Maternal age modulates progeny social behavior via a small RNA-neuropeptide axis
Hwang, H.; Cheon, Y.; Oh, S. H.; Jo, S.; Kim, T. A.; Oh, E.; Hwangbo, S.; Kim, J.; Jeong, S.; Dar, A. R.; Butcher, R.; Lee, J.-C.; Kim, K.
Show abstract
Parental age influences offspring traits across species, yet the molecular pathways by which maternal state modulates progeny neural function remain poorly defined. Here we demonstrate that maternal age in C. elegans regulates progeny avoidance of the social pheromone by modulating the activity of a defined sensory circuit. Progeny of young mothers exhibit stronger activity of the pheromone-sensing ADL neurons and enhanced pheromone avoidance, whereas progeny of old mothers display reduced neuronal responses and weaker repulsion. We identify an ERI-1-microRNA-neuropeptide signaling axis operating in peptidergic AVH interneurons that modulates ADL circuit responsiveness. ERI-1 promotes expression of the neuropeptide gene flp-26 by repressing mir-8207, and signaling from AVH to ADL establishes pheromone sensitivity. Maternal aging is associated with reduced ERI-1 expression in progeny AVH neurons and dampening this signaling pathway. Consequently, progeny of young mothers, though developmentally less robust, disperse more readily from crowded, pheromone-rich environments, offsetting their early-life disadvantages. Our findings reveal a molecular and circuit-level mechanism by which maternal physiology adaptively configures offspring neural computation and behavioral strategy across generations.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Impairing one sensory modality enhances another by reprogramming peptidergic circuits in Caenorhabditis elegans 97%
- Diverse states and stimuli tune olfactory receptor expression levels to modulate food-seeking behavior 97%
- Feeding state functionally reconfigures a sensory circuit to drive thermosensory behavioral plasticity 97%
Similar papers in this journal
- Interneuron Control of C. elegans Developmental Decision-making 97%
- Neuronal perception of the social environment intergenerationally controls germline development and generation time in C. elegans 96%
- Molecular encoding of stimulus features in a single sensory neuron type enables neuronal and behavioral plasticity 96%
Similar papers in this journal
- Distinct neural circuits establish the same chemosensory behavior in C. elegans 97%
- C. elegans Sine oculis/SIX-type homeobox genes act as homeotic switches to define neuronal subtype identities 96%
- Loss of the E3 ubiquitin ligases UBR-5 or HECD-1 restores Caenorhabditis elegans development in the absence of SWI/SNF function 96%
"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.