Metabolic stress responses in Drosophila are modulated by brain neurosecretory cells that produce multiple neuropeptides.
In Drosophila, neurosecretory cells that release peptide hormones play a prominent role in the regulation of development, growth, metabolism, and reproduction. Several types of peptidergic neurosecretory cells have been identified in the brain of Drosophila with release sites in the corpora cardiaca...
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doaj-1f8ff1bd90394cd4abc978471f4c9cee2020-11-25T02:39:49ZengPublic Library of Science (PLoS)PLoS ONE1932-62032010-01-0157e1148010.1371/journal.pone.0011480Metabolic stress responses in Drosophila are modulated by brain neurosecretory cells that produce multiple neuropeptides.Lily KahsaiNeval KapanHeinrich DircksenAsa M E WintherDick R NässelIn Drosophila, neurosecretory cells that release peptide hormones play a prominent role in the regulation of development, growth, metabolism, and reproduction. Several types of peptidergic neurosecretory cells have been identified in the brain of Drosophila with release sites in the corpora cardiaca and anterior aorta. We show here that in adult flies the products of three neuropeptide precursors are colocalized in five pairs of large protocerebral neurosecretory cells in two clusters (designated ipc-1 and ipc-2a): Drosophila tachykinin (DTK), short neuropeptide F (sNPF) and ion transport peptide (ITP). These peptides were detected by immunocytochemistry in combination with GFP expression driven by the enhancer trap Gal4 lines c929 and Kurs-6, both of which are expressed in ipc-1 and 2a cells. This mix of colocalized peptides with seemingly unrelated functions is intriguing and prompted us to initiate analysis of the function of the ten neurosecretory cells. We investigated the role of peptide signaling from large ipc-1 and 2a cells in stress responses by monitoring the effect of starvation and desiccation in flies with levels of DTK or sNPF diminished by RNA interference. Using the Gal4-UAS system we targeted the peptide knockdown specifically to ipc-1 and 2a cells with the c929 and Kurs-6 drivers. Flies with reduced DTK or sNPF levels in these cells displayed decreased survival time at desiccation and starvation, as well as increased water loss at desiccation. Our data suggest that homeostasis during metabolic stress requires intact peptide signaling by ipc-1 and 2a neurosecretory cells.http://europepmc.org/articles/PMC2900207?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Lily Kahsai Neval Kapan Heinrich Dircksen Asa M E Winther Dick R Nässel |
spellingShingle |
Lily Kahsai Neval Kapan Heinrich Dircksen Asa M E Winther Dick R Nässel Metabolic stress responses in Drosophila are modulated by brain neurosecretory cells that produce multiple neuropeptides. PLoS ONE |
author_facet |
Lily Kahsai Neval Kapan Heinrich Dircksen Asa M E Winther Dick R Nässel |
author_sort |
Lily Kahsai |
title |
Metabolic stress responses in Drosophila are modulated by brain neurosecretory cells that produce multiple neuropeptides. |
title_short |
Metabolic stress responses in Drosophila are modulated by brain neurosecretory cells that produce multiple neuropeptides. |
title_full |
Metabolic stress responses in Drosophila are modulated by brain neurosecretory cells that produce multiple neuropeptides. |
title_fullStr |
Metabolic stress responses in Drosophila are modulated by brain neurosecretory cells that produce multiple neuropeptides. |
title_full_unstemmed |
Metabolic stress responses in Drosophila are modulated by brain neurosecretory cells that produce multiple neuropeptides. |
title_sort |
metabolic stress responses in drosophila are modulated by brain neurosecretory cells that produce multiple neuropeptides. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2010-01-01 |
description |
In Drosophila, neurosecretory cells that release peptide hormones play a prominent role in the regulation of development, growth, metabolism, and reproduction. Several types of peptidergic neurosecretory cells have been identified in the brain of Drosophila with release sites in the corpora cardiaca and anterior aorta. We show here that in adult flies the products of three neuropeptide precursors are colocalized in five pairs of large protocerebral neurosecretory cells in two clusters (designated ipc-1 and ipc-2a): Drosophila tachykinin (DTK), short neuropeptide F (sNPF) and ion transport peptide (ITP). These peptides were detected by immunocytochemistry in combination with GFP expression driven by the enhancer trap Gal4 lines c929 and Kurs-6, both of which are expressed in ipc-1 and 2a cells. This mix of colocalized peptides with seemingly unrelated functions is intriguing and prompted us to initiate analysis of the function of the ten neurosecretory cells. We investigated the role of peptide signaling from large ipc-1 and 2a cells in stress responses by monitoring the effect of starvation and desiccation in flies with levels of DTK or sNPF diminished by RNA interference. Using the Gal4-UAS system we targeted the peptide knockdown specifically to ipc-1 and 2a cells with the c929 and Kurs-6 drivers. Flies with reduced DTK or sNPF levels in these cells displayed decreased survival time at desiccation and starvation, as well as increased water loss at desiccation. Our data suggest that homeostasis during metabolic stress requires intact peptide signaling by ipc-1 and 2a neurosecretory cells. |
url |
http://europepmc.org/articles/PMC2900207?pdf=render |
work_keys_str_mv |
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