopy, we determined that the cholinergic 19f cells receive input primarily from premotor interneurons and synapse upon a diverse array of postsynaptic targets within the anterior segments including other 19f cells. Calcium imaging of 19f activity in isolated central nervous system (CNS) preparations in relation to motor neurons revealed that 19f neurons are recruited into most larval motor programmes. 19f activity lags behind motor neuron activity and as a population, the cells encode spatio-temporal patterns of locomotor activity in the larval CNS. Optogenetic manipulations of 19f cell activity in isolated CNS preparations revealed that they coordinate the activity of central pattern generators underlying exploratory headsweeps and forward locomotion in a context and location specific manner. In behaving animals, activating 19f cells suppressed exploratory headsweeps and slowed forward locomotion, while inhibition of 19f activity potentiated headsweeps, slowing forward movement. Inhibiting activity in 19f cells ultimately affected the ability of larvae to remain in the vicinity of an odor source during an olfactory navigation task. Overall, our findings provide insights into how ascending interneurons monitor motor activity and shape interactions amongst rhythm generators underlying complex navigational tasks.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Feedback inhibition by a descending GABAergic neuron regulates timing of escape behavior in Drosophila larvae 97%
- Synchronous multi-segmental activity between metachronal waves controls locomotion speed in Drosophila larvae 96%
- Chloride-dependent mechanisms of multimodal sensory discrimination and neuropathic sensitization in Drosophila 96%
Similar papers in this journal
- Synchronicity in zebrafish locomotive circuit development mediated by electrical pacemaker interneurons 95%
- Structural and functional organization of visual responses in the inferior olive of larval zebrafish 95%
- Pairing-dependent plasticity in a dissected fly brain is input-specific and requires synaptic CaMKII enrichment and nighttime sleep 95%
Similar papers in this journal
- Hbs and Rst adhesion molecules provide a regional code that regulates cell elimination during epithelial remodelling 95%
- The Adaptor Protein 2 (AP2) complex modulates habituation and behavioral selection across multiple pathways and time windows 94%
- Serotonin acts through multiple cellular targets during an olfactory critical period. 94%
"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.