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Anatomical restructuring of a lateralized neural circuit during associative learning by asymmetric insulin signaling.

Leo T H Tang | Garrett A Lee | Steven J Cook | Jacquelin Ho | Cassandra C Potter | Hannes E Bülow
Current biology : CB | 2023

Studies of neuronal connectivity in model organisms, i.e., of their connectomes, have been instrumental in dissecting the structure-function relationship of nervous systems. However, the limited sample size of these studies has impeded analyses into how variation of connectivity across populations may influence circuit architecture and behavior. Moreover, little is known about how experiences induce changes in circuit architecture. Here, we show that an asymmetric salt-sensing circuit in the nematode Caenorhabditis elegans exhibits variation that predicts the animals' salt preferences and undergoes restructuring during salt associative learning. Naive worms memorize and prefer the salt concentration they experience in the presence of food through a left-biased neural network architecture. However, animals conditioned at elevated salt concentrations change this left-biased network to a right-biased network. This change in circuit architecture occurs through the addition of new synapses in response to asymmetric, paracrine insulin signaling. Therefore, experience-dependent changes in an animal's neural connectome are induced by insulin signaling and are fundamental to learning and behavior.

Pubmed ID: 37591249

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Associated grants

  • Agency: NINDS NIH HHS, United States
    Id: R01 NS125134
  • Agency: NICHD NIH HHS, United States
    Id: P30 HD071593
  • Agency: NINDS NIH HHS, United States
    Id: R21 NS111145
  • Agency: NIGMS NIH HHS, United States
    Id: T32 GM007288
  • Agency: NCI NIH HHS, United States
    Id: P30 CA013330
  • Agency: NIGMS NIH HHS, United States
    Id: T32 GM007491
  • Agency: NIGMS NIH HHS, United States
    Id: T32 GM149364

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