Neuronal activity regulating the dauer entry decision in Caenorhabditis elegans
Prakash, S. J.; Seyedolmohadesin, M.; Zhang, M. G.; Cohen, S. M.; Gharib, S.; Venkatachalam, V.; Sternberg, P. W.
Show abstract
The model nematode Caenorhabditis elegans can choose between two alternative developmental trajectories. Larvae can either become reproductive adults or, under conditions of crowding or low food availability, enter a long-term, stress-resistant diapause known as the dauer stage. Previous studies showed that chemical signals from a secreted larval pheromone promote the dauer trajectory, and that their influence can be antagonised by increased availability of microbial food. The decision is known to be under neuronal control, involving both sensory and interneurons. To make an accurate decision, larvae must collect and compare complex patterns of environmental input over several hours of early larval development. The full composition of this circuit and the algorithm for decision-making are unknown. Here, we used cell-specific chemical silencing to systematically perturb several sensory and interneurons to further elucidate circuit composition. Our results suggest a role for gas-sensing neurons in regulating dauer entry. In addition, we quantitatively characterized the neuronal responses to food and pheromone inputs by measuring calcium traces from ASI and AIA neurons. We found that calcium in ASI increases linearly in response to food, and similarly decreases in response to pheromone, revealing a cellular site of antagonism between these key chemical inputs. Notably, the ASI response persists well beyond removal of the food stimulus, thus encoding a memory of recent food exposure. In contrast, AIA reports instantaneous food availability, and is unaffected by pheromone. We discuss how these findings may inform our understanding of this long-term decision-making process.
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 96%
- Neuroendocrine Gene Expression Coupling of Interoceptive Bacterial Food Cues to Foraging Behavior of C. elegans 96%
- Male pheromones modulate synaptic transmission at the C. elegans neuromuscular junction in a sexually dimorphic manner 95%
Similar papers in this journal
- Interneuron Control of C. elegans Developmental Decision-making 97%
- The conserved endocannabinoid anandamide modulates olfactory sensitivity to induce hedonic feeding in C. elegans 96%
- Neuronal perception of the social environment intergenerationally controls germline development and generation time in C. elegans 95%
Similar papers in this journal
- Functional analysis of conserved C. elegans bHLH family members uncovers lifespan control by a peptidergic hub neuron 95%
- Prepontine non-giant neurons drive flexible escape behavior in zebrafish 95%
- DAF-16/FoxO and DAF-12/VDR control cellular plasticity both cell-autonomously and via interorgan signaling 94%
Similar papers in this journal
- The Adaptor Protein 2 (AP2) complex modulates habituation and behavioral selection across multiple pathways and time windows 94%
- Tet Controls Axon Guidance in Early Brain Development through Glutamatergic Signaling 93%
- Entirely synthetic memory inception via dual optogenetic activation of sensory and dopaminergic neurons 93%
"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.