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dach-1, a cytochrome P450 gene, regulates synaptic and developmental plasticity during the diapause of Caenorhabditis elegans

Lee, J.; Son, S.; Choi, M.-k.; Lim, D. S.; Shim, J.

2022-07-06 genetics
10.1101/2022.07.05.498867 bioRxiv
Show abstract

Animals exhibit phenotypic plasticity through the interaction of genes with the environment, and little is known about the genetic factors that change synaptic function at different developmental stages. Here, we investigated the genetic determinants of how developmental stages alter synaptic transmission using the free-living nematode Caenorhabditis elegans. C. elegans enters the stress-resistant dauer larval stage under harsh conditions. Although dauer is known to have reduced permeability and increased resistance to most known exogenous chemicals, we discovered that dauer is hypersensitive to a cholinesterase inhibitor, aldicarb. To investigate genes regulating dauer-specific acetylcholine transduction, we first screened for aldicarb-resistant mutations in dauer and then performed a secondary screen to rule out aldicarb-resistant mutations that also affect adults. We isolated two different mutations of a single gene called cyp-34A4 or dach-1 encoding a cytochrome P450. In the non-dauer stages, dach-1 is mainly expressed in the intestine, but its expression is robustly increased in the epidermis of dauers. By tissue-specific rescue experiments, we found that dach-1 modulates aldicarb sensitivity in a cell non-autonomous manner. In addition, dach-1 plays pleiotropic functions in dauers by regulating quiescence and surviving heat shock and hyperosmolar stress. Our study reveals novel functions of the cytochrome P450 in synaptic and physiological changes during developmental plasticity.

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