Cargando…

Feeding State, Insulin and NPR-1 Modulate Chemoreceptor Gene Expression via Integration of Sensory and Circuit Inputs

Feeding state and food availability can dramatically alter an animals' sensory response to chemicals in its environment. Dynamic changes in the expression of chemoreceptor genes may underlie some of these food and state-dependent changes in chemosensory behavior, but the mechanisms underlying t...

Descripción completa

Detalles Bibliográficos
Autores principales: Gruner, Matthew, Nelson, Dru, Winbush, Ari, Hintz, Rebecca, Ryu, Leesun, Chung, Samuel H., Kim, Kyuhyung, Gabel, Chrisopher V., van der Linden, Alexander M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4214617/
https://www.ncbi.nlm.nih.gov/pubmed/25357003
http://dx.doi.org/10.1371/journal.pgen.1004707
_version_ 1782341984355090432
author Gruner, Matthew
Nelson, Dru
Winbush, Ari
Hintz, Rebecca
Ryu, Leesun
Chung, Samuel H.
Kim, Kyuhyung
Gabel, Chrisopher V.
van der Linden, Alexander M.
author_facet Gruner, Matthew
Nelson, Dru
Winbush, Ari
Hintz, Rebecca
Ryu, Leesun
Chung, Samuel H.
Kim, Kyuhyung
Gabel, Chrisopher V.
van der Linden, Alexander M.
author_sort Gruner, Matthew
collection PubMed
description Feeding state and food availability can dramatically alter an animals' sensory response to chemicals in its environment. Dynamic changes in the expression of chemoreceptor genes may underlie some of these food and state-dependent changes in chemosensory behavior, but the mechanisms underlying these expression changes are unknown. Here, we identified a KIN-29 (SIK)-dependent chemoreceptor, srh-234, in C. elegans whose expression in the ADL sensory neuron type is regulated by integration of sensory and internal feeding state signals. We show that in addition to KIN-29, signaling is mediated by the DAF-2 insulin-like receptor, OCR-2 TRPV channel, and NPR-1 neuropeptide receptor. Cell-specific rescue experiments suggest that DAF-2 and OCR-2 act in ADL, while NPR-1 acts in the RMG interneurons. NPR-1-mediated regulation of srh-234 is dependent on gap-junctions, implying that circuit inputs regulate the expression of chemoreceptor genes in sensory neurons. Using physical and genetic manipulation of ADL neurons, we show that sensory inputs from food presence and ADL neural output regulate srh-234 expression. While KIN-29 and DAF-2 act primarily via the MEF-2 (MEF2) and DAF-16 (FOXO) transcription factors to regulate srh-234 expression in ADL neurons, OCR-2 and NPR-1 likely act via a calcium-dependent but MEF-2- and DAF-16-independent pathway. Together, our results suggest that sensory- and circuit-mediated regulation of chemoreceptor genes via multiple pathways may allow animals to precisely regulate and fine-tune their chemosensory responses as a function of internal and external conditions.
format Online
Article
Text
id pubmed-4214617
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-42146172014-11-05 Feeding State, Insulin and NPR-1 Modulate Chemoreceptor Gene Expression via Integration of Sensory and Circuit Inputs Gruner, Matthew Nelson, Dru Winbush, Ari Hintz, Rebecca Ryu, Leesun Chung, Samuel H. Kim, Kyuhyung Gabel, Chrisopher V. van der Linden, Alexander M. PLoS Genet Research Article Feeding state and food availability can dramatically alter an animals' sensory response to chemicals in its environment. Dynamic changes in the expression of chemoreceptor genes may underlie some of these food and state-dependent changes in chemosensory behavior, but the mechanisms underlying these expression changes are unknown. Here, we identified a KIN-29 (SIK)-dependent chemoreceptor, srh-234, in C. elegans whose expression in the ADL sensory neuron type is regulated by integration of sensory and internal feeding state signals. We show that in addition to KIN-29, signaling is mediated by the DAF-2 insulin-like receptor, OCR-2 TRPV channel, and NPR-1 neuropeptide receptor. Cell-specific rescue experiments suggest that DAF-2 and OCR-2 act in ADL, while NPR-1 acts in the RMG interneurons. NPR-1-mediated regulation of srh-234 is dependent on gap-junctions, implying that circuit inputs regulate the expression of chemoreceptor genes in sensory neurons. Using physical and genetic manipulation of ADL neurons, we show that sensory inputs from food presence and ADL neural output regulate srh-234 expression. While KIN-29 and DAF-2 act primarily via the MEF-2 (MEF2) and DAF-16 (FOXO) transcription factors to regulate srh-234 expression in ADL neurons, OCR-2 and NPR-1 likely act via a calcium-dependent but MEF-2- and DAF-16-independent pathway. Together, our results suggest that sensory- and circuit-mediated regulation of chemoreceptor genes via multiple pathways may allow animals to precisely regulate and fine-tune their chemosensory responses as a function of internal and external conditions. Public Library of Science 2014-10-30 /pmc/articles/PMC4214617/ /pubmed/25357003 http://dx.doi.org/10.1371/journal.pgen.1004707 Text en © 2014 Gruner et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Gruner, Matthew
Nelson, Dru
Winbush, Ari
Hintz, Rebecca
Ryu, Leesun
Chung, Samuel H.
Kim, Kyuhyung
Gabel, Chrisopher V.
van der Linden, Alexander M.
Feeding State, Insulin and NPR-1 Modulate Chemoreceptor Gene Expression via Integration of Sensory and Circuit Inputs
title Feeding State, Insulin and NPR-1 Modulate Chemoreceptor Gene Expression via Integration of Sensory and Circuit Inputs
title_full Feeding State, Insulin and NPR-1 Modulate Chemoreceptor Gene Expression via Integration of Sensory and Circuit Inputs
title_fullStr Feeding State, Insulin and NPR-1 Modulate Chemoreceptor Gene Expression via Integration of Sensory and Circuit Inputs
title_full_unstemmed Feeding State, Insulin and NPR-1 Modulate Chemoreceptor Gene Expression via Integration of Sensory and Circuit Inputs
title_short Feeding State, Insulin and NPR-1 Modulate Chemoreceptor Gene Expression via Integration of Sensory and Circuit Inputs
title_sort feeding state, insulin and npr-1 modulate chemoreceptor gene expression via integration of sensory and circuit inputs
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4214617/
https://www.ncbi.nlm.nih.gov/pubmed/25357003
http://dx.doi.org/10.1371/journal.pgen.1004707
work_keys_str_mv AT grunermatthew feedingstateinsulinandnpr1modulatechemoreceptorgeneexpressionviaintegrationofsensoryandcircuitinputs
AT nelsondru feedingstateinsulinandnpr1modulatechemoreceptorgeneexpressionviaintegrationofsensoryandcircuitinputs
AT winbushari feedingstateinsulinandnpr1modulatechemoreceptorgeneexpressionviaintegrationofsensoryandcircuitinputs
AT hintzrebecca feedingstateinsulinandnpr1modulatechemoreceptorgeneexpressionviaintegrationofsensoryandcircuitinputs
AT ryuleesun feedingstateinsulinandnpr1modulatechemoreceptorgeneexpressionviaintegrationofsensoryandcircuitinputs
AT chungsamuelh feedingstateinsulinandnpr1modulatechemoreceptorgeneexpressionviaintegrationofsensoryandcircuitinputs
AT kimkyuhyung feedingstateinsulinandnpr1modulatechemoreceptorgeneexpressionviaintegrationofsensoryandcircuitinputs
AT gabelchrisopherv feedingstateinsulinandnpr1modulatechemoreceptorgeneexpressionviaintegrationofsensoryandcircuitinputs
AT vanderlindenalexanderm feedingstateinsulinandnpr1modulatechemoreceptorgeneexpressionviaintegrationofsensoryandcircuitinputs