Cargando…

Regulation of Energy Stores and Feeding by Neuronal and Peripheral CREB Activity in Drosophila

The cAMP-responsive transcription factor CREB functions in adipose tissue and liver to regulate glycogen and lipid metabolism in mammals. While Drosophila has a homolog of mammalian CREB, dCREB2, its role in energy metabolism is not fully understood. Using tissue-specific expression of a dominant-ne...

Descripción completa

Detalles Bibliográficos
Autores principales: Iijima, Koichi, Zhao, LiJuan, Shenton, Christopher, Iijima-Ando, Kanae
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2795867/
https://www.ncbi.nlm.nih.gov/pubmed/20041126
http://dx.doi.org/10.1371/journal.pone.0008498
_version_ 1782175458079539200
author Iijima, Koichi
Zhao, LiJuan
Shenton, Christopher
Iijima-Ando, Kanae
author_facet Iijima, Koichi
Zhao, LiJuan
Shenton, Christopher
Iijima-Ando, Kanae
author_sort Iijima, Koichi
collection PubMed
description The cAMP-responsive transcription factor CREB functions in adipose tissue and liver to regulate glycogen and lipid metabolism in mammals. While Drosophila has a homolog of mammalian CREB, dCREB2, its role in energy metabolism is not fully understood. Using tissue-specific expression of a dominant-negative form of CREB (DN-CREB), we have examined the effect of blocking CREB activity in neurons and in the fat body, the primary energy storage depot with functions of adipose tissue and the liver in flies, on energy balance, stress resistance and feeding behavior. We found that disruption of CREB function in neurons reduced glycogen and lipid stores and increased sensitivity to starvation. Expression of DN-CREB in the fat body also reduced glycogen levels, while it did not affect starvation sensitivity, presumably due to increased lipid levels in these flies. Interestingly, blocking CREB activity in the fat body increased food intake. These flies did not show a significant change in overall body size, suggesting that disruption of CREB activity in the fat body caused an obese-like phenotype. Using a transgenic CRE-luciferase reporter, we further demonstrated that disruption of the adipokinetic hormone receptor, which is functionally related to mammalian glucagon and β-adrenergic signaling, in the fat body reduced CRE-mediated transcription in flies. This study demonstrates that CREB activity in either neuronal or peripheral tissues regulates energy balance in Drosophila, and that the key signaling pathway regulating CREB activity in peripheral tissue is evolutionarily conserved.
format Text
id pubmed-2795867
institution National Center for Biotechnology Information
language English
publishDate 2009
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-27958672009-12-30 Regulation of Energy Stores and Feeding by Neuronal and Peripheral CREB Activity in Drosophila Iijima, Koichi Zhao, LiJuan Shenton, Christopher Iijima-Ando, Kanae PLoS One Research Article The cAMP-responsive transcription factor CREB functions in adipose tissue and liver to regulate glycogen and lipid metabolism in mammals. While Drosophila has a homolog of mammalian CREB, dCREB2, its role in energy metabolism is not fully understood. Using tissue-specific expression of a dominant-negative form of CREB (DN-CREB), we have examined the effect of blocking CREB activity in neurons and in the fat body, the primary energy storage depot with functions of adipose tissue and the liver in flies, on energy balance, stress resistance and feeding behavior. We found that disruption of CREB function in neurons reduced glycogen and lipid stores and increased sensitivity to starvation. Expression of DN-CREB in the fat body also reduced glycogen levels, while it did not affect starvation sensitivity, presumably due to increased lipid levels in these flies. Interestingly, blocking CREB activity in the fat body increased food intake. These flies did not show a significant change in overall body size, suggesting that disruption of CREB activity in the fat body caused an obese-like phenotype. Using a transgenic CRE-luciferase reporter, we further demonstrated that disruption of the adipokinetic hormone receptor, which is functionally related to mammalian glucagon and β-adrenergic signaling, in the fat body reduced CRE-mediated transcription in flies. This study demonstrates that CREB activity in either neuronal or peripheral tissues regulates energy balance in Drosophila, and that the key signaling pathway regulating CREB activity in peripheral tissue is evolutionarily conserved. Public Library of Science 2009-12-30 /pmc/articles/PMC2795867/ /pubmed/20041126 http://dx.doi.org/10.1371/journal.pone.0008498 Text en Iijima 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
Iijima, Koichi
Zhao, LiJuan
Shenton, Christopher
Iijima-Ando, Kanae
Regulation of Energy Stores and Feeding by Neuronal and Peripheral CREB Activity in Drosophila
title Regulation of Energy Stores and Feeding by Neuronal and Peripheral CREB Activity in Drosophila
title_full Regulation of Energy Stores and Feeding by Neuronal and Peripheral CREB Activity in Drosophila
title_fullStr Regulation of Energy Stores and Feeding by Neuronal and Peripheral CREB Activity in Drosophila
title_full_unstemmed Regulation of Energy Stores and Feeding by Neuronal and Peripheral CREB Activity in Drosophila
title_short Regulation of Energy Stores and Feeding by Neuronal and Peripheral CREB Activity in Drosophila
title_sort regulation of energy stores and feeding by neuronal and peripheral creb activity in drosophila
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2795867/
https://www.ncbi.nlm.nih.gov/pubmed/20041126
http://dx.doi.org/10.1371/journal.pone.0008498
work_keys_str_mv AT iijimakoichi regulationofenergystoresandfeedingbyneuronalandperipheralcrebactivityindrosophila
AT zhaolijuan regulationofenergystoresandfeedingbyneuronalandperipheralcrebactivityindrosophila
AT shentonchristopher regulationofenergystoresandfeedingbyneuronalandperipheralcrebactivityindrosophila
AT iijimaandokanae regulationofenergystoresandfeedingbyneuronalandperipheralcrebactivityindrosophila