-
1
-
-
65249144584
-
Bioactive peptides, networks and systems biology
-
19260025,.;: –.
-
Boonen K, Creemers JW, Schoofs L, Bioactive peptides, networks and systems biology. BioEssays. 2009;31: 300–314. doi: 10.1002/bies.20080005519260025
-
(2009)
BioEssays
, vol.31
, pp. 300-314
-
-
Boonen, K.1
Creemers, J.W.2
Schoofs, L.3
-
2
-
-
77953931115
-
Drosophila neuropeptides in regulation of physiology and behavior
-
20447440,.;: –.
-
Nässel DR, Winther ÅME, Drosophila neuropeptides in regulation of physiology and behavior. Prog Neurobiol. 2010;92: 42–104. doi: 10.1016/j.pneurobio.2010.04.01020447440
-
(2010)
Prog Neurobiol
, vol.92
, pp. 42-104
-
-
Nässel, D.R.1
Winther, ÅM.E.2
-
4
-
-
84923218489
-
To ingest or rest? Specialized roles of lateral hypothalamic area neurons in coordinating energy balance
-
25741247,.;:.
-
Brown JA, Woodworth HL, Leinninger GM, To ingest or rest? Specialized roles of lateral hypothalamic area neurons in coordinating energy balance. Front Syst Neurosci. 2015;9: 9. doi: 10.3389/fnsys.2015.0000925741247
-
(2015)
Front Syst Neurosci
, vol.9
, pp. 9
-
-
Brown, J.A.1
Woodworth, H.L.2
Leinninger, G.M.3
-
5
-
-
84904635124
-
Neuropeptidergic control of sleep and wakefulness
-
25032501,.;: –.
-
Richter C, Woods IG, Schier AF, Neuropeptidergic control of sleep and wakefulness. Annu Rev Neurosci. 2014;37: 503–531. doi: 10.1146/annurev-neuro-062111-15044725032501
-
(2014)
Annu Rev Neurosci
, vol.37
, pp. 503-531
-
-
Richter, C.1
Woods, I.G.2
Schier, A.F.3
-
6
-
-
84861971775
-
Update on energy homeostasis and insufficient sleep
-
22442266,.;: –.
-
Penev PD, Update on energy homeostasis and insufficient sleep. J Clin Endocrinol Metab. 2012;97: 1792–1801. doi: 10.1210/jc.2012-106722442266
-
(2012)
J Clin Endocrinol Metab
, vol.97
, pp. 1792-1801
-
-
Penev, P.D.1
-
7
-
-
33746321102
-
Staying awake for dinner: hypothalamic integration of sleep, feeding, and circadian rhythms
-
16876579,.;: –.
-
Saper CB, Staying awake for dinner: hypothalamic integration of sleep, feeding, and circadian rhythms. Prog Brain Res. 2006;153: 243–252. doi: 10.1016/S0079-6123(06)53014-616876579
-
(2006)
Prog Brain Res
, vol.153
, pp. 243-252
-
-
Saper, C.B.1
-
8
-
-
84882930368
-
-
. In:.:;. pp. –. Available:
-
Arble DM, Copinschi G, Vitaterna MH, Van Cauter E, Turek FW, Levine GFWPE, Circadian Rhythms in Neuroendocrine Systems. In: Handbook of Neuroendocrinology. San Diego: Academic Press; 2012. pp. 271–305. Available: http://www.sciencedirect.com/science/article/pii/B9780123750976100125
-
(2012)
Handbook of Neuroendocrinology
, pp. 271-305
-
-
Arble, D.M.1
Copinschi, G.2
Vitaterna, M.H.3
Van Cauter, E.4
Turek, F.W.5
Levine, G.F.W.P.E.6
-
9
-
-
77949304146
-
Circadian timekeeping and multiple timescale neuroendocrine rhythms
-
20070481,.;: –.
-
Bonnefont X, Circadian timekeeping and multiple timescale neuroendocrine rhythms. J Neuroendocrinol. 2010;22: 209–216. doi: 10.1111/j.1365-2826.2010.01955.x20070481
-
(2010)
J Neuroendocrinol
, vol.22
, pp. 209-216
-
-
Bonnefont, X.1
-
10
-
-
67651097622
-
The genetic and molecular regulation of sleep: from fruit flies to humans
-
19617891,.;: –.
-
Cirelli C, The genetic and molecular regulation of sleep: from fruit flies to humans. Nat Rev Neurosci. 2009;10: 549–560. doi: 10.1038/nrn268319617891
-
(2009)
Nat Rev Neurosci
, vol.10
, pp. 549-560
-
-
Cirelli, C.1
-
11
-
-
84878892998
-
The dilemmas of the gourmet fly: the molecular and neuronal mechanisms of feeding and nutrient decision making in Drosophila
-
23407678,.;:.
-
Itskov PM, Ribeiro C, The dilemmas of the gourmet fly: the molecular and neuronal mechanisms of feeding and nutrient decision making in Drosophila. Front Neurosci. 2013;7: 12. doi: 10.3389/fnins.2013.0001223407678
-
(2013)
Front Neurosci
, vol.7
, pp. 12
-
-
Itskov, P.M.1
Ribeiro, C.2
-
12
-
-
84902491496
-
Feeding regulation in Drosophila
-
24937262,.;: –.
-
Pool A-H, Scott K, Feeding regulation in Drosophila. Curr Opin Neurobiol. 2014;29: 57–63. doi: 10.1016/j.conb.2014.05.00824937262
-
(2014)
Curr Opin Neurobiol
, vol.29
, pp. 57-63
-
-
Pool, A.-H.1
Scott, K.2
-
13
-
-
79960770017
-
Genetics of sleep and sleep disorders
-
21784243,.;: –.
-
Sehgal A, Mignot E, Genetics of sleep and sleep disorders. Cell. 2011;146: 194–207. doi: 10.1016/j.cell.2011.07.00421784243
-
(2011)
Cell
, vol.146
, pp. 194-207
-
-
Sehgal, A.1
Mignot, E.2
-
14
-
-
3042529390
-
Sleep homeostasis in Drosophila melanogaster
-
15282997,.;: –.
-
Huber R, Hill SL, Holladay C, Biesiadecki M, Tononi G, Cirelli C, Sleep homeostasis in Drosophila melanogaster. Sleep. 2004;27: 628–639. 15282997
-
(2004)
Sleep
, vol.27
, pp. 628-639
-
-
Huber, R.1
Hill, S.L.2
Holladay, C.3
Biesiadecki, M.4
Tononi, G.5
Cirelli, C.6
-
15
-
-
0034629130
-
Correlates of sleep and waking in Drosophila melanogaster
-
10710313,.;: –.
-
Shaw PJ, Cirelli C, Greenspan RJ, Tononi G, Correlates of sleep and waking in Drosophila melanogaster. Science. 2000;287: 1834–1837. 10710313
-
(2000)
Science
, vol.287
, pp. 1834-1837
-
-
Shaw, P.J.1
Cirelli, C.2
Greenspan, R.J.3
Tononi, G.4
-
16
-
-
84903643327
-
FLIC: High-Throughput, Continuous Analysis of Feeding Behaviors in Drosophila
-
24978054,.;:.
-
Ro J, Harvanek ZM, Pletcher SD, Roman G, FLIC: High-Throughput, Continuous Analysis of Feeding Behaviors in Drosophila. PLoS ONE. 2014;9: e101107. doi: 10.1371/journal.pone.010110724978054
-
(2014)
PLoS ONE
, vol.9
, pp. e101107
-
-
Ro, J.1
Harvanek, Z.M.2
Pletcher, S.D.3
Roman, G.4
-
17
-
-
82955213994
-
The circadian clock, light, and cryptochrome regulate feeding and metabolism in Drosophila
-
22215608,.;: –.
-
Seay DJ, Thummel CS, The circadian clock, light, and cryptochrome regulate feeding and metabolism in Drosophila. J Biol Rhythms. 2011;26: 497–506. doi: 10.1177/074873041142008022215608
-
(2011)
J Biol Rhythms
, vol.26
, pp. 497-506
-
-
Seay, D.J.1
Thummel, C.S.2
-
18
-
-
52749097184
-
Regulation of feeding and metabolism by neuronal and peripheral clocks in Drosophila
-
18840359,.;: –.
-
Xu K, Zheng X, Sehgal A, Regulation of feeding and metabolism by neuronal and peripheral clocks in Drosophila. Cell Metab. 2008;8: 289–300. doi: 10.1016/j.cmet.2008.09.00618840359
-
(2008)
Cell Metab
, vol.8
, pp. 289-300
-
-
Xu, K.1
Zheng, X.2
Sehgal, A.3
-
19
-
-
84884355460
-
Neuromodulatory control of sleep in Drosophila melanogaster: integration of competing and complementary behaviors
-
23743247,.;: –.
-
Griffith LC, Neuromodulatory control of sleep in Drosophila melanogaster: integration of competing and complementary behaviors. Curr Opin Neurobiol. 2013;23: 819–823. doi: 10.1016/j.conb.2013.05.00323743247
-
(2013)
Curr Opin Neurobiol
, vol.23
, pp. 819-823
-
-
Griffith, L.C.1
-
20
-
-
84924567636
-
Rhythmic control of activity and sleep by class B1 GPCRs
-
25410535,.;: –.
-
Kunst M, Tso MCF, Ghosh DD, Herzog ED, Nitabach MN, Rhythmic control of activity and sleep by class B1 GPCRs. Crit Rev Biochem Mol Biol. 2015;50: 18–30. doi: 10.3109/10409238.2014.98581525410535
-
(2015)
Crit Rev Biochem Mol Biol
, vol.50
, pp. 18-30
-
-
Kunst, M.1
Tso, M.C.F.2
Ghosh, D.D.3
Herzog, E.D.4
Nitabach, M.N.5
-
21
-
-
84880336833
-
Regulation of sleep by the short neuropeptide F (sNPF) in Drosophila melanogaster
-
23796436,..;: –.
-
Chen W, Shi W, Li L, Zheng Z, Li T, Bai W, et al. Regulation of sleep by the short neuropeptide F (sNPF) in Drosophila melanogaster. Insect Biochem Mol Biol. 2013;43: 809–819. doi: 10.1016/j.ibmb.2013.06.00323796436
-
(2013)
Insect Biochem Mol Biol
, vol.43
, pp. 809-819
-
-
Chen, W.1
Shi, W.2
Li, L.3
Zheng, Z.4
Li, T.5
Bai, W.6
-
22
-
-
84866152559
-
Minibrain/Dyrk1a regulates food intake through the Sir2-FOXO-sNPF/NPY pathway in Drosophila and mammals
-
22876196,..;:.
-
Hong S-H, Lee K-S, Kwak S-J, Kim A-K, Bai H, Jung M-S, et al. Minibrain/Dyrk1a regulates food intake through the Sir2-FOXO-sNPF/NPY pathway in Drosophila and mammals. PLoS Genet. 2012;8: e1002857. doi: 10.1371/journal.pgen.100285722876196
-
(2012)
PLoS Genet
, vol.8
, pp. e1002857
-
-
Hong, S.-H.1
Lee, K.-S.2
Kwak, S.-J.3
Kim, A.-K.4
Bai, H.5
Jung, M.-S.6
-
23
-
-
10944268216
-
Drosophila short neuropeptide F regulates food intake and body size
-
15385546,.;: –.
-
Lee K-S, You K-H, Choo J-K, Han Y-M, Yu K, Drosophila short neuropeptide F regulates food intake and body size. J Biol Chem. 2004;279: 50781–50789. doi: 10.1074/jbc.M40784220015385546
-
(2004)
J Biol Chem
, vol.279
, pp. 50781-50789
-
-
Lee, K.-S.1
You, K.-H.2
Choo, J.-K.3
Han, Y.-M.4
Yu, K.5
-
24
-
-
84884758352
-
Short Neuropeptide F Is a Sleep-Promoting Inhibitory Modulator
-
24094110,.;: –.
-
Shang Y, Donelson NC, Vecsey CG, Guo F, Rosbash M, Griffith LC, Short Neuropeptide F Is a Sleep-Promoting Inhibitory Modulator. Neuron. 2013;80: 171–183. doi: 10.1016/j.neuron.2013.07.02924094110
-
(2013)
Neuron
, vol.80
, pp. 171-183
-
-
Shang, Y.1
Donelson, N.C.2
Vecsey, C.G.3
Guo, F.4
Rosbash, M.5
Griffith, L.C.6
-
25
-
-
84901729185
-
Regulation of sleep by neuropeptide Y-like system in Drosophila melanogaster
-
24040211,.;:.
-
He C, Yang Y, Zhang M, Price JL, Zhao Z, Regulation of sleep by neuropeptide Y-like system in Drosophila melanogaster. PloS One. 2013;8: e74237. doi: 10.1371/journal.pone.007423724040211
-
(2013)
PloS One
, vol.8
, pp. e74237
-
-
He, C.1
Yang, Y.2
Zhang, M.3
Price, J.L.4
Zhao, Z.5
-
26
-
-
0037899136
-
Developmental control of foraging and social behavior by the Drosophila neuropeptide Y-like system
-
12848939,.;: –.
-
Wu Q, Wen T, Lee G, Park JH, Cai HN, Shen P, Developmental control of foraging and social behavior by the Drosophila neuropeptide Y-like system. Neuron. 2003;39: 147–161. 12848939
-
(2003)
Neuron
, vol.39
, pp. 147-161
-
-
Wu, Q.1
Wen, T.2
Lee, G.3
Park, J.H.4
Cai, H.N.5
Shen, P.6
-
27
-
-
84866556851
-
Interaction between sleep and metabolism in Drosophila with altered octopamine signaling
-
22829591,.;: –.
-
Erion R, DiAngelo JR, Crocker A, Sehgal A, Interaction between sleep and metabolism in Drosophila with altered octopamine signaling. J Biol Chem. 2012;287: 32406–32414. doi: 10.1074/jbc.M112.36087522829591
-
(2012)
J Biol Chem
, vol.287
, pp. 32406-32414
-
-
Erion, R.1
DiAngelo, J.R.2
Crocker, A.3
Sehgal, A.4
-
28
-
-
84863399603
-
Allatostatin-A neurons inhibit feeding behavior in adult Drosophila
-
22345563,.;: –.
-
Hergarden AC, Tayler TD, Anderson DJ, Allatostatin-A neurons inhibit feeding behavior in adult Drosophila. Proc Natl Acad Sci U S A. 2012;109: 3967–3972. doi: 10.1073/pnas.120077810922345563
-
(2012)
Proc Natl Acad Sci U S A
, vol.109
, pp. 3967-3972
-
-
Hergarden, A.C.1
Tayler, T.D.2
Anderson, D.J.3
-
29
-
-
32544439026
-
Electrical hyperexcitation of lateral ventral pacemaker neurons desynchronizes downstream circadian oscillators in the fly circadian circuit and induces multiple behavioral periods
-
Nitabach MN, Wu Y, Sheeba V, Lemon WC, Strumbos J, Zelensky PK, et al. Electrical hyperexcitation of lateral ventral pacemaker neurons desynchronizes downstream circadian oscillators in the fly circadian circuit and induces multiple behavioral periods. J Neurosci Off J Soc Neurosci. 2006;26: 479–489. doi: 10.1523/JNEUROSCI.3915-05.2006
-
(2006)
J Neurosci Off J Soc Neurosci
, vol.26
, pp. 479-489
-
-
Nitabach, M.N.1
Wu, Y.2
Sheeba, V.3
Lemon, W.C.4
Strumbos, J.5
Zelensky, P.K.6
-
30
-
-
0035282949
-
Altered electrical properties in Drosophila neurons developing without synaptic transmission
-
Baines RA, Uhler JP, Thompson A, Sweeney ST, Bate M, Altered electrical properties in Drosophila neurons developing without synaptic transmission. J Neurosci Off J Soc Neurosci. 2001;21: 1523–1531.
-
(2001)
J Neurosci Off J Soc Neurosci
, vol.21
, pp. 1523-1531
-
-
Baines, R.A.1
Uhler, J.P.2
Thompson, A.3
Sweeney, S.T.4
Bate, M.5
-
31
-
-
67349138657
-
Peptidergic paracrine and endocrine cells in the midgut of the fruit fly maggot
-
19319573,.;: –.
-
Veenstra JA, Peptidergic paracrine and endocrine cells in the midgut of the fruit fly maggot. Cell Tissue Res. 2009;336: 309–323. doi: 10.1007/s00441-009-0769-y19319573
-
(2009)
Cell Tissue Res
, vol.336
, pp. 309-323
-
-
Veenstra, J.A.1
-
32
-
-
59449107268
-
Regulatory peptides in fruit fly midgut
-
18972134,.;: –.
-
Veenstra JA, Agricola H-J, Sellami A, Regulatory peptides in fruit fly midgut. Cell Tissue Res. 2008;334: 499–516. doi: 10.1007/s00441-008-0708-318972134
-
(2008)
Cell Tissue Res
, vol.334
, pp. 499-516
-
-
Veenstra, J.A.1
Agricola, H.-J.2
Sellami, A.3
-
33
-
-
0029585432
-
Immunocytochemical localization of Diploptera punctata allatostatin-like peptide in Drosophila melanogaster
-
8847412,.;: –.
-
Yoon JG, Stay B, Immunocytochemical localization of Diploptera punctata allatostatin-like peptide in Drosophila melanogaster. J Comp Neurol. 1995;363: 475–488. 8847412
-
(1995)
J Comp Neurol
, vol.363
, pp. 475-488
-
-
Yoon, J.G.1
Stay, B.2
-
34
-
-
79953714910
-
Peptidomics and Peptide Hormone Processing in the Drosophila Midgut
-
21214272,.;: –.
-
Reiher W, Shirras C, Kahnt J, Baumeister S, Isaac RE, Wegener C, Peptidomics and Peptide Hormone Processing in the Drosophila Midgut. J Proteome Res. 2011;10: 1881–1892. doi: 10.1021/pr101116g21214272
-
(2011)
J Proteome Res
, vol.10
, pp. 1881-1892
-
-
Reiher, W.1
Shirras, C.2
Kahnt, J.3
Baumeister, S.4
Isaac, R.E.5
Wegener, C.6
-
35
-
-
84892671348
-
+ transport and contraction frequency in the midgut and hindgut of larval Drosophila melanogaster
-
24408875,.;: –.
-
Vanderveken M, O’Donnell MJ, Effects of diuretic hormone 31, drosokinin, and allatostatin A on transepithelial K+ transport and contraction frequency in the midgut and hindgut of larval Drosophila melanogaster. Arch Insect Biochem Physiol. 2014;85: 76–93. doi: 10.1002/arch.2114424408875
-
(2014)
Arch Insect Biochem Physiol
, vol.85
, pp. 76-93
-
-
Vanderveken, M.1
O’Donnell, M.J.2
-
36
-
-
0033229899
-
Reverse physiology in Drosophila: identification of a novel allatostatin-like neuropeptide and its cognate receptor structurally related to the mammalian somatostatin/galanin/opioid receptor family
-
10545101,.;: –.
-
Birgül N, W C, Reverse physiology in Drosophila: identification of a novel allatostatin-like neuropeptide and its cognate receptor structurally related to the mammalian somatostatin/galanin/opioid receptor family. EMBO J. 1999;18: 5892–5900. 10545101
-
(1999)
EMBO J
, vol.18
, pp. 5892-5900
-
-
Birgül, N.1
-
37
-
-
0033876759
-
Molecular cloning and genomic organization of a second probable allatostatin receptor from Drosophila melanogaster
-
10873647,.;: –.
-
Lenz C, Williamson M, Grimmelikhuijzen CJ, Molecular cloning and genomic organization of a second probable allatostatin receptor from Drosophila melanogaster. Biochem Biophys Res Commun. 2000;273: 571–577. doi: 10.1006/bbrc.2000.296410873647
-
(2000)
Biochem Biophys Res Commun
, vol.273
, pp. 571-577
-
-
Lenz, C.1
Williamson, M.2
Grimmelikhuijzen, C.J.3
-
38
-
-
0034607147
-
Molecular cloning and genomic organization of a novel receptor from Drosophila melanogaster structurally related to mammalian galanin receptors
-
10694483,.;: –.
-
Lenz C, Søndergaard L, Grimmelikhuijzen CJ, Molecular cloning and genomic organization of a novel receptor from Drosophila melanogaster structurally related to mammalian galanin receptors. Biochem Biophys Res Commun. 2000;269: 91–96. doi: 10.1006/bbrc.2000.225110694483
-
(2000)
Biochem Biophys Res Commun
, vol.269
, pp. 91-96
-
-
Lenz, C.1
Søndergaard, L.2
Grimmelikhuijzen, C.J.3
-
39
-
-
0034817299
-
Type A allatostatins from Drosophila melanogaster and Diplotera puncata activate two Drosophila allatostatin receptors, DAR-1 and DAR-2, expressed in CHO cells
-
11527383,.;: –.
-
Larsen MJ, Burton KJ, Zantello MR, Smith VG, Lowery DL, Kubiak TM, Type A allatostatins from Drosophila melanogaster and Diplotera puncata activate two Drosophila allatostatin receptors, DAR-1 and DAR-2, expressed in CHO cells. Biochem Biophys Res Commun. 2001;286: 895–901. doi: 10.1006/bbrc.2001.547611527383
-
(2001)
Biochem Biophys Res Commun
, vol.286
, pp. 895-901
-
-
Larsen, M.J.1
Burton, K.J.2
Zantello, M.R.3
Smith, V.G.4
Lowery, D.L.5
Kubiak, T.M.6
-
40
-
-
84878435930
-
Molecular evolution of peptidergic signaling systems in bilaterians
-
23671109,.;: –.
-
Mirabeau O, Joly J-S, Molecular evolution of peptidergic signaling systems in bilaterians. Proc Natl Acad Sci. 2013;110: E2028–E2037. doi: 10.1073/pnas.121995611023671109
-
(2013)
Proc Natl Acad Sci
, vol.110
, pp. E2028-E2037
-
-
Mirabeau, O.1
Joly, J.-S.2
-
41
-
-
84940434889
-
Unravelling the Evolution of the Allatostatin-Type A, KISS and Galanin Peptide-Receptor Gene Families in Bilaterians: Insights from Anopheles Mosquitoes
-
26135459,..;:.
-
Felix RC, Trindade M, Pires IRP, Fonseca VG, Martins RS, Silveira H, et al. Unravelling the Evolution of the Allatostatin-Type A, KISS and Galanin Peptide-Receptor Gene Families in Bilaterians: Insights from Anopheles Mosquitoes. PLoS ONE. 2015;10: e0130347. doi: 10.1371/journal.pone.013034726135459
-
(2015)
PLoS ONE
, vol.10
, pp. e0130347
-
-
Felix, R.C.1
Trindade, M.2
Pires, I.R.P.3
Fonseca, V.G.4
Martins, R.S.5
Silveira, H.6
-
42
-
-
84878150640
-
Global view of the evolution and diversity of metazoan neuropeptide signaling
-
23637342,.;: –.
-
Jékely G, Global view of the evolution and diversity of metazoan neuropeptide signaling. Proc Natl Acad Sci. 2013;110: 8702–8707. doi: 10.1073/pnas.122183311023637342
-
(2013)
Proc Natl Acad Sci
, vol.110
, pp. 8702-8707
-
-
Jékely, G.1
-
43
-
-
0034824368
-
Neuropeptides and neuropeptide receptors in the Drosophila melanogaster genome
-
11381038,.;: –.
-
Hewes RS, Taghert PH, Neuropeptides and neuropeptide receptors in the Drosophila melanogaster genome. Genome Res. 2001;11: 1126–1142. doi: 10.1101/gr.16990111381038
-
(2001)
Genome Res
, vol.11
, pp. 1126-1142
-
-
Hewes, R.S.1
Taghert, P.H.2
-
44
-
-
34447255940
-
The galanin peptide family: receptor pharmacology, pleiotropic biological actions, and implications in health and disease
-
17604107,.;: –.
-
Lang R, Gundlach AL, Kofler B, The galanin peptide family: receptor pharmacology, pleiotropic biological actions, and implications in health and disease. Pharmacol Ther. 2007;115: 177–207. doi: 10.1016/j.pharmthera.2007.05.00917604107
-
(2007)
Pharmacol Ther
, vol.115
, pp. 177-207
-
-
Lang, R.1
Gundlach, A.L.2
Kofler, B.3
-
45
-
-
84916213947
-
Physiology, signaling, and pharmacology of galanin peptides and receptors: three decades of emerging diversity
-
25428932,..;: –.
-
Lang R, Gundlach AL, Holmes FE, Hobson SA, Wynick D, Hökfelt T, et al. Physiology, signaling, and pharmacology of galanin peptides and receptors: three decades of emerging diversity. Pharmacol Rev. 2015;67: 118–175. doi: 10.1124/pr.112.00653625428932
-
(2015)
Pharmacol Rev
, vol.67
, pp. 118-175
-
-
Lang, R.1
Gundlach, A.L.2
Holmes, F.E.3
Hobson, S.A.4
Wynick, D.5
Hökfelt, T.6
-
46
-
-
33847302850
-
Neurochemical regulation of sleep
-
16777143,.;: –.
-
Steiger A, Neurochemical regulation of sleep. J Psychiatr Res. 2007;41: 537–552. 16777143
-
(2007)
J Psychiatr Res
, vol.41
, pp. 537-552
-
-
Steiger, A.1
-
47
-
-
34347207237
-
Prandiology of Drosophila and the CAFE assay
-
17494737,..;: –.
-
Ja WW, Carvalho GB, Mak EM, de la Rosa NN, Fang AY, Liong JC, et al. Prandiology of Drosophila and the CAFE assay. Proc Natl Acad Sci U S A. 2007;104: 8253–8256. doi: 10.1073/pnas.070272610417494737
-
(2007)
Proc Natl Acad Sci U S A
, vol.104
, pp. 8253-8256
-
-
Ja, W.W.1
Carvalho, G.B.2
Mak, E.M.3
de la Rosa, N.N.4
Fang, A.Y.5
Liong, J.C.6
-
48
-
-
47049101429
-
An internal thermal sensor controlling temperature preference in Drosophila
-
18548007,..;: –.
-
Hamada FN, Rosenzweig M, Kang K, Pulver SR, Ghezzi A, Jegla TJ, et al. An internal thermal sensor controlling temperature preference in Drosophila. Nature. 2008;454: 217–220. doi: 10.1038/nature0700118548007
-
(2008)
Nature
, vol.454
, pp. 217-220
-
-
Hamada, F.N.1
Rosenzweig, M.2
Kang, K.3
Pulver, S.R.4
Ghezzi, A.5
Jegla, T.J.6
-
49
-
-
66349129337
-
Temporal dynamics of neuronal activation by Channelrhodopsin-2 and TRPA1 determine behavioral output in Drosophila larvae
-
19339465,.;: –.
-
Pulver SR, Pashkovski SL, Hornstein NJ, Garrity PA, Griffith LC, Temporal dynamics of neuronal activation by Channelrhodopsin-2 and TRPA1 determine behavioral output in Drosophila larvae. J Neurophysiol. 2009;101: 3075–3088. doi: 10.1152/jn.00071.200919339465
-
(2009)
J Neurophysiol
, vol.101
, pp. 3075-3088
-
-
Pulver, S.R.1
Pashkovski, S.L.2
Hornstein, N.J.3
Garrity, P.A.4
Griffith, L.C.5
-
50
-
-
41949107081
-
Sex-specific control and tuning of the pattern generator for courtship song in Drosophila
-
18423205,.;: –.
-
Clyne JD, Miesenböck G, Sex-specific control and tuning of the pattern generator for courtship song in Drosophila. Cell. 2008;133: 354–363. doi: 10.1016/j.cell.2008.01.05018423205
-
(2008)
Cell
, vol.133
, pp. 354-363
-
-
Clyne, J.D.1
Miesenböck, G.2
-
51
-
-
77957225815
-
Cellular organization of the neural circuit that drives Drosophila courtship behavior
-
20832315,.;: –.
-
Yu JY, Kanai MI, Demir E, Jefferis GSXE, Dickson BJ, Cellular organization of the neural circuit that drives Drosophila courtship behavior. Curr Biol. 2010;20: 1602–1614. doi: 10.1016/j.cub.2010.08.02520832315
-
(2010)
Curr Biol
, vol.20
, pp. 1602-1614
-
-
Yu, J.Y.1
Kanai, M.I.2
Demir, E.3
Jefferis, G.S.X.E.4
Dickson, B.J.5
-
52
-
-
84869507792
-
Dendritic filopodia, Ripped Pocket, NOMPC, and NMDARs contribute to the sense of touch in Drosophila larvae
-
23103192,.;: –.
-
Tsubouchi A, Caldwell JC, Tracey WD, Dendritic filopodia, Ripped Pocket, NOMPC, and NMDARs contribute to the sense of touch in Drosophila larvae. Curr Biol CB. 2012;22: 2124–2134. doi: 10.1016/j.cub.2012.09.01923103192
-
(2012)
Curr Biol CB
, vol.22
, pp. 2124-2134
-
-
Tsubouchi, A.1
Caldwell, J.C.2
Tracey, W.D.3
-
53
-
-
3242733807
-
Spatiotemporal gene expression targeting with the TARGET and gene-switch systems in Drosophila
-
McGuire SE, Mao Z, Davis RL, Spatiotemporal gene expression targeting with the TARGET and gene-switch systems in Drosophila. Sci STKE Signal Transduct Knowl Environ. 2004;2004: pl6. doi: 10.1126/stke.2202004pl6
-
(2004)
Sci STKE Signal Transduct Knowl Environ
, vol.2004
, pp. pl6
-
-
McGuire, S.E.1
Mao, Z.2
Davis, R.L.3
-
54
-
-
84903291620
-
Selection of Motor Programs for Suppressing Food Intake and Inducing Locomotion in the Drosophila Brain
-
24960360,..;:.
-
Schoofs A, Hückesfeld S, Schlegel P, Miroschnikow A, Peters M, Zeymer M, Sengupta P, et al. Selection of Motor Programs for Suppressing Food Intake and Inducing Locomotion in the Drosophila Brain. PLoS Biol. 2014;12: e1001893. doi: 10.1371/journal.pbio.100189324960360
-
(2014)
PLoS Biol
, vol.12
, pp. e1001893
-
-
Schoofs, A.1
Hückesfeld, S.2
Schlegel, P.3
Miroschnikow, A.4
Peters, M.5
Zeymer, M.6
Sengupta, P.7
-
55
-
-
0023217740
-
Coexistence of peptides with classical neurotransmitters
-
2885215,..;: –.
-
Hökfelt T, Millhorn D, Seroogy K, Tsuruo Y, Ceccatelli S, Lindh B, et al. Coexistence of peptides with classical neurotransmitters. Experientia. 1987;43: 768–780. doi: 10.1007/BF019453542885215
-
(1987)
Experientia
, vol.43
, pp. 768-780
-
-
Hökfelt, T.1
Millhorn, D.2
Seroogy, K.3
Tsuruo, Y.4
Ceccatelli, S.5
Lindh, B.6
-
56
-
-
33746774319
-
Neuropeptides in interneurons of the insect brain
-
16761145,.;: –.
-
Nässel DR, Homberg U, Neuropeptides in interneurons of the insect brain. Cell Tissue Res. 2006;326: 1–24. doi: 10.1007/s00441-006-0210-816761145
-
(2006)
Cell Tissue Res
, vol.326
, pp. 1-24
-
-
Nässel, D.R.1
Homberg, U.2
-
57
-
-
84884925278
-
Highly Improved Gene Targeting by Germline-Specific Cas9 Expression in Drosophila
-
24002648,.;: –.
-
Kondo S, Ueda R, Highly Improved Gene Targeting by Germline-Specific Cas9 Expression in Drosophila. Genetics. 2013;195: 715–721. doi: 10.1534/genetics.113.15673724002648
-
(2013)
Genetics
, vol.195
, pp. 715-721
-
-
Kondo, S.1
Ueda, R.2
-
58
-
-
14744303401
-
Neurobiology of the fruit fly’s circadian clock
-
15720403,.;: –.
-
Helfrich-Förster C, Neurobiology of the fruit fly’s circadian clock. Genes Brain Behav. 2005;4: 65–76. 15720403
-
(2005)
Genes Brain Behav
, vol.4
, pp. 65-76
-
-
Helfrich-Förster, C.1
-
59
-
-
16844366408
-
Drosophila melanogaster: an insect model for fundamental studies of sleep
-
15817324,.;: –.
-
Ho KS, Sehgal A, Drosophila melanogaster: an insect model for fundamental studies of sleep. Methods Enzymol. 2005;393: 772–793. doi: 10.1016/S0076-6879(05)93041-315817324
-
(2005)
Methods Enzymol
, vol.393
, pp. 772-793
-
-
Ho, K.S.1
Sehgal, A.2
-
60
-
-
0037123779
-
Electrical silencing of Drosophila pacemaker neurons stops the free-running circadian clock
-
12086605,.;: –.
-
Nitabach MN, Blau J, Holmes TC, Electrical silencing of Drosophila pacemaker neurons stops the free-running circadian clock. Cell. 2002;109: 485–495. 12086605
-
(2002)
Cell
, vol.109
, pp. 485-495
-
-
Nitabach, M.N.1
Blau, J.2
Holmes, T.C.3
-
61
-
-
84876216271
-
A Dynamic Deep Sleep Stage in Drosophila
-
23595750,.;: –.
-
van Alphen B, Yap MHW, Kirszenblat L, Kottler B, van Swinderen B, A Dynamic Deep Sleep Stage in Drosophila. J Neurosci. 2013;33: 6917–6927. doi: 10.1523/JNEUROSCI.0061-13.201323595750
-
(2013)
J Neurosci
, vol.33
, pp. 6917-6927
-
-
van Alphen, B.1
Yap, M.H.W.2
Kirszenblat, L.3
Kottler, B.4
van Swinderen, B.5
-
62
-
-
2942590660
-
Hemolymph sugar homeostasis and starvation-induced hyperactivity affected by genetic manipulations of the adipokinetic-hormone-encoding gene in Drosophila melanogaster
-
15166157,.;: –.
-
Lee G, Park JH, Hemolymph sugar homeostasis and starvation-induced hyperactivity affected by genetic manipulations of the adipokinetic-hormone-encoding gene in Drosophila melanogaster. Genetics. 2004;167: 311–323. 15166157
-
(2004)
Genetics
, vol.167
, pp. 311-323
-
-
Lee, G.1
Park, J.H.2
-
63
-
-
77955420495
-
Clock and cycle Limit Starvation-Induced Sleep Loss in Drosophila
-
Keene AC, Duboué ER, McDonald DM, Dus M, Suh GSB, Waddell S, et al. Clock and cycle Limit Starvation-Induced Sleep Loss in Drosophila. Curr Biol. 2010;20: 12091215. doi: 10.1016/j.cub.2010.05.029
-
(2010)
Curr Biol
, vol.20
, pp. 12091215
-
-
Keene, A.C.1
Duboué, E.R.2
McDonald, D.M.3
Dus, M.4
Suh, G.S.B.5
Waddell, S.6
-
64
-
-
60449086065
-
Control of the Postmating Behavioral Switch in Drosophila Females by Internal Sensory Neurons
-
19249273,..;: –.
-
Yang C, Rumpf S, Xiang Y, Gordon MD, Song W, Jan LY, et al. Control of the Postmating Behavioral Switch in Drosophila Females by Internal Sensory Neurons. Neuron. 2009;61: 519–526. doi: 10.1016/j.neuron.2008.12.02119249273
-
(2009)
Neuron
, vol.61
, pp. 519-526
-
-
Yang, C.1
Rumpf, S.2
Xiang, Y.3
Gordon, M.D.4
Song, W.5
Jan, L.Y.6
-
65
-
-
0028352925
-
Neural specificity of elav expression: defining a Drosophila promoter for directing expression to the nervous system
-
8207445,.;: –.
-
Yao KM, White K, Neural specificity of elav expression: defining a Drosophila promoter for directing expression to the nervous system. J Neurochem. 1994;63: 41–51. 8207445
-
(1994)
J Neurochem
, vol.63
, pp. 41-51
-
-
Yao, K.M.1
White, K.2
-
66
-
-
37249035920
-
The commonly used marker ELAV is transiently expressed in neuroblasts and glial cells in the Drosophila embryonic CNS
-
17994541,.;: –.
-
Berger C, Renner S, Lüer K, Technau GM, The commonly used marker ELAV is transiently expressed in neuroblasts and glial cells in the Drosophila embryonic CNS. Dev Dyn. 2007;236: 3562–3568. doi: 10.1002/dvdy.2137217994541
-
(2007)
Dev Dyn
, vol.236
, pp. 3562-3568
-
-
Berger, C.1
Renner, S.2
Lüer, K.3
Technau, G.M.4
-
67
-
-
84863721179
-
Neural Circuitry Underlying Drosophila Female Postmating Behavioral Responses
-
22658598,.;: –.
-
Rezával C, Pavlou HJ, Dornan AJ, Chan Y-B, Kravitz EA, Goodwin SF, Neural Circuitry Underlying Drosophila Female Postmating Behavioral Responses. Curr Biol. 2012;22: 1155–1165. doi: 10.1016/j.cub.2012.04.06222658598
-
(2012)
Curr Biol
, vol.22
, pp. 1155-1165
-
-
Rezával, C.1
Pavlou, H.J.2
Dornan, A.J.3
Chan, Y.-B.4
Kravitz, E.A.5
Goodwin, S.F.6
-
68
-
-
31444452338
-
Evidence that stem cells reside in the adult Drosophila midgut epithelium
-
16340959,.;: –.
-
Micchelli CA, Perrimon N, Evidence that stem cells reside in the adult Drosophila midgut epithelium. Nature. 2006;439: 475–479. doi: 10.1038/nature0437116340959
-
(2006)
Nature
, vol.439
, pp. 475-479
-
-
Micchelli, C.A.1
Perrimon, N.2
-
69
-
-
84922569595
-
Generation of enteroendocrine cell diversity in midgut stem cell lineages
-
25670792,.;: –.
-
Beehler-Evans R, Micchelli CA, Generation of enteroendocrine cell diversity in midgut stem cell lineages. Development. 2015;142: 654–664. doi: 10.1242/dev.11495925670792
-
(2015)
Development
, vol.142
, pp. 654-664
-
-
Beehler-Evans, R.1
Micchelli, C.A.2
-
70
-
-
34249804498
-
Using FlyAtlas to identify better Drosophila melanogaster models of human disease
-
17534367,.;: –.
-
Chintapalli VR, Wang J, Dow JAT, Using FlyAtlas to identify better Drosophila melanogaster models of human disease. Nat Genet. 2007;39: 715–720. doi: 10.1038/ng204917534367
-
(2007)
Nat Genet
, vol.39
, pp. 715-720
-
-
Chintapalli, V.R.1
Wang, J.2
Dow, J.A.T.3
-
72
-
-
56349145622
-
PDF cells are a GABA-responsive wake-promoting component of the Drosophila sleep circuit
-
19038223,..;: –.
-
Parisky KM, Agosto J, Pulver SR, Shang Y, Kuklin E, Hodge JJL, et al. PDF cells are a GABA-responsive wake-promoting component of the Drosophila sleep circuit. Neuron. 2008;60: 672–682. doi: 10.1016/j.neuron.2008.10.04219038223
-
(2008)
Neuron
, vol.60
, pp. 672-682
-
-
Parisky, K.M.1
Agosto, J.2
Pulver, S.R.3
Shang, Y.4
Kuklin, E.5
Hodge, J.J.L.6
-
73
-
-
77649262219
-
Synaptic connections of PDF-immunoreactive lateral neurons projecting to the dorsal protocerebrum of Drosophila melanogaster
-
19941354,.;: –.
-
Yasuyama K, Meinertzhagen IA, Synaptic connections of PDF-immunoreactive lateral neurons projecting to the dorsal protocerebrum of Drosophila melanogaster. J Comp Neurol. 2010;518: 292–304. doi: 10.1002/cne.2221019941354
-
(2010)
J Comp Neurol
, vol.518
, pp. 292-304
-
-
Yasuyama, K.1
Meinertzhagen, I.A.2
-
74
-
-
42149175153
-
Widespread receptivity to neuropeptide PDF throughout the neuronal circadian clock network of Drosophila revealed by real-time cyclic AMP imaging
-
18439407,.;: –.
-
Shafer OT, Kim DJ, Dunbar-Yaffe R, Nikolaev VO, Lohse MJ, Taghert PH, Widespread receptivity to neuropeptide PDF throughout the neuronal circadian clock network of Drosophila revealed by real-time cyclic AMP imaging. Neuron. 2008;58: 223–237. doi: 10.1016/j.neuron.2008.02.01818439407
-
(2008)
Neuron
, vol.58
, pp. 223-237
-
-
Shafer, O.T.1
Kim, D.J.2
Dunbar-Yaffe, R.3
Nikolaev, V.O.4
Lohse, M.J.5
Taghert, P.H.6
-
75
-
-
26944502709
-
Drosophila GPCR Han is a receptor for the circadian clock neuropeptide PDF
-
16242407,..;: –.
-
Hyun S, Lee Y, Hong S-T, Bang S, Paik D, Kang J, et al. Drosophila GPCR Han is a receptor for the circadian clock neuropeptide PDF. Neuron. 2005;48: 267–278. doi: 10.1016/j.neuron.2005.08.02516242407
-
(2005)
Neuron
, vol.48
, pp. 267-278
-
-
Hyun, S.1
Lee, Y.2
Hong, S.-T.3
Bang, S.4
Paik, D.5
Kang, J.6
-
76
-
-
77952168831
-
PDF receptor expression reveals direct interactions between circadian oscillators in Drosophila
-
20394051,.;: –.
-
Im SH, Taghert PH, PDF receptor expression reveals direct interactions between circadian oscillators in Drosophila. J Comp Neurol. 2010;518: 1925–1945. doi: 10.1002/cne.2231120394051
-
(2010)
J Comp Neurol
, vol.518
, pp. 1925-1945
-
-
Im, S.H.1
Taghert, P.H.2
-
77
-
-
84923263404
-
Calcitonin gene-related peptide neurons mediate sleep-specific circadian output in Drosophila
-
25455031,..;: –.
-
Kunst M, Hughes ME, Raccuglia D, Felix M, Li M, Barnett G, et al. Calcitonin gene-related peptide neurons mediate sleep-specific circadian output in Drosophila. Curr Biol CB. 2014;24: 2652–2664. doi: 10.1016/j.cub.2014.09.07725455031
-
(2014)
Curr Biol CB
, vol.24
, pp. 2652-2664
-
-
Kunst, M.1
Hughes, M.E.2
Raccuglia, D.3
Felix, M.4
Li, M.5
Barnett, G.6
-
78
-
-
67650976340
-
Cellular dissection of circadian peptide signals with genetically encoded membrane-tethered ligands
-
19592252,.;: –.
-
Choi C, Fortin J-P, McCarthy E v, Oksman L, Kopin AS, Nitabach MN, Cellular dissection of circadian peptide signals with genetically encoded membrane-tethered ligands. Curr Biol CB. 2009;19: 1167–1175. doi: 10.1016/j.cub.2009.06.02919592252
-
(2009)
Curr Biol CB
, vol.19
, pp. 1167-1175
-
-
Choi, C.1
Fortin, J.-P.2
McCarthy, E.3
Oksman, L.4
Kopin, A.S.5
Nitabach, M.N.6
-
79
-
-
41749110864
-
Circadian Remodeling of Neuronal Circuits Involved in Rhythmic Behavior
-
18366255,.;:.
-
Fernández MP, Berni J, Ceriani MF, Circadian Remodeling of Neuronal Circuits Involved in Rhythmic Behavior. PLoS Biol. 2008;6: e69. doi: 10.1371/journal.pbio.006006918366255
-
(2008)
PLoS Biol
, vol.6
, pp. e69
-
-
Fernández, M.P.1
Berni, J.2
Ceriani, M.F.3
-
80
-
-
0034724292
-
Differential regulation of circadian pacemaker output by separate clock genes in Drosophila
-
10725392,.;: –.
-
Park JH, Helfrich-Förster C, Lee G, Liu L, Rosbash M, Hall JC, Differential regulation of circadian pacemaker output by separate clock genes in Drosophila. Proc Natl Acad Sci USA. 2000;97: 3608–3613. 10725392
-
(2000)
Proc Natl Acad Sci USA
, vol.97
, pp. 3608-3613
-
-
Park, J.H.1
Helfrich-Förster, C.2
Lee, G.3
Liu, L.4
Rosbash, M.5
Hall, J.C.6
-
81
-
-
84865743518
-
Autoreceptor control of peptide/neurotransmitter corelease from PDF neurons determines allocation of circadian activity in drosophila
-
22938867,..;: –.
-
Choi C, Cao G, Tanenhaus AK, McCarthy EV, Jung M, Schleyer W, et al. Autoreceptor control of peptide/neurotransmitter corelease from PDF neurons determines allocation of circadian activity in drosophila. Cell Rep. 2012;2: 332–344. doi: 10.1016/j.celrep.2012.06.02122938867
-
(2012)
Cell Rep
, vol.2
, pp. 332-344
-
-
Choi, C.1
Cao, G.2
Tanenhaus, A.K.3
McCarthy, E.V.4
Jung, M.5
Schleyer, W.6
-
82
-
-
33845397569
-
Development and morphology of the clock-gene-expressing lateral neurons of Drosophila melanogaster
-
17099895,.;: –.
-
Helfrich-Förster C, Shafer OT, Wülbeck C, Grieshaber E, Rieger D, Taghert P, Development and morphology of the clock-gene-expressing lateral neurons of Drosophila melanogaster. J Comp Neurol. 2007;500: 47–70. doi: 10.1002/cne.2114617099895
-
(2007)
J Comp Neurol
, vol.500
, pp. 47-70
-
-
Helfrich-Förster, C.1
Shafer, O.T.2
Wülbeck, C.3
Grieshaber, E.4
Rieger, D.5
Taghert, P.6
-
83
-
-
77949512736
-
RNA-interference knockdown of Drosophila pigment dispersing factor in neuronal subsets: the anatomical basis of a neuropeptide’s circadian functions
-
20011537,.;:.
-
Shafer OT, Taghert PH, RNA-interference knockdown of Drosophila pigment dispersing factor in neuronal subsets: the anatomical basis of a neuropeptide’s circadian functions. PloS One. 2009;4: e8298. doi: 10.1371/journal.pone.000829820011537
-
(2009)
PloS One
, vol.4
, pp. e8298
-
-
Shafer, O.T.1
Taghert, P.H.2
-
84
-
-
84869495917
-
Two dopaminergic neurons signal to the dorsal fan-shaped body to promote wakefulness in Drosophila
-
23022067,.;: –.
-
Liu Q, Liu S, Kodama L, Driscoll MR, Wu MN, Two dopaminergic neurons signal to the dorsal fan-shaped body to promote wakefulness in Drosophila. Curr Biol CB. 2012;22: 2114–2123. doi: 10.1016/j.cub.2012.09.00823022067
-
(2012)
Curr Biol CB
, vol.22
, pp. 2114-2123
-
-
Liu, Q.1
Liu, S.2
Kodama, L.3
Driscoll, M.R.4
Wu, M.N.5
-
85
-
-
84868199388
-
Identification of a dopamine pathway that regulates sleep and arousal in Drosophila
-
23064381,..;: –.
-
Ueno T, Tomita J, Tanimoto H, Endo K, Ito K, Kume S, et al. Identification of a dopamine pathway that regulates sleep and arousal in Drosophila. Nat Neurosci. 2012;15: 1516–1523. doi: 10.1038/nn.323823064381
-
(2012)
Nat Neurosci
, vol.15
, pp. 1516-1523
-
-
Ueno, T.1
Tomita, J.2
Tanimoto, H.3
Endo, K.4
Ito, K.5
Kume, S.6
-
86
-
-
84896302999
-
Neuronal machinery of sleep homeostasis in Drosophila
-
24559676,.;: –.
-
Donlea JM, Pimentel D, Miesenböck G, Neuronal machinery of sleep homeostasis in Drosophila. Neuron. 2014;81: 860–872. doi: 10.1016/j.neuron.2013.12.01324559676
-
(2014)
Neuron
, vol.81
, pp. 860-872
-
-
Donlea, J.M.1
Pimentel, D.2
Miesenböck, G.3
-
87
-
-
84924662580
-
Neuroarchitecture and neuroanatomy of the Drosophila central complex: A GAL4-based dissection of protocerebral bridge neurons and circuits
-
25380328,.;: –.
-
Wolff T, Iyer NA, Rubin GM, Neuroarchitecture and neuroanatomy of the Drosophila central complex: A GAL4-based dissection of protocerebral bridge neurons and circuits. J Comp Neurol. 2015;523: 997–1037. doi: 10.1002/cne.2370525380328
-
(2015)
J Comp Neurol
, vol.523
, pp. 997-1037
-
-
Wolff, T.1
Iyer, N.A.2
Rubin, G.M.3
-
88
-
-
77949372055
-
Structure of the adult central complex in Drosophila: organization of distinct neuronal subsets
-
20187142,.;: –.
-
Young JM, Armstrong JD, Structure of the adult central complex in Drosophila: organization of distinct neuronal subsets. J Comp Neurol. 2010;518: 1500–1524. doi: 10.1002/cne.2228420187142
-
(2010)
J Comp Neurol
, vol.518
, pp. 1500-1524
-
-
Young, J.M.1
Armstrong, J.D.2
-
89
-
-
34548314069
-
Activation of EGFR and ERK by rhomboid signaling regulates the consolidation and maintenance of sleep in Drosophila
-
17694052,.;: –.
-
Foltenyi K, Greenspan RJ, Newport JW, Activation of EGFR and ERK by rhomboid signaling regulates the consolidation and maintenance of sleep in Drosophila. Nat Neurosci. 2007;10: 1160–1167. doi: 10.1038/nn195717694052
-
(2007)
Nat Neurosci
, vol.10
, pp. 1160-1167
-
-
Foltenyi, K.1
Greenspan, R.J.2
Newport, J.W.3
-
90
-
-
83355168712
-
Heterogeneous Expression of Drosophila Gustatory Receptors in Enteroendocrine Cells
-
22194978,.;:.
-
Park J-H, Kwon JY, Heterogeneous Expression of Drosophila Gustatory Receptors in Enteroendocrine Cells. PLoS ONE. 2011;6: e29022. doi: 10.1371/journal.pone.002902222194978
-
(2011)
PLoS ONE
, vol.6
, pp. e29022
-
-
Park, J.-H.1
Kwon, J.Y.2
-
91
-
-
84934777302
-
The Neuropeptide Allatostatin A Regulates Metabolism and Feeding Decisions in Drosophila
-
26123697,.;:.
-
Hentze JL, Carlsson MA, Kondo S, Nässel DR, Rewitz KF, The Neuropeptide Allatostatin A Regulates Metabolism and Feeding Decisions in Drosophila. Sci Rep. 2015;5: 11680. doi: 10.1038/srep1168026123697
-
(2015)
Sci Rep
, vol.5
, pp. 11680
-
-
Hentze, J.L.1
Carlsson, M.A.2
Kondo, S.3
Nässel, D.R.4
Rewitz, K.F.5
-
92
-
-
0141527282
-
Allatostatin gene expression in brain and midgut, and activity of synthetic allatostatins on feeding-related processes in the cockroach Blattella germanica
-
14556958,.;: –.
-
Aguilar R, Maestro JL, Vilaplana L, Pascual N, Piulachs M-D, Bellés X, Allatostatin gene expression in brain and midgut, and activity of synthetic allatostatins on feeding-related processes in the cockroach Blattella germanica. Regul Pept. 2003;115: 171–177. 14556958
-
(2003)
Regul Pept
, vol.115
, pp. 171-177
-
-
Aguilar, R.1
Maestro, J.L.2
Vilaplana, L.3
Pascual, N.4
Piulachs, M.-D.5
Bellés, X.6
-
93
-
-
0032762625
-
Effects of an allatostatin and a myosuppressin on midgut carbohydrate enzyme activity in the cockroach Diploptera punctata
-
10612442,..;: –.
-
Fusé M, Zhang JR, Partridge E, Nachman RJ, Orchard I, Bendena WG, et al. Effects of an allatostatin and a myosuppressin on midgut carbohydrate enzyme activity in the cockroach Diploptera punctata. Peptides. 1999;20: 1285–1293. 10612442
-
(1999)
Peptides
, vol.20
, pp. 1285-1293
-
-
Fusé, M.1
Zhang, J.R.2
Partridge, E.3
Nachman, R.J.4
Orchard, I.5
Bendena, W.G.6
-
94
-
-
84894416163
-
Neuropeptidergic signaling partitions arousal behaviors in zebrafish
-
Woods IG, Schoppik D, Shi VJ, Zimmerman S, Coleman HA, Greenwood J, et al. Neuropeptidergic signaling partitions arousal behaviors in zebrafish. J Neurosci Off J Soc Neurosci. 2014;34: 3142–3160. doi: 10.1523/JNEUROSCI.3529-13.2014
-
(2014)
J Neurosci Off J Soc Neurosci
, vol.34
, pp. 3142-3160
-
-
Woods, I.G.1
Schoppik, D.2
Shi, V.J.3
Zimmerman, S.4
Coleman, H.A.5
Greenwood, J.6
-
95
-
-
39549086559
-
A Caenorhabditis elegans allatostatin/galanin-like receptor NPR-9 inhibits local search behavior in response to feeding cues
-
18216257,.;: –.
-
Bendena WG, Boudreau JR, Papanicolaou T, Maltby M, Tobe SS, Chin-Sang ID, A Caenorhabditis elegans allatostatin/galanin-like receptor NPR-9 inhibits local search behavior in response to feeding cues. Proc Natl Acad Sci. 2008;105: 1339–1342. doi: 10.1073/pnas.070949210518216257
-
(2008)
Proc Natl Acad Sci
, vol.105
, pp. 1339-1342
-
-
Bendena, W.G.1
Boudreau, J.R.2
Papanicolaou, T.3
Maltby, M.4
Tobe, S.S.5
Chin-Sang, I.D.6
-
96
-
-
84855929317
-
Neuropeptide F immunoreactive clock neurons modify evening locomotor activity and free-running period in Drosophila melanogaster
-
21826659,.;: –.
-
Hermann C, Yoshii T, Dusik V, Helfrich‐Förster C, Neuropeptide F immunoreactive clock neurons modify evening locomotor activity and free-running period in Drosophila melanogaster. J Comp Neurol. 2012;520: 970–987. doi: 10.1002/cne.2274221826659
-
(2012)
J Comp Neurol
, vol.520
, pp. 970-987
-
-
Hermann, C.1
Yoshii, T.2
Dusik, V.3
Helfrich‐Förster, C.4
-
97
-
-
84904281710
-
The Ion Transport Peptide Is a New Functional Clock Neuropeptide in the Fruit Fly Drosophila melanogaster
-
25031396,.;: –.
-
Hermann-Luibl C, Yoshii T, Senthilan PR, Dircksen H, Helfrich-Forster C, The Ion Transport Peptide Is a New Functional Clock Neuropeptide in the Fruit Fly Drosophila melanogaster. J Neurosci. 2014;34: 9522–9536. doi: 10.1523/JNEUROSCI.0111-14.201425031396
-
(2014)
J Neurosci
, vol.34
, pp. 9522-9536
-
-
Hermann-Luibl, C.1
Yoshii, T.2
Senthilan, P.R.3
Dircksen, H.4
Helfrich-Forster, C.5
-
98
-
-
33747595657
-
Sex- and clock-controlled expression of the neuropeptide F gene in Drosophila
-
16894172,.;: –.
-
Lee G, Bahn JH, Park JH, Sex- and clock-controlled expression of the neuropeptide F gene in Drosophila. Proc Natl Acad Sci U S A. 2006;103: 12580–12585. doi: 10.1073/pnas.060117110316894172
-
(2006)
Proc Natl Acad Sci U S A
, vol.103
, pp. 12580-12585
-
-
Lee, G.1
Bahn, J.H.2
Park, J.H.3
-
99
-
-
84920396976
-
A Homeostatic Sleep-Stabilizing Pathway in Drosophila Composed of the Sex Peptide Receptor and Its Ligand, the Myoinhibitory Peptide
-
25333796,..;:.
-
Oh Y, Yoon S-E, Zhang Q, Chae H-S, Daubnerová I, Shafer OT, Shaw P, et al. A Homeostatic Sleep-Stabilizing Pathway in Drosophila Composed of the Sex Peptide Receptor and Its Ligand, the Myoinhibitory Peptide. PLoS Biol. 2014;12: e1001974. doi: 10.1371/journal.pbio.100197425333796
-
(2014)
PLoS Biol
, vol.12
, pp. e1001974
-
-
Oh, Y.1
Yoon, S.-E.2
Zhang, Q.3
Chae, H.-S.4
Daubnerová, I.5
Shafer, O.T.6
Shaw, P.7
-
100
-
-
84896996418
-
The Drosophila Circadian Clock Is a Variably Coupled Network of Multiple Peptidergic Units
-
24675961,.;: –.
-
Yao Z, Shafer OT, The Drosophila Circadian Clock Is a Variably Coupled Network of Multiple Peptidergic Units. Science. 2014;343: 1516–1520. doi: 10.1126/science.125128524675961
-
(2014)
Science
, vol.343
, pp. 1516-1520
-
-
Yao, Z.1
Shafer, O.T.2
-
101
-
-
26944486625
-
PDF receptor signaling in Drosophila contributes to both circadian and geotactic behaviors
-
16242402,..;: –.
-
Mertens I, Vandingenen A, Johnson EC, Shafer OT, Li W, Trigg JS, et al. PDF receptor signaling in Drosophila contributes to both circadian and geotactic behaviors. Neuron. 2005;48: 213–219. doi: 10.1016/j.neuron.2005.09.00916242402
-
(2005)
Neuron
, vol.48
, pp. 213-219
-
-
Mertens, I.1
Vandingenen, A.2
Johnson, E.C.3
Shafer, O.T.4
Li, W.5
Trigg, J.S.6
-
102
-
-
84888869890
-
A PDF/NPF Neuropeptide Signaling Circuitry of Male Drosophila melanogaster Controls Rival-Induced Prolonged Mating
-
24314729,.;: –.
-
Kim WJ, Jan LY, Jan YN, A PDF/NPF Neuropeptide Signaling Circuitry of Male Drosophila melanogaster Controls Rival-Induced Prolonged Mating. Neuron. 2013;80: 1190–1205. doi: 10.1016/j.neuron.2013.09.03424314729
-
(2013)
Neuron
, vol.80
, pp. 1190-1205
-
-
Kim, W.J.1
Jan, L.Y.2
Jan, Y.N.3
-
103
-
-
56349125022
-
Light-arousal and circadian photoreception circuits intersect at the large PDF cells of the Drosophila brain
-
19060186,.;: –.
-
Shang Y, Griffith LC, Rosbash M, Light-arousal and circadian photoreception circuits intersect at the large PDF cells of the Drosophila brain. Proc Natl Acad Sci U S A. 2008;105: 19587–19594. doi: 10.1073/pnas.080957710519060186
-
(2008)
Proc Natl Acad Sci U S A
, vol.105
, pp. 19587-19594
-
-
Shang, Y.1
Griffith, L.C.2
Rosbash, M.3
-
104
-
-
84880033511
-
Pigment-Dispersing Factor Modulates Pheromone Production in Clock Cells that Influence Mating in Drosophila
-
23849197,.;: –.
-
Krupp JJ, Billeter J-C, Wong A, Choi C, Nitabach MN, Levine JD, Pigment-Dispersing Factor Modulates Pheromone Production in Clock Cells that Influence Mating in Drosophila. Neuron. 2013;79: 54–68. doi: 10.1016/j.neuron.2013.05.01923849197
-
(2013)
Neuron
, vol.79
, pp. 54-68
-
-
Krupp, J.J.1
Billeter, J.-C.2
Wong, A.3
Choi, C.4
Nitabach, M.N.5
Levine, J.D.6
-
105
-
-
84864351005
-
Remote control of renal physiology by the intestinal neuropeptide pigment-dispersing factor in Drosophila
-
22778427,..;: –.
-
Talsma AD, Christov CP, Terriente-Felix A, Linneweber GA, Perea D, Wayland M, et al. Remote control of renal physiology by the intestinal neuropeptide pigment-dispersing factor in Drosophila. Proc Natl Acad Sci. 2012;109: 12177–12182. doi: 10.1073/pnas.120024710922778427
-
(2012)
Proc Natl Acad Sci
, vol.109
, pp. 12177-12182
-
-
Talsma, A.D.1
Christov, C.P.2
Terriente-Felix, A.3
Linneweber, G.A.4
Perea, D.5
Wayland, M.6
-
106
-
-
0035448950
-
Multiple amidated neuropeptides are required for normal circadian locomotor rhythms in Drosophila
-
11517257,.;: –.
-
Taghert PH, Hewes RS, Park JH, O’Brien MA, Han M, Peck ME, Multiple amidated neuropeptides are required for normal circadian locomotor rhythms in Drosophila. J Neurosci. 2001;21: 6673–6686. 11517257
-
(2001)
J Neurosci
, vol.21
, pp. 6673-6686
-
-
Taghert, P.H.1
Hewes, R.S.2
Park, J.H.3
O’Brien, M.A.4
Han, M.5
Peck, M.E.6
-
107
-
-
78650575223
-
Genetically encoded dendritic marker sheds light on neuronal connectivity in Drosophila
-
21059961,..;: –.
-
Nicolaï LJJ, Ramaekers A, Raemaekers T, Drozdzecki A, Mauss AS, Yan J, et al. Genetically encoded dendritic marker sheds light on neuronal connectivity in Drosophila. Proc Natl Acad Sci. 2010;107: 20553–20558. doi: 10.1073/pnas.101019810721059961
-
(2010)
Proc Natl Acad Sci
, vol.107
, pp. 20553-20558
-
-
Nicolaï, L.J.J.1
Ramaekers, A.2
Raemaekers, T.3
Drozdzecki, A.4
Mauss, A.S.5
Yan, J.6
-
108
-
-
78951477322
-
Refinement of tools for targeted gene expression in Drosophila
-
20697123,..;: –.
-
Pfeiffer BD, Ngo T-TB, Hibbard KL, Murphy C, Jenett A, Truman JW, et al. Refinement of tools for targeted gene expression in Drosophila. Genetics. 2010;186: 735–755. doi: 10.1534/genetics.110.11991720697123
-
(2010)
Genetics
, vol.186
, pp. 735-755
-
-
Pfeiffer, B.D.1
Ngo, T.-T.B.2
Hibbard, K.L.3
Murphy, C.4
Jenett, A.5
Truman, J.W.6
-
109
-
-
12344305171
-
AKH-producing neuroendocrine cell ablation decreases trehalose and induces behavioral changes in Drosophila
-
15374818,.;: –.
-
Isabel G, Martin JR, Chidami S, Veenstra JA, Rosay P, AKH-producing neuroendocrine cell ablation decreases trehalose and induces behavioral changes in Drosophila. Am J Physiol—Regul Integr Comp Physiol. 2005;288: R531–538. 15374818
-
(2005)
Am J Physiol—Regul Integr Comp Physiol
, vol.288
, pp. R531-538
-
-
Isabel, G.1
Martin, J.R.2
Chidami, S.3
Veenstra, J.A.4
Rosay, P.5
-
110
-
-
11144224126
-
A modified minimal hemolymph-like solution, HL3.1, for physiological recordings at the neuromuscular junctions of normal and mutant Drosophila larvae
-
15763995,.;: –.
-
Feng Y, Ueda A, Wu C-F, A modified minimal hemolymph-like solution, HL3.1, for physiological recordings at the neuromuscular junctions of normal and mutant Drosophila larvae. J Neurogenet. 2004;18: 377–402. doi: 10.1080/0167706049089452215763995
-
(2004)
J Neurogenet
, vol.18
, pp. 377-402
-
-
Feng, Y.1
Ueda, A.2
Wu, C.-F.3
-
111
-
-
84862520770
-
Fiji: an open-source platform for biological-image analysis
-
22743772,..;: –.
-
Schindelin J, Arganda-Carreras I, Frise E, Kaynig V, Longair M, Pietzsch T, et al. Fiji: an open-source platform for biological-image analysis. Nat Methods. 2012;9: 676–682. doi: 10.1038/nmeth.201922743772
-
(2012)
Nat Methods
, vol.9
, pp. 676-682
-
-
Schindelin, J.1
Arganda-Carreras, I.2
Frise, E.3
Kaynig, V.4
Longair, M.5
Pietzsch, T.6
-
112
-
-
0029940326
-
Distribution of Dip-allatostatin I-like immunoreactivity in the brain of the locust Schistocerca gregaria with detailed analysis of immunostaining in the central complex
-
8743422,.;: –.
-
Vitzthum H, Homberg U, Agricola H, Distribution of Dip-allatostatin I-like immunoreactivity in the brain of the locust Schistocerca gregaria with detailed analysis of immunostaining in the central complex. J Comp Neurol. 1996;369: 419–437. doi: 10.1002/(SICI)1096-9861(19960603)369:3<419::AID-CNE7>3.0.CO;2-88743422
-
(1996)
J Comp Neurol
, vol.369
, pp. 419-437
-
-
Vitzthum, H.1
Homberg, U.2
Agricola, H.3
-
113
-
-
40149101561
-
Neuroarchitecture of peptidergic systems in the larval ventral ganglion of Drosophila melanogaster
-
17668072,.;:.
-
Santos JG, Vömel M, Struck R, Homberg U, Nässel DR, Wegener C, Neuroarchitecture of peptidergic systems in the larval ventral ganglion of Drosophila melanogaster. PLoS One. 2007;2: e695. 17668072
-
(2007)
PLoS One
, vol.2
, pp. e695
-
-
Santos, J.G.1
Vömel, M.2
Struck, R.3
Homberg, U.4
Nässel, D.R.5
Wegener, C.6
-
114
-
-
80755188094
-
A new ImageJ plug-in “ActogramJ” for chronobiological analyses
-
21921300,.;: –.
-
Schmid B, Helfrich-Förster C, Yoshii T, A new ImageJ plug-in “ActogramJ” for chronobiological analyses. J Biol Rhythms. 2011;26: 464–467. doi: 10.1177/074873041141426421921300
-
(2011)
J Biol Rhythms
, vol.26
, pp. 464-467
-
-
Schmid, B.1
Helfrich-Förster, C.2
Yoshii, T.3
-
115
-
-
84884853112
-
GABAB receptors play an essential role in maintaining sleep during the second half of the night in Drosophila melanogaster
-
24068350,.;: –.
-
Gmeiner F, Kołodziejczyk A, Yoshii T, Rieger D, Nässel DR, Helfrich-Förster C, GABAB receptors play an essential role in maintaining sleep during the second half of the night in Drosophila melanogaster. J Exp Biol. 2013;216: 3837–3843. doi: 10.1242/jeb.08556324068350
-
(2013)
J Exp Biol
, vol.216
, pp. 3837-3843
-
-
Gmeiner, F.1
Kołodziejczyk, A.2
Yoshii, T.3
Rieger, D.4
Nässel, D.R.5
Helfrich-Förster, C.6
-
116
-
-
4444377903
-
Novel single chain cAMP sensors for receptor-induced signal propagation
-
15231839,.;: –.
-
Nikolaev VO, Bünemann M, Hein L, Hannawacker A, Lohse MJ, Novel single chain cAMP sensors for receptor-induced signal propagation. J Biol Chem. 2004;279: 37215–37218. doi: 10.1074/jbc.C40030220015231839
-
(2004)
J Biol Chem
, vol.279
, pp. 37215-37218
-
-
Nikolaev, V.O.1
Bünemann, M.2
Hein, L.3
Hannawacker, A.4
Lohse, M.J.5
-
117
-
-
0028483237
-
Improved stability of Drosophila larval neuromuscular preparations in haemolymph-like physiological solutions
-
Stewart BA, Atwood HL, Renger JJ, Wang J, Wu CF, Improved stability of Drosophila larval neuromuscular preparations in haemolymph-like physiological solutions. J Comp Physiol [A]. 1994;175: 179–191.
-
(1994)
J Comp Physiol [A]
, vol.175
, pp. 179-191
-
-
Stewart, B.A.1
Atwood, H.L.2
Renger, J.J.3
Wang, J.4
Wu, C.F.5
|