marmite defines a novel conserved neuropeptide family mediating nutritional homeostasis
Francisco, A. P.; Tastekin, I.; Fernandes, A. B.; Ezra-Nevo, G.; Deplancke, B.; Oliveira-Maia, A. J.; Gontijo, A. M.; Ribeiro, C.
10.1101/2022.12.12.520095 bioRxivShow abstract
Neuropeptides play a key role in regulating physiology and behavior, including feeding. While animals modify their food choices to respond to the lack of specific nutrients, the mechanisms mediating nutrient-specific appetites remain unclear. Here, we identified marmite (mmt), a previously uncharacterized Drosophila melanogaster gene encoding a secreted peptide that controls feeding decisions. We show that both mmt mutants and neuronal knockdown of mmt specifically increased the intake of proteinaceous food, whereas neuronal mmt overexpression reduced protein appetite. mmt expression is also higher in animals maintained on amino acid rich food, suggesting that mmt encodes a protein-specific satiety signal. Mmt is expressed in a small number of neurons in the adult nervous system, with a single pair of neurons modulating protein appetite. Finally, sequence and phylogenetic analysis showed that mmt is part of an ancient and conserved family of neuropeptides, including the poorly understood vertebrate neuropeptides B and W genes. Functional experiments showed that mmt and vertebrate NPB and NPW modulate food intake in both flies and mice. Therefore, we discovered an ancient family of neuropeptides involved in controlling feeding across phyla.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Intestinal GCN2 controls Drosophila systemic growth in response to Lactiplantibacillus plantarum symbiotic cues encoded by r/tRNA operons 96%
- Modulation of flight and feeding behaviours requires presynaptic IP3Rs in dopaminergic neurons 96%
- Exposure to high-sugar diet induces transgenerational changes in sweet sensitivity and feeding behavior via H3K27me3 reprogramming 96%
Similar papers in this journal
- DAF-16/FoxO and DAF-12/VDR control cellular plasticity both cell-autonomously and via interorgan signaling 96%
- Diet-responsive Transcriptional Regulation of Insulin in a Single Neuron Controls Systemic Metabolism 96%
- The polyol pathway is an evolutionarily conserved system for sensing glucose uptake 95%
Similar papers in this journal
- Coordination Among Multiple Receptor Tyrosine Kinase Signals Controls Drosophila Developmental Timing and Body Size 96%
- Simultaneous suppression of ribosome biogenesis and Tor activation by TRIM-NHL proteins promotes terminal differentiation 96%
- Affinity Requirements For Control Of Synaptic Targeting And Neuronal Cell Survival By Heterophilic IgSF Cell Adhesion Molecules 95%
Similar papers in this journal
- Tet Controls Axon Guidance in Early Brain Development through Glutamatergic Signaling 96%
- The Adaptor Protein 2 (AP2) complex modulates habituation and behavioral selection across multiple pathways and time windows 94%
- Parallel visual pathways with topographic versus non-topographic organization connect the Drosophila eyes to the central brain 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.