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Marquina-Solis, J.

Publications and source records attributed to Marquina-Solis, J..

2 recordsLinked to original sources

C. elegans interprets dietary quality through context-dependent serotonergic modulation

Animals sense their metabolic needs to guide foraging decisions using neuronal pathways that are only partly understood. Here, we systematically investigate how foraging in the nematode Caenorhabditis elegans is influenced by its bacterial diet, E. coli. By screening C. elegans behavior on 3983 E. coli knockout strains, we identified 22 E. coli metabolic mutants that are aversive to C. elegans in a long-term foraging assay. These include the global metabolic regulator CRP and genes affecting cysteine synthesis, vitamin B6 synthesis, and iron uptake. Serotonin, a neurotransmitter associated with feeding in many animals, allows C. elegans to distinguish wild-type E. coli from these "mediocre" diets through bidirectional signaling. Serotonin produced by the ADF serotonergic neurons supports attraction to wild-type E. coli with the serotonin receptor genes ser-4 and ser-5, whereas serotonin produced by the NSM serotonergic neurons differentially drives aversion to two mediocre diets through four serotonin receptor genes, ser-1, ser-7, mod-1, and lgc-50. Serotonin receptors act in multiple target neurons, including octopamine-producing neurons that suppress aversion across all diets. In addition, dopamine promotes aversion, in part by inhibiting octopaminergic neurons. These results reveal interactions between neuromodulatory circuits in the context-dependent evaluation of dietary quality.

neuroscience↗

Peptidergic signaling controls the dynamics of sickness behavior in Caenorhabditis elegans

Pathogenic infection elicits sickness behaviors that promote recovery and survival of the host. For example, following infection with the pathogenic bacterium Pseudomonas aeruginosa PA14, the nematode Caenorhabditis elegans modifies its sensory preferences to avoid the pathogen. Here we identify antagonistic neuromodulatory circuits that shape this sickness behavior. Using an unbiased cell-directed neuropeptide screen, we show that AVK neurons upregulate and release FMRFamide-like FLP-1 neuropeptides during infection to drive pathogen avoidance. Manipulations that increase or decrease AVK signaling accelerate or delay pathogen avoidance, respectively, implicating AVK in the dynamics of sickness behavior. FLP-1 neuropeptides act via the G-protein-coupled receptor DMSR-7 in RIM/RIC neurons to reduce tyraminergic/octopaminergic signaling that opposes pathogen avoidance. RIM/RIC neurons relay parallel signals from neuropeptides and the cytokine TGF-{beta} that represent internal and external regulators of pathogen avoidance. Our results demonstrate that antagonism between neuromodulatory systems results in slow, graded transitions between alternative behavioral states.

neuroscience↗