The AMsh glia of C. elegans modulates the duration of touch-induced escape responses
Awe, T.; Aalimah, A.; Niha, S.; Kelly, L.; Adams, J.; Stein, W.; Vidal-Gadea, A. G.
Show abstract
Once considered mere structural support cells in the nervous system, glia have recently been demonstrated to play pivotal roles in sensorimotor processing and to directly respond to sensory stimuli. However, their response properties and contributions to sensory-induced behaviors remain little understood. In Caenorhabditis elegans, the amphid sheath glia (AMsh) directly respond to aversive odorants and mechanical stimuli, but their precise transduction machinery and their behavioral relevance remain unclear. We investigated the role of AMsh in mechanosensation and their impact on escape behaviors in C. elegans. We found that nose touch stimuli in immobilized animals induced a slow calcium wave in AMsh, which coincided with the termination of escape reversal behaviors. Genetic ablation of AMsh resulted in prolonged reversal durations in response to nose touch, but not to harsh anterior touch, highlighting the specificity of AMshs role in distinct escape behaviors. Mechanotransduction in AMsh requires the -tubulin MEC-12 and the ion channels ITR-1 and OSM-9, indicating a unique mechanosensory pathway that is distinct from the neighboring ASH neurons. We find that GABAergic signaling mediated by the GABA-A receptor orthologs LGC-37/8 and UNC-49 play a crucial role in modulating the duration of nose touch-induced reversals. We conclude that in addition to aversive odorant detection, AMsh mediate mechanosensation, play a pivotal role in terminating escape responses to nose touch, and provide a mechanism to maintain high sensitivity to polymodal sensory stimuli. SignificancePolymodal nociceptive sensory neurons have the challenge of multitasking across sensory modalities. They must respond to dangerous stimuli of one modality, but also adapt to repeated nonthreatening stimuli without compromising sensitivity to harmful stimuli from different modalities. Here we show that a pair of glia in the nematode C. elegans modulate the duration of nose-touch induced escape responses. We identify several molecules involved in the transduction of mechanical stimuli in these cells and show that they use the signaling molecule GABA to modulate neural function. We propose a mechanism through which these glia might function to maintain this polysensory neuron responsive to dangerous stimuli across different modalities.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Corollary Discharge Promotes a Sustained Motor State in a Neural Circuit for Navigation 97%
- Neuronal temperature perception induces specific defenses that enable C. elegans to cope with the enhanced reactivity of hydrogen peroxide at high temperature 96%
- Whole-organism behavioral profiling reveals a role for dopamine in state-dependent motor program coupling in C. elegans 96%
Similar papers in this journal
Similar papers in this journal
- Conditional degradation of UNC-31/CAPS enables spatiotemporal analysis of neuropeptide function 96%
- Reactive Oxygen Species Modulate Activity-Dependent AMPA Receptor Transport in C. elegans 96%
- Cellular expression and functional roles of all 26 neurotransmitter GPCRs in the C. elegans egg-laying circuit 96%
Similar papers in this journal
Similar papers in this journal
"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.