-
1
-
-
84937517463
-
TARANIS functions with cyclin A and Cdk1 in a novel arousal center to control sleep in Drosophila
-
Afonso, D. J. S., D. Liu, D. R. Machado, H. Pan, J. E. C. Jepson et al., 2015 TARANIS functions with cyclin A and Cdk1 in a novel arousal center to control sleep in Drosophila. Curr. Biol. 25: 1717-1726
-
(2015)
Curr. Biol
, vol.25
, pp. 1717-1726
-
-
Afonso, D.J.S.1
Liu, D.2
Machado, D.R.3
Pan, H.4
Jepson, J.E.C.5
-
2
-
-
39749083327
-
Modulation of GABAA receptor desensitization uncouples sleep onset and maintenance in Drosophila.
-
Agosto, J., J. C. Choi, K. M. Parisky, G. Stilwell, M. Rosbash et al., 2008 Modulation of GABAA receptor desensitization uncouples sleep onset and maintenance in Drosophila. Nat. Neurosci. 11: 354-359
-
(2008)
Nat. Neurosci
, vol.11
, pp. 354-359
-
-
Agosto, J.1
Choi, J.C.2
Parisky, K.M.3
Stilwell, G.4
Rosbash, M.5
-
3
-
-
0344091557
-
A role for CK2 in the Drosophila circadian oscillator.
-
Akten, B., E. Jauch, G. K. Genova, E. Y. Kim, I. Edery et al., 2003 A role for CK2 in the Drosophila circadian oscillator. Nat. Neurosci. 6: 251-257
-
(2003)
Nat. Neurosci
, vol.6
, pp. 251-257
-
-
Akten, B.1
Jauch, E.2
Genova, G.K.3
Kim, E.Y.4
Edery, I.5
-
4
-
-
17044451254
-
A mutant Drosophila homolog of mammalian Clock disrupts circadian rhythms and transcription of period and timeless
-
Allada, R., N. E. White, W. V. So, J. C. Hall, and M. Rosbash, 1998 A mutant Drosophila homolog of mammalian Clock disrupts circadian rhythms and transcription of period and timeless. Cell 93: 791-804
-
(1998)
Cell
, vol.93
, pp. 791-804
-
-
Allada, R.1
White, N.E.2
So, W.V.3
Hall, J.C.4
Rosbash, M.5
-
5
-
-
84871309889
-
A KATP channel gene effect on sleep duration: From genome-wide association studies to function in Drosophila.
-
Allebrandt, K. V., N. Amin, B. Müller-Myhsok, T. Esko, M. Teder-Laving et al., 2011 A KATP channel gene effect on sleep duration: from genome-wide association studies to function in Drosophila. Mol. Psychiatry 18: 122-132
-
(2011)
Mol. Psychiatry
, vol.18
, pp. 122-132
-
-
Allebrandt, K.V.1
Amin, N.2
Müller-Myhsok, B.3
Esko, T.4
Teder-Laving, M.5
-
6
-
-
16844367444
-
Essentials of sleep recordings in Drosophila: Moving beyond sleep time
-
Andretic, R., and P. J. Shaw, 2005 Essentials of sleep recordings in Drosophila: moving beyond sleep time. Methods Enzymol. 393: 759-772
-
(2005)
Methods Enzymol
, vol.393
, pp. 759-772
-
-
Andretic, R.1
Shaw, P.J.2
-
7
-
-
0028258994
-
Negative feedback defining a circadian clock: Autoregulation of the clock gene frequency
-
Aronson, B., K. Johnson, J. Loros, and J. Dunlap, 1994 Negative feedback defining a circadian clock: autoregulation of the clock gene frequency. Science 263: 1578-1584
-
(1994)
Science
, vol.263
, pp. 1578-1584
-
-
Aronson, B.1
Johnson, K.2
Loros, J.3
Dunlap, J.4
-
8
-
-
84929216843
-
The neuronal architecture of the mushroom body provides a logic for associative learning.
-
Aso, Y., D. Hattori, Y. Yu, R. M. Johnston, N. A. Iyer et al., 2014a The neuronal architecture of the mushroom body provides a logic for associative learning. eLife 3: e04577
-
(2014)
Elife
, vol.3
-
-
Aso, Y.1
Hattori, D.2
Yu, Y.3
Johnston, R.M.4
Iyer, N.A.5
-
9
-
-
84958042710
-
Mushroom body output neurons encode valence and guide memory-based action selection in Drosophila
-
Aso, Y., D. Sitaraman, T. Ichinose, K. R. Kaun, K. Vogt et al., 2014b Mushroom body output neurons encode valence and guide memory-based action selection in Drosophila. eLife 3: e04580
-
(2014)
Elife
, vol.3
-
-
Aso, Y.1
Sitaraman, D.2
Ichinose, T.3
Kaun, K.R.4
Vogt, K.5
-
10
-
-
84949256758
-
Anaplastic lymphoma kinase acts in the Drosophila mushroom body to negatively regulate sleep
-
Bai, L., and A. Sehgal, 2015 Anaplastic lymphoma kinase acts in the Drosophila mushroom body to negatively regulate sleep. PLoS Genet. 11: e1005611
-
(2015)
Plos Genet
, pp. 11
-
-
Bai, L.1
Sehgal, A.2
-
11
-
-
0035282949
-
Altered electrical properties in Drosophila neurons developing without synaptic transmission
-
Baines, R. A., J. P. Uhler, A. Thompson, S. T. Sweeney, and M. Bate, 2001 Altered electrical properties in Drosophila neurons developing without synaptic transmission. J. Neurosci. 21: 1523-1531
-
(2001)
J. Neurosci
, vol.21
, pp. 1523-1531
-
-
Baines, R.A.1
Uhler, J.P.2
Thompson, A.3
Sweeney, S.T.4
Bate, M.5
-
12
-
-
0035883159
-
The Drosophila double-timeS mutation delays the nuclear accumulation of period protein and affects the feedback regulation of period mRNA
-
Bao, S., J. Rihel, E. Bjes, J. Y. Fan, and J. L. Price, 2001 The Drosophila double-timeS mutation delays the nuclear accumulation of period protein and affects the feedback regulation of period mRNA. J. Neurosci. 21: 7117-7126
-
(2001)
J. Neurosci
, vol.21
, pp. 7117-7126
-
-
Bao, S.1
Rihel, J.2
Bjes, E.3
Fan, J.Y.4
Price, J.L.5
-
13
-
-
0021751123
-
Restoration of circadian behavioural rhythms by gene transfer in Drosophila
-
Bargiello, T. A., F. R. Jackson, and M. W. Young, 1984 Restoration of circadian behavioural rhythms by gene transfer in Drosophila. Nature 312: 752-754
-
(1984)
Nature
, vol.312
, pp. 752-754
-
-
Bargiello, T.A.1
Jackson, F.R.2
Young, M.W.3
-
14
-
-
0023140125
-
Changes in abundance or structure of the per gene product can alter periodicity of the Drosophila clock
-
Baylies, M. K., T. A. Bargiello, F. R. Jackson, and M. W. Young, 1987 Changes in abundance or structure of the per gene product can alter periodicity of the Drosophila clock. Nature 326: 390-392
-
(1987)
Nature
, vol.326
, pp. 390-392
-
-
Baylies, M.K.1
Bargiello, T.A.2
Jackson, F.R.3
Young, M.W.4
-
15
-
-
84930506430
-
Constructing the suprachiasmatic nucleus: A watchmaker’s perspective on the central clockworks. Front. Syst
-
Bedont, J. L., and S. Blackshaw, 2015 Constructing the suprachiasmatic nucleus: a watchmaker’s perspective on the central clockworks. Front. Syst. Neurosci. 9: 350-321
-
(2015)
Neurosci
, vol.9
-
-
Bedont, J.L.1
Blackshaw, S.2
-
16
-
-
47549086116
-
The blue-light photoreceptor CRYPTOCHROME is expressed in a subset of circadian oscillator neurons in the Drosophila CNS
-
Benito, J., J. H. Houl, G. W. Roman, and P. E. Hardin, 2008 The blue-light photoreceptor CRYPTOCHROME is expressed in a subset of circadian oscillator neurons in the Drosophila CNS. J. Biol. Rhythms 23: 296-307
-
(2008)
J. Biol. Rhythms
, vol.23
, pp. 296-307
-
-
Benito, J.1
Houl, J.H.2
Roman, G.W.3
Hardin, P.E.4
-
17
-
-
84931566829
-
Sleep facilitates memory by blocking dopamine neuronmediated forgetting
-
Berry, J. A., I. Cervantes-Sandoval, M. Chakraborty, and R. L. Davis, 2015 Sleep facilitates memory by blocking dopamine neuronmediated forgetting. Cell 161: 1656-1667
-
(2015)
Cell
, vol.161
, pp. 1656-1667
-
-
Berry, J.A.1
Cervantes-Sandoval, I.2
Chakraborty, M.3
Davis, R.L.4
-
18
-
-
0033544692
-
Cycling vrille expression is required for a functional Drosophila clock
-
Blau, J., and M. W. Young, 1999 Cycling vrille expression is required for a functional Drosophila clock. Cell 99: 661-671
-
(1999)
Cell
, vol.99
, pp. 661-671
-
-
Blau, J.1
Young, M.W.2
-
19
-
-
34249007199
-
Drosophila Hyperkinetic mutants have reduced sleep and impaired memory
-
Bushey, D., R. Huber, G. Tononi, and C. Cirelli, 2007 Drosophila Hyperkinetic mutants have reduced sleep and impaired memory. J. Neurosci. 27: 5384-5393
-
(2007)
J. Neurosci
, vol.27
, pp. 5384-5393
-
-
Bushey, D.1
Huber, R.2
Tononi, G.3
Cirelli, C.4
-
20
-
-
60849129819
-
The Drosophila fragile X mental retardation gene regulates sleep need
-
Bushey, D., G. Tononi, and C. Cirelli, 2009 The Drosophila fragile X mental retardation gene regulates sleep need. J. Neurosci. 29: 1948-1961
-
(2009)
J. Neurosci
, vol.29
, pp. 1948-1961
-
-
Bushey, D.1
Tononi, G.2
Cirelli, C.3
-
21
-
-
79959532384
-
Sleep and synaptic homeostasis: Structural evidence in Drosophila
-
Bushey, D., G. Tononi, and C. Cirelli, 2011 Sleep and synaptic homeostasis: structural evidence in Drosophila. Science 332: 1576-1581
-
(2011)
Science
, vol.332
, pp. 1576-1581
-
-
Bushey, D.1
Tononi, G.2
Cirelli, C.3
-
22
-
-
84928150292
-
Sleep-and wakedependent changes in neuronal activity and reactivity demonstrated in fly neurons using in vivo calcium imaging
-
Bushey, D., G. Tononi, and C. Cirelli, 2015 Sleep-and wakedependent changes in neuronal activity and reactivity demonstrated in fly neurons using in vivo calcium imaging. Proc. Natl. Acad. Sci. USA 112: 4785-4790
-
(2015)
Proc. Natl. Acad. Sci. USA
, vol.112
, pp. 4785-4790
-
-
Bushey, D.1
Tononi, G.2
Cirelli, C.3
-
23
-
-
35148877259
-
Interactions between circadian neurons control temperature synchronization of Drosophila behavior
-
Busza, A., A. Murad, and P. Emery, 2007 Interactions between circadian neurons control temperature synchronization of Drosophila behavior. J. Neurosci. 27: 10722-10733
-
(2007)
J. Neurosci
, vol.27
, pp. 10722-10733
-
-
Busza, A.1
Murad, A.2
Emery, P.3
-
24
-
-
46749121763
-
Circadian control of membrane excitability in Drosophila melanogaster lateral ventral clock neurons
-
Cao, G., and M. N. Nitabach, 2008 Circadian control of membrane excitability in Drosophila melanogaster lateral ventral clock neurons. J. Neurosci. 28: 6493-6501
-
(2008)
J. Neurosci
, vol.28
, pp. 6493-6501
-
-
Cao, G.1
Nitabach, M.N.2
-
25
-
-
84899510762
-
Identification of a circadian output circuit for rest: Activity rhythms in Drosophila
-
Cavanaugh, D. J., J. D. Geratowski, J. R. A. Wooltorton, J. M. Spaethling, C. E. Hector et al., 2014 Identification of a circadian output circuit for rest: activity rhythms in Drosophila. Cell 157: 689-701
-
(2014)
Cell
, vol.157
, pp. 689-701
-
-
Cavanaugh, D.J.1
Geratowski, J.D.2
Wooltorton, J.R.A.3
Spaethling, J.M.4
Hector, C.E.5
-
26
-
-
84957084557
-
The Drosophila circadian clock gates sleep through time-of-day dependent modulation of sleep-promoting neurons
-
Cavanaugh, D. J., A. S. Vigderman, T. Dean, D. S. Garbe, and A. Sehgal, 2016 The Drosophila circadian clock gates sleep through time-of-day dependent modulation of sleep-promoting neurons. Sleep 39: 345-356
-
(2016)
Sleep
, vol.39
, pp. 345-356
-
-
Cavanaugh, D.J.1
Vigderman, A.S.2
Dean, T.3
Garbe, D.S.4
Sehgal, A.5
-
27
-
-
84959200804
-
Circadian rhythms in neuronal activity propagate through output circuits. Nat
-
Cavey, M., B. Collins, C. Bertet, and J. Blau, 2016 Circadian rhythms in neuronal activity propagate through output circuits. Nat. Neurosci. 19: 587-595
-
(2016)
Neurosci
, vol.19
, pp. 587-595
-
-
Cavey, M.1
Collins, B.2
Bertet, C.3
Blau, J.4
-
28
-
-
0033597921
-
Light-dependent sequestration of TIMELESS by CRYPTOCHROME
-
Ceriani, M. F., T. K. Darlington, D. Staknis, P. Mas, A. A. Petti et al., 1999 Light-dependent sequestration of TIMELESS by CRYPTOCHROME. Science 285: 553-556
-
(1999)
Science
, vol.285
, pp. 553-556
-
-
Ceriani, M.F.1
Darlington, T.K.2
Staknis, D.3
Mas, P.4
Petti, A.A.5
-
29
-
-
0036848612
-
Genome-wide expression analysis in Drosophila reveals genes controlling circadian behavior
-
Ceriani, M. F., J. B. Hogenesch, M. Yanovsky, S. Panda, M. Straume et al., 2002 Genome-wide expression analysis in Drosophila reveals genes controlling circadian behavior. J. Neurosci. 22: 9305-9319
-
(2002)
J. Neurosci
, vol.22
, pp. 9305-9319
-
-
Ceriani, M.F.1
Hogenesch, J.B.2
Yanovsky, M.3
Panda, S.4
Straume, M.5
-
30
-
-
84948440137
-
Drosophila Ionotropic Receptor 25a mediates circadian clock resetting by temperature.
-
Chen, C., E. Buhl, M. Xu, V. Croset, J. S. Rees et al., 2015 Drosophila Ionotropic Receptor 25a mediates circadian clock resetting by temperature. Nature 527: 516-520
-
(2015)
Nature
, vol.527
, pp. 516-520
-
-
Chen, C.1
Buhl, E.2
Xu, M.3
Croset, V.4
Rees, J.S.5
-
31
-
-
84938556962
-
A neuron-glia interaction involving GABA transaminase contributes to sleep loss in sleepless mutants.
-
Chen W.-F., S. Maguire, M. Sowcik, W. Luo, K. Koh et al., 2014 A neuron-glia interaction involving GABA transaminase contributes to sleep loss in sleepless mutants. Mol. Psychiatry 20: 240-251
-
(2014)
Mol. Psychiatry
, vol.20
, pp. 240-251
-
-
Chen, W.-F.1
Maguire, S.2
Sowcik, M.3
Luo, W.4
Koh, K.5
-
32
-
-
84961176026
-
Larval population density alters adult sleep in wild-type Drosophila melanogaster but not in Amnesiac mutant flies
-
Chi, M., L. Griffith, and C. Vecsey, 2014 Larval population density alters adult sleep in wild-type Drosophila melanogaster but not in Amnesiac mutant flies. Brain Sci. 4: 453-470
-
(2014)
Brain Sci
, vol.4
, pp. 453-470
-
-
Chi, M.1
Griffith, L.2
Vecsey, C.3
-
33
-
-
46249098507
-
The phospho-occupancy of an atypical SLIMB-binding site on PERIOD that is phosphorylated by DOUBLETIME controls the pace of the clock
-
Chiu, J. C., J. T. Vanselow, A. Kramer, and I. Edery, 2008 The phospho-occupancy of an atypical SLIMB-binding site on PERIOD that is phosphorylated by DOUBLETIME controls the pace of the clock. Genes Dev. 22: 1758-1772
-
(2008)
Genes Dev
, vol.22
, pp. 1758-1772
-
-
Chiu, J.C.1
Vanselow, J.T.2
Kramer, A.3
Edery, I.4
-
34
-
-
79955540602
-
NEMO/NLK phosphorylates PERIOD to initiate a time-delay phosphorylation circuit that sets circadian clock speed
-
Chiu, J. C., H. W. Ko, and I. Edery, 2011 NEMO/NLK phosphorylates PERIOD to initiate a time-delay phosphorylation circuit that sets circadian clock speed. Cell 145: 357-370
-
(2011)
Cell
, vol.145
, pp. 357-370
-
-
Chiu, J.C.1
Ko, H.W.2
Edery, I.3
-
35
-
-
61449266413
-
The GABAA receptor RDL acts in peptidergic PDF neurons to promote sleep in Drosophila
-
Chung, B. Y., V. L. Kilman, J. R. Keath, J. L. Pitman, and R. Allada, 2009 The GABAA receptor RDL acts in peptidergic PDF neurons to promote sleep in Drosophila. Curr. Biol. 19: 386-390
-
(2009)
Curr. Biol
, vol.19
, pp. 386-390
-
-
Chung, B.Y.1
Kilman, V.L.2
Keath, J.R.3
Pitman, J.L.4
Allada, R.5
-
36
-
-
33748092874
-
Cellular consequences of sleep deprivation in the brain.
-
Cirelli, C., 2006 Cellular consequences of sleep deprivation in the brain. Sleep Med. Rev. 10: 307-321
-
(2006)
Sleep Med. Rev
, vol.10
, pp. 307-321
-
-
Cirelli, C.1
-
37
-
-
17844376199
-
Reduced sleep in Drosophila Shaker mutants
-
Cirelli, C., D. Bushey, S. Hill, R. Huber, R. Kreber et al., 2005 Reduced sleep in Drosophila Shaker mutants. Nature 434: 1087-1092
-
(2005)
Nature
, vol.434
, pp. 1087-1092
-
-
Cirelli, C.1
Bushey, D.2
Hill, S.3
Huber, R.4
Kreber, R.5
-
38
-
-
0035923746
-
Circadian regulation of gene expression systems in the Drosophila head
-
Claridge-Chang, A., H. Wijnen, F. Naef, C. Boothroyd, N. Rajewsky et al., 2001 Circadian regulation of gene expression systems in the Drosophila head. Neuron 32: 657-671
-
(2001)
Neuron
, vol.32
, pp. 657-671
-
-
Claridge-Chang, A.1
Wijnen, H.2
Naef, F.3
Boothroyd, C.4
Rajewsky, N.5
-
39
-
-
84950278355
-
Coordinated and compartmentalized neuromodulation shapes sensory processing in Drosophila
-
Cohn, R., I. Morantte, and V. Ruta, 2015 Coordinated and compartmentalized neuromodulation shapes sensory processing in Drosophila. Cell 163: 1742-1755
-
(2015)
Cell
, vol.163
, pp. 1742-1755
-
-
Cohn, R.1
Morantte, I.2
Ruta, V.3
-
40
-
-
84920495816
-
Differentially timed extracellular signals synchronize pacemaker neuron clocks
-
Collins, B., H. S. Kaplan, M. Cavey, K. R. Lelito, A. H. Bahle et al., 2014 Differentially timed extracellular signals synchronize pacemaker neuron clocks. PLoS Biol. 12: e1001959
-
(2014)
Plos Biol
, pp. 12
-
-
Collins, B.1
Kaplan, H.S.2
Cavey, M.3
Lelito, K.R.4
Bahle, A.H.5
-
41
-
-
79958753446
-
Sleep manifestations of voltage-gated potassium channel complex autoimmunity. Arch
-
Cornelius, J. R., S. J. Pittock, A. McKeon, V. A. Lennon, P. A. Aston et al., 2011 Sleep manifestations of voltage-gated potassium channel complex autoimmunity. Arch. Neurol. 68: 733-738
-
(2011)
Neurol
, vol.68
, pp. 733-738
-
-
Cornelius, J.R.1
Pittock, S.J.2
McKeon, A.3
Lennon, V.A.4
Aston, P.A.5
-
42
-
-
58149328456
-
Octopamine regulates sleep in Drosophila through protein kinase A-dependent mechanisms
-
Crocker, A., and A. Sehgal, 2008 Octopamine regulates sleep in Drosophila through protein kinase A-dependent mechanisms. J. Neurosci. 28: 9377-9385
-
(2008)
J. Neurosci
, vol.28
, pp. 9377-9385
-
-
Crocker, A.1
Sehgal, A.2
-
43
-
-
77953950983
-
Genetic analysis of sleep
-
Crocker, A., and A. Sehgal, 2010 Genetic analysis of sleep. Genes Dev. 24: 1220-1235
-
(2010)
Genes Dev
, vol.24
, pp. 1220-1235
-
-
Crocker, A.1
Sehgal, A.2
-
44
-
-
77649170707
-
Identification of a neural circuit that underlies the effects of octopamine on sleep: Wake behavior
-
Crocker, A., M. Shahidullah, I. B. Levitan, and A. Sehgal, 2010 Identification of a neural circuit that underlies the effects of octopamine on sleep: wake behavior. Neuron 65: 670-681
-
(2010)
Neuron
, vol.65
, pp. 670-681
-
-
Crocker, A.1
Shahidullah, M.2
Levitan, I.B.3
Sehgal, A.4
-
45
-
-
0028838141
-
Temporally regulated nuclear entry of the Drosophila period protein contributes to the circadian clock
-
Curtin, K. D., Z. J. Huang, and M. Rosbash, 1995 Temporally regulated nuclear entry of the Drosophila period protein contributes to the circadian clock. Neuron 14: 365-372
-
(1995)
Neuron
, vol.14
, pp. 365-372
-
-
Curtin, K.D.1
Huang, Z.J.2
Rosbash, M.3
-
46
-
-
0037423224
-
Vrille, Pdp1, and dClock form a second feedback loop in the Drosophila circadian clock
-
Cyran, S. A., A. M. Buchsbaum, K. L. Reddy, M.-C. Lin, N. R. J. Glossop et al., 2003 vrille, Pdp1, and dClock form a second feedback loop in the Drosophila circadian clock. Cell 112: 329-341
-
(2003)
Cell
, vol.112
, pp. 329-341
-
-
Cyran, S.A.1
Buchsbaum, A.M.2
Reddy, K.L.3
Lin, M.-C.4
Glossop, N.R.J.5
-
47
-
-
20044390202
-
The double-time protein kinase regulates the subcellular localization of the Drosophila clock protein period
-
Cyran, S. A., G. Yiannoulos, A. M. Buchsbaum, L. Saez, M. W. Young et al., 2005 The double-time protein kinase regulates the subcellular localization of the Drosophila clock protein period. J. Neurosci. 25: 5430-5437
-
(2005)
J. Neurosci
, vol.25
, pp. 5430-5437
-
-
Cyran, S.A.1
Yiannoulos, G.2
Buchsbaum, A.M.3
Saez, L.4
Young, M.W.5
-
48
-
-
0002424625
-
Observation botanique
-
de Mairan, J., 1729 Observation botanique. Hist Acad Roy Sci 1729: 35
-
(1729)
Hist Acad Roy Sci
, vol.1729
, pp. 35
-
-
De Mairan, J.1
-
49
-
-
33846206528
-
Specification and development of the pars intercerebralis and pars lateralis, neuroendocrine command centers in the Drosophila brain.
-
de Velasco, B., T. Erclik, D. Shy, J. Sclafani, H. Lipshitz et al., 2007 Specification and development of the pars intercerebralis and pars lateralis, neuroendocrine command centers in the Drosophila brain. Dev. Biol. 302: 309-323
-
(2007)
Dev. Biol
, vol.302
, pp. 309-323
-
-
De Velasco, B.1
Erclik, T.2
Shy, D.3
Sclafani, J.4
Lipshitz, H.5
-
50
-
-
84929606711
-
Sleep restores behavioral plasticity to Drosophila mutants
-
Dissel, S., V. Angadi, L. Kirszenblat, Y. Suzuki, J. Donlea et al., 2015 Sleep restores behavioral plasticity to Drosophila mutants. Curr. Biol. 25: 1270-1281
-
(2015)
Curr. Biol
, vol.25
, pp. 1270-1281
-
-
Dissel, S.1
Angadi, V.2
Kirszenblat, L.3
Suzuki, Y.4
Donlea, J.5
-
51
-
-
84866437207
-
High-resolution positional tracking for long-term analysis of Drosophila sleep and locomotion using the “Tracker” program
-
Donelson, N., E. Z. Kim, J. B. Slawson, C. G. Vecsey, R. Huber et al., 2012 High-resolution positional tracking for long-term analysis of Drosophila sleep and locomotion using the “Tracker” program. PLoS One 7: e37250
-
(2012)
Plos One
, pp. 7
-
-
Donelson, N.1
Kim, E.Z.2
Slawson, J.B.3
Vecsey, C.G.4
Huber, R.5
-
52
-
-
64249137056
-
Use-dependent plasticity in clock neurons regulates sleep need in Drosophila
-
Donlea, J. M., N. Ramanan, and P. J. Shaw, 2009 Use-dependent plasticity in clock neurons regulates sleep need in Drosophila. Science 324: 105-108
-
(2009)
Science
, vol.324
, pp. 105-108
-
-
Donlea, J.M.1
Ramanan, N.2
Shaw, P.J.3
-
53
-
-
79959503371
-
Inducing sleep by remote control facilitates memory consolidation in Drosophila
-
Donlea, J. M., M. S. Thimgan, Y. Suzuki, L. Gottschalk, and P. J. Shaw, 2011 Inducing sleep by remote control facilitates memory consolidation in Drosophila. Science 332: 1571-1576
-
(2011)
Science
, vol.332
, pp. 1571-1576
-
-
Donlea, J.M.1
Thimgan, M.S.2
Suzuki, Y.3
Gottschalk, L.4
Shaw, P.J.5
-
54
-
-
84896738342
-
Neuronal machinery of sleep homeostasis in Drosophila
-
Donlea, J. M., D. Pimentel, and G. Miesenböck, 2014 Neuronal machinery of sleep homeostasis in Drosophila. Neuron 81: 860-872
-
(2014)
Neuron
, vol.81
, pp. 860-872
-
-
Donlea, J.M.1
Pimentel, D.2
Miesenböck, G.3
-
55
-
-
84965033925
-
Genetic dissociation of daily sleep and sleep following thermogenetic sleep deprivation in Drosophila
-
Dubowy, C., K. Moravcevic, Z. Yue, J. Y. Wan, H. P. A. Van Dongen et al., 2016 Genetic dissociation of daily sleep and sleep following thermogenetic sleep deprivation in Drosophila. Sleep 39: 1083-1095
-
(2016)
Sleep
, vol.39
, pp. 1083-1095
-
-
Dubowy, C.1
Moravcevic, K.2
Yue, Z.3
Wan, J.Y.4
Van Dongen, H.P.A.5
-
56
-
-
84988346153
-
The timed depolarization of morning and evening oscillators phase shifts the circadian clock of Drosophila
-
Eck, S., C. Helfrich-Förster, and D. Rieger, 2016 The timed depolarization of morning and evening oscillators phase shifts the circadian clock of Drosophila. J. Biol. Rhythms 31: 428-442
-
(2016)
J. Biol. Rhythms
, vol.31
, pp. 428-442
-
-
Eck, S.1
Helfrich-Förster, C.2
Rieger, D.3
-
57
-
-
0032567038
-
CRY, a Drosophila clock and light-regulated cryptochrome, is a major contributor to circadian rhythm resetting and photosensitivity
-
Emery, P., W. V. So, M. Kaneko, J. C. Hall, and M. Rosbash, 1998 CRY, a Drosophila clock and light-regulated cryptochrome, is a major contributor to circadian rhythm resetting and photosensitivity. Cell 95: 669-679
-
(1998)
Cell
, vol.95
, pp. 669-679
-
-
Emery, P.1
So, W.V.2
Kaneko, M.3
Hall, J.C.4
Rosbash, M.5
-
58
-
-
0034732310
-
A unique circadian-rhythm photoreceptor
-
Emery, P., R. Stanewsky, J. C. Hall, and M. Rosbash, 2000 A unique circadian-rhythm photoreceptor. Nature 404: 456-457
-
(2000)
Nature
, vol.404
, pp. 456-457
-
-
Emery, P.1
Stanewsky, R.2
Hall, J.C.3
Rosbash, M.4
-
59
-
-
84866556851
-
Interaction between sleep and metabolism in Drosophila with altered octopamine signaling
-
Erion, R., J. R. DiAngelo, A. Crocker, and A. Sehgal, 2012 Interaction between sleep and metabolism in Drosophila with altered octopamine signaling. J. Biol. Chem. 287: 32406-32414
-
(2012)
J. Biol. Chem
, vol.287
, pp. 32406-32414
-
-
Erion, R.1
Diangelo, J.R.2
Crocker, A.3
Sehgal, A.4
-
60
-
-
84968904041
-
Neural clocks and Neuropeptide F/Y regulate circadian gene expression in a peripheral metabolic tissue
-
Erion, R., A. N. King, G. Wu, J. B. Hogenesch, and A. Sehgal, 2016 Neural clocks and Neuropeptide F/Y regulate circadian gene expression in a peripheral metabolic tissue. eLife 5: pii e13552:
-
(2016)
Elife
, vol.5
-
-
Erion, R.1
King, A.N.2
Wu, G.3
Hogenesch, J.B.4
Sehgal, A.5
-
61
-
-
34250790719
-
Post-translational regulation of the Drosophila circadian clock requires protein phosphatase 1 (PP1)
-
Fang, Y., S. Sathyanarayanan, and A. Sehgal, 2007 Post-translational regulation of the Drosophila circadian clock requires protein phosphatase 1 (PP1). Genes Dev. 21: 1506-1518
-
(2007)
Genes Dev
, vol.21
, pp. 1506-1518
-
-
Fang, Y.1
Sathyanarayanan, S.2
Sehgal, A.3
-
62
-
-
84937624331
-
How deeply does your mutant sleep? Probing arousal to better understand sleep defects in Drosophila.
-
Faville, R., B. Kottler, G. J. Goodhill, P. J. Shaw, and B. van Swinderen, 2015 How deeply does your mutant sleep? probing arousal to better understand sleep defects in Drosophila. Sci. Rep. 5: 8454
-
(2015)
Sci. Rep
, vol.5
, pp. 8454
-
-
Faville, R.1
Kottler, B.2
Goodhill, G.J.3
Shaw, P.J.4
Van Swinderen, B.5
-
63
-
-
84939246366
-
A conserved bicycle model for circadian clock control of membrane excitability
-
Flourakis, M., E. Kula-Eversole, A. L. Hutchison, T. H. Han, K. Aranda et al., 2015 A conserved bicycle model for circadian clock control of membrane excitability. Cell 162: 836-848
-
(2015)
Cell
, vol.162
, pp. 836-848
-
-
Flourakis, M.1
Kula-Eversole, E.2
Hutchison, A.L.3
Han, T.H.4
Aranda, K.5
-
64
-
-
79952798593
-
CRYPTOCHROME is a blue-light sensor that regulates neuronal firing rate
-
Fogle, K. J., K. G. Parson, N. A. Dahm, and T. C. Holmes, 2011 CRYPTOCHROME is a blue-light sensor that regulates neuronal firing rate. Science 331: 1409-1413
-
(2011)
Science
, vol.331
, pp. 1409-1413
-
-
Fogle, K.J.1
Parson, K.G.2
Dahm, N.A.3
Holmes, T.C.4
-
65
-
-
84923172300
-
CRYPTOCHROME-mediated phototransduction by modulation of the potassium ion channel b-subunit redox sensor
-
Fogle, K. J., L. S. Baik, J. H. Houl, T. T. Tran, L. Roberts et al., 2015 CRYPTOCHROME-mediated phototransduction by modulation of the potassium ion channel b-subunit redox sensor. Proc. Natl. Acad. Sci. USA 112: 2245-2250
-
(2015)
Proc. Natl. Acad. Sci. USA
, vol.112
, pp. 2245-2250
-
-
Fogle, K.J.1
Baik, L.S.2
Houl, J.H.3
Tran, T.T.4
Roberts, L.5
-
66
-
-
34548314069
-
Activation of EGFR and ERK by rhomboid signaling regulates the consolidation and maintenance of sleep in Drosophila. Nat
-
Foltenyi, K., R. J. Greenspan, and J. W. Newport, 2007 Activation of EGFR and ERK by rhomboid signaling regulates the consolidation and maintenance of sleep in Drosophila. Nat. Neurosci. 10: 1160-1167
-
(2007)
Neurosci
, vol.10
, pp. 1160-1167
-
-
Foltenyi, K.1
Greenspan, R.J.2
Newport, J.W.3
-
67
-
-
85027929502
-
Sleep, clocks, and synaptic plasticity
-
Frank, M. G., and R. Cantera, 2014 Sleep, clocks, and synaptic plasticity. Trends Neurosci. 37: 491-501
-
(2014)
Trends Neurosci
, vol.37
, pp. 491-501
-
-
Frank, M.G.1
Cantera, R.2
-
68
-
-
33749016793
-
Waking experience affects sleep need in Drosophila
-
Ganguly-Fitzgerald, I., J. Donlea, and P. J. Shaw, 2006 Waking experience affects sleep need in Drosophila. Science 313: 1775-1781
-
(2006)
Science
, vol.313
, pp. 1775-1781
-
-
Ganguly-Fitzgerald, I.1
Donlea, J.2
Shaw, P.J.3
-
69
-
-
84884697635
-
Cooperative interaction between phosphorylation sites on PERIOD maintains circadian period in Drosophila
-
Garbe, D. S., Y. Fang, X. Zheng, M. Sowcik, R. Anjum et al., 2013 Cooperative interaction between phosphorylation sites on PERIOD maintains circadian period in Drosophila. PLoS Genet. 9: e1003749
-
(2013)
Plos Genet
, pp. 9
-
-
Garbe, D.S.1
Fang, Y.2
Zheng, X.3
Sowcik, M.4
Anjum, R.5
-
70
-
-
84982056740
-
Context-specific comparison of sleep acquisition systems in Drosophila. Biol
-
Garbe, D. S., W. L. Bollinger, A. Vigderman, P. Masek, J. Gertowski et al., 2015 Context-specific comparison of sleep acquisition systems in Drosophila. Biol. Open 4: 1558-1568
-
(2015)
Open
, vol.4
, pp. 1558-1568
-
-
Garbe, D.S.1
Bollinger, W.L.2
Vigderman, A.3
Masek, P.4
Gertowski, J.5
-
71
-
-
0028882226
-
Isolation of timeless by PER protein interaction: Defective interaction between timeless protein and long-period mutant PERL
-
Gekakis, N., L. Saez, A.-M. Delahaya-Brown, M. P. Myers, A. Sehgal et al., 1995 Isolation of timeless by PER protein interaction: defective interaction between timeless protein and long-period mutant PERL. Science 370: 811-815
-
(1995)
Science
, vol.370
, pp. 811-815
-
-
Gekakis, N.1
Saez, L.2
Delahaya-Brown, A.-M.3
Myers, M.P.4
Sehgal, A.5
-
72
-
-
0033967217
-
Transplanted Drosophila excretory tubules maintain circadian clock cycling out of phase with the host
-
Giebultowicz, J. M., R. Stanewsky, J. C. Hall, and D. M. Hege, 2000 Transplanted Drosophila excretory tubules maintain circadian clock cycling out of phase with the host. Curr. Biol. 10: 107-110
-
(2000)
Curr. Biol
, vol.10
, pp. 107-110
-
-
Giebultowicz, J.M.1
Stanewsky, R.2
Hall, J.C.3
Hege, D.M.4
-
73
-
-
84872103050
-
Video tracking and analysis of sleep in Drosophila melanogaster. Nat
-
Gilestro, G. F., 2012 Video tracking and analysis of sleep in Drosophila melanogaster. Nat. Protoc. 7: 995-1007
-
(2012)
Protoc
, vol.7
, pp. 995-1007
-
-
Gilestro, G.F.1
-
74
-
-
64249122538
-
Widespread changes in synaptic markers as a function of sleep and wakefulness in Drosophila
-
Gilestro, G. F., G. Tononi, and C. Cirelli, 2009 Widespread changes in synaptic markers as a function of sleep and wakefulness in Drosophila. Science 324: 109-112
-
(2009)
Science
, vol.324
, pp. 109-112
-
-
Gilestro, G.F.1
Tononi, G.2
Cirelli, C.3
-
75
-
-
23244444804
-
Temperature synchronization of the Drosophila circadian clock
-
Glaser, F. T., and R. Stanewsky, 2005 Temperature synchronization of the Drosophila circadian clock. Curr. Biol. 15: 1352-1363
-
(2005)
Curr. Biol
, vol.15
, pp. 1352-1363
-
-
Glaser, F.T.1
Stanewsky, R.2
-
76
-
-
0037461716
-
VRILLE feeds back to control circadian transcription of clock in the Drosophila circadian oscillator
-
Glossop, N. R. J., J. H. Houl, H. Zheng, F. S. Ng, S. M. Dudek et al., 2003 VRILLE feeds back to control circadian transcription of clock in the Drosophila circadian oscillator. Neuron 37: 249-261
-
(2003)
Neuron
, vol.37
, pp. 249-261
-
-
Glossop, N.R.J.1
Houl, J.H.2
Zheng, H.3
Ng, F.S.4
Dudek, S.M.5
-
77
-
-
84937231855
-
Drosophila circadian rhythms in seminatural environments: Summer afternoon component is not an artifact and requires TrpA1 channels
-
Green, E. W., E. K. O’Callaghan, C. N. Hansen, S. Bastianello, S. Bhutani et al., 2015 Drosophila circadian rhythms in seminatural environments: summer afternoon component is not an artifact and requires TrpA1 channels. Proc. Natl. Acad. Sci. USA 112: 8702-8707
-
(2015)
Proc. Natl. Acad. Sci. USA
, vol.112
, pp. 8702-8707
-
-
Green, E.W.1
O’Callaghan, E.K.2
Hansen, C.N.3
Bastianello, S.4
Bhutani, S.5
-
78
-
-
0037079034
-
The F-box protein Slimb controls the levels of clock proteins period and timeless
-
Grima, B., A. Lamouroux, E. Chélot, C. Papin, B. Limbourg-Bouchon et al., 2002 The F-box protein Slimb controls the levels of clock proteins period and timeless. Nature 420: 178-182
-
(2002)
Nature
, vol.420
, pp. 178-182
-
-
Grima, B.1
Lamouroux, A.2
Chélot, E.3
Papin, C.4
Limbourg-Bouchon, B.5
-
79
-
-
7244252844
-
Morning and evening peaks of activity rely on different clock neurons of the Drosophila brain
-
Grima, B., E. Chélot, R. Xia, and F. Rouyer, 2004 Morning and evening peaks of activity rely on different clock neurons of the Drosophila brain. Nature 431: 869-873
-
(2004)
Nature
, vol.431
, pp. 869-873
-
-
Grima, B.1
Chélot, E.2
Xia, R.3
Rouyer, F.4
-
80
-
-
84865791254
-
CULLIN-3 controls TIMELESS oscillations in the Drosophila circadian clock
-
Grima, B., A. Dognon, A. Lamouroux, E. Chélot, and F. Rouyer, 2012 CULLIN-3 controls TIMELESS oscillations in the Drosophila circadian clock. PLoS Biol. 10: e1001367
-
(2012)
Plos Biol
, pp. 10
-
-
Grima, B.1
Dognon, A.2
Lamouroux, A.3
Chélot, E.4
Rouyer, F.5
-
81
-
-
43049089758
-
Melanopsin cells are the principal conduits for rod-cone input to non-image-forming vision
-
Güler, A. D., J. L. Ecker, G. S. Lall, S. Haq, C. M. Altimus et al., 2008 Melanopsin cells are the principal conduits for rod-cone input to non-image-forming vision. Nature 453: 102-105
-
(2008)
Nature
, vol.453
, pp. 102-105
-
-
Güler, A.D.1
Ecker, J.L.2
Lall, G.S.3
Haq, S.4
Altimus, C.M.5
-
82
-
-
84904412388
-
PDF neuron firing phase-shifts key circadian activity neurons in Drosophila
-
Guo, F., I. Cerullo, X. Chen, and M. Rosbash, 2014 PDF neuron firing phase-shifts key circadian activity neurons in Drosophila. eLife 3: e02780
-
(2014)
Elife
, vol.3
-
-
Guo, F.1
Cerullo, I.2
Chen, X.3
Rosbash, M.4
-
83
-
-
84983418807
-
Circadian neuron feedback controls the Drosophila sleep-activity profile
-
Guo, F., J. Yu, H. J. Jung, K. C. Abruzzi, W. Luo et al., 2016 Circadian neuron feedback controls the Drosophila sleep-activity profile. Nature 536: 292-297
-
(2016)
Nature
, vol.536
, pp. 292-297
-
-
Guo, F.1
Yu, J.2
Jung, H.J.3
Abruzzi, K.C.4
Luo, W.5
-
84
-
-
84907785708
-
Functional neuroanatomy of Drosophila olfactory memory formation. Learn
-
Guven-Ozkan, T., and R. L. Davis, 2014 Functional neuroanatomy of Drosophila olfactory memory formation. Learn. Mem. 21: 519-526
-
(2014)
Mem
, vol.21
, pp. 519-526
-
-
Guven-Ozkan, T.1
Davis, R.L.2
-
85
-
-
47049101429
-
An internal thermal sensor controlling temperature preference in Drosophila
-
Hamada, F. N., M. Rosenzweig, K. Kang, S. R. Pulver, A. Ghezzi et al., 2008 An internal thermal sensor controlling temperature preference in Drosophila. Nature 454: 217-220
-
(2008)
Nature
, vol.454
, pp. 217-220
-
-
Hamada, F.N.1
Rosenzweig, M.2
Kang, K.3
Pulver, S.R.4
Ghezzi, A.5
-
86
-
-
0018417882
-
Transplantation of a circadian pacemaker in Drosophila
-
Handler, A. M., and R. J. Konopka, 1979 Transplantation of a circadian pacemaker in Drosophila. Nature 279: 236-238
-
(1979)
Nature
, vol.279
, pp. 236-238
-
-
Handler, A.M.1
Konopka, R.J.2
-
87
-
-
0025044560
-
Feedback of the Drosophila period gene product on circadian cycling of its messenger RNA levels
-
Hardin, P. E., J. C. Hall, and M. Rosbash, 1990 Feedback of the Drosophila period gene product on circadian cycling of its messenger RNA levels. Nature 343: 536-540
-
(1990)
Nature
, vol.343
, pp. 536-540
-
-
Hardin, P.E.1
Hall, J.C.2
Rosbash, M.3
-
88
-
-
84922042530
-
A single pair of neurons links sleep to memory consolidation in Drosophila melanogaster
-
Haynes, P. R., B. L. Christmann, and L. C. Griffith, 2015 A single pair of neurons links sleep to memory consolidation in Drosophila melanogaster. eLife 4: e03868
-
(2015)
ELife 4: E03868
-
-
Haynes, P.R.1
Christmann, B.L.2
Griffith, L.C.3
-
89
-
-
0028873144
-
The period clock gene is expressed in central nervous system neurons which also produce a neuropeptide that reveals the projections of circadian pacemaker cells within the brain of Drosophila melanogaster
-
Helfrich-Förster, C., 1995 The period clock gene is expressed in central nervous system neurons which also produce a neuropeptide that reveals the projections of circadian pacemaker cells within the brain of Drosophila melanogaster. Proc. Natl. Acad. Sci. USA 92: 612-616
-
(1995)
Proc. Natl. Acad. Sci. USA
, vol.92
, pp. 612-616
-
-
Helfrich-Förster, C.1
-
90
-
-
0035025621
-
The circadian clock of fruit flies is blind after elimination of all known photoreceptors
-
Helfrich-Förster, C., C. Winter, A. Hofbauer, J. C. Hall, and R. Stanewsky, 2001 The circadian clock of fruit flies is blind after elimination of all known photoreceptors. Neuron 30: 249-261
-
(2001)
Neuron
, vol.30
, pp. 249-261
-
-
Helfrich-Förster, C.1
Winter, C.2
Hofbauer, A.3
Hall, J.C.4
Stanewsky, R.5
-
91
-
-
0034106011
-
Rest in Drosophila is a sleep-like state
-
Hendricks, J. C., S. M. Finn, K. A. Panckeri, J. Chavkin, J. A. Williams et al., 2000 Rest in Drosophila is a sleep-like state. Neuron 25: 129-138
-
(2000)
Neuron
, vol.25
, pp. 129-138
-
-
Hendricks, J.C.1
Finn, S.M.2
Panckeri, K.A.3
Chavkin, J.4
Williams, J.A.5
-
92
-
-
0037587553
-
Gender dimorphism in the role of cycle (BMAL1) in rest, rest regulation, and longevity in Drosophila melanogaster
-
Hendricks, J. C., S. Lu, K. Kume, J. C. P. Yin, Z. Yang et al., 2003 Gender dimorphism in the role of cycle (BMAL1) in rest, rest regulation, and longevity in Drosophila melanogaster. J. Biol. Rhythms 18: 12-25
-
(2003)
J. Biol. Rhythms
, vol.18
, pp. 12-25
-
-
Hendricks, J.C.1
Lu, S.2
Kume, K.3
Yin, J.C.P.4
Yang, Z.5
-
93
-
-
84908138399
-
Cellular stress induces a protective sleep-like state in C. Elegans
-
Hill, A. J., R. Mansfield, J. M. N. G. Lopez, D. M. Raizen, and C. Van Buskirk, 2014 Cellular stress induces a protective sleep-like state in C. elegans. Curr. Biol. 24: 2399-2405
-
(2014)
Curr. Biol
, vol.24
, pp. 2399-2405
-
-
Hill, A.J.1
Mansfield, R.2
Lopez, J.M.N.G.3
Raizen, D.M.4
Van Buskirk, C.5
-
94
-
-
33644605957
-
Drosophila CLOCK is constitutively expressed in circadian oscillator and non-oscillator cells
-
Houl, J. H., W. Yu, S. M. Dudek, and P. E. Hardin, 2006 Drosophila CLOCK is constitutively expressed in circadian oscillator and non-oscillator cells. J. Biol. Rhythms 21: 93-103
-
(2006)
J. Biol. Rhythms
, vol.21
, pp. 93-103
-
-
Houl, J.H.1
Yu, W.2
Dudek, S.M.3
Hardin, P.E.4
-
95
-
-
3042529390
-
Sleep homeostasis in Drosophila melanogaster
-
Huber, R., S. L. Hill, C. Holladay, M. Biesiadecki, G. Tononi et al., 2004 Sleep homeostasis in Drosophila melanogaster. Sleep 27: 628-639
-
(2004)
Sleep
, vol.27
, pp. 628-639
-
-
Huber, R.1
Hill, S.L.2
Holladay, C.3
Biesiadecki, M.4
Tononi, G.5
-
96
-
-
84861441546
-
Deep sequencing the circadian and diurnal transcriptome of Drosophila brain
-
Hughes, M. E., G. R. Grant, C. Paquin, J. Qian, and M. N. Nitabach, 2012 Deep sequencing the circadian and diurnal transcriptome of Drosophila brain. Genome Res. 22: 1266-1281
-
(2012)
Genome Res
, vol.22
, pp. 1266-1281
-
-
Hughes, M.E.1
Grant, G.R.2
Paquin, C.3
Qian, J.4
Nitabach, M.N.5
-
97
-
-
0029965130
-
Regulation of the Drosophila protein timeless suggests a mechanism for resetting the circadian clock by light
-
Hunter-Ensor, M., A. Ousley, and A. Sehgal, 1996 Regulation of the Drosophila protein timeless suggests a mechanism for resetting the circadian clock by light. Cell 84: 677-685
-
(1996)
Cell
, vol.84
, pp. 677-685
-
-
Hunter-Ensor, M.1
Ousley, A.2
Sehgal, A.3
-
98
-
-
26944502709
-
Drosophila GPCR han is a receptor for the circadian clock neuropeptide PDF
-
Hyun, S., Y. Lee, S.-T. Hong, S. Bang, D. Paik et al., 2005 Drosophila GPCR han is a receptor for the circadian clock neuropeptide PDF. Neuron 48: 267-278
-
(2005)
Neuron
, vol.48
, pp. 267-278
-
-
Hyun, S.1
Lee, Y.2
Hong, S.-T.3
Bang, S.4
Paik, D.5
-
99
-
-
77952168831
-
PDF receptor expression reveals direct interactions between circadian oscillators in Drosophila
-
Im, S. H., and P. H. Taghert, 2010 PDF receptor expression reveals direct interactions between circadian oscillators in Drosophila. J. Comp. Neurol. 518: 1925-1945
-
(2010)
J. Comp. Neurol
, vol.518
, pp. 1925-1945
-
-
Im, S.H.1
Taghert, P.H.2
-
100
-
-
79955708471
-
PDFR and CRY signaling converge in a subset of clock neurons to modulate the amplitude and phase of circadian behavior in Drosophila
-
Im, S. H., W. Li, and P. H. Taghert, 2011 PDFR and CRY signaling converge in a subset of clock neurons to modulate the amplitude and phase of circadian behavior in Drosophila. PLoS One 6: e18974
-
(2011)
Plos One
, pp. 6
-
-
Im, S.H.1
Li, W.2
Taghert, P.H.3
-
101
-
-
73949158209
-
Drosophila male sex peptide inhibits siesta sleep and promotes locomotor activity in the post-mated female.
-
Isaac, R. E., C. Li, A. E. Leedale, and A. D. Shirras, 2009 Drosophila male sex peptide inhibits siesta sleep and promotes locomotor activity in the post-mated female. Proc. Biol. Sci. 277: 65-70
-
(2009)
Proc. Biol. Sci
, vol.277
, pp. 65-70
-
-
Isaac, R.E.1
Li, C.2
Leedale, A.E.3
Shirras, A.D.4
-
102
-
-
0032483510
-
Expression of a gene cluster kaiABC as a circadian feedback process in cyanobacteria
-
Ishiura, M., S. Kutsuna, S. Aoki, H. Iwasaki, C. R. Andersson et al., 1998 Expression of a gene cluster kaiABC as a circadian feedback process in cyanobacteria. Science 281: 1519-1523
-
(1998)
Science
, vol.281
, pp. 1519-1523
-
-
Ishiura, M.1
Kutsuna, S.2
Aoki, S.3
Iwasaki, H.4
Andersson, C.R.5
-
103
-
-
84924386638
-
Drosophila TIM binds importin a1, and acts as an adapter to transport PER to the nucleus
-
Jang, A. R., K. Moravcevic, L. Saez, M. W. Young, and A. Sehgal, 2015 Drosophila TIM binds importin a1, and acts as an adapter to transport PER to the nucleus. PLoS Genet. 11: e1004974
-
(2015)
Plos Genet
, pp. 11
-
-
Jang, A.R.1
Moravcevic, K.2
Saez, L.3
Young, M.W.4
Sehgal, A.5
-
104
-
-
2642522168
-
Pattern of distribution and cycling of SLOB, Slowpoke channel binding protein
-
Jaramillo, A. M., X. Zheng, Y. Zhou, D. A. Amado, A. Sheldon et al., 2004 Pattern of distribution and cycling of SLOB, Slowpoke channel binding protein, in Drosophila. BMC Neurosci. 5: 3
-
(2004)
Drosophila. BMC Neurosci
, vol.5
, pp. 3
-
-
Jaramillo, A.M.1
Zheng, X.2
Zhou, Y.3
Amado, D.A.4
Sheldon, A.5
-
105
-
-
67651185179
-
Peptidergic clock neurons in Drosophila: Ion transport peptide and short neuropeptide F in subsets of dorsal and ventral lateral neurons
-
Johard, H. A. D., T. Yoishii, H. Dircksen, P. Cusumano, F. Rouyer et al., 2009 Peptidergic clock neurons in Drosophila: ion transport peptide and short neuropeptide F in subsets of dorsal and ventral lateral neurons. J. Comp. Neurol. 516: 59-73
-
(2009)
J. Comp. Neurol
, vol.516
, pp. 59-73
-
-
Johard, H.A.D.1
Yoishii, T.2
Dircksen, H.3
Cusumano, P.4
Rouyer, F.5
-
106
-
-
33744546197
-
Sleep in Drosophila is regulated by adult mushroom bodies
-
Joiner, W. J., A. Crocker, B. H. White, and A. Sehgal, 2006 Sleep in Drosophila is regulated by adult mushroom bodies. Nature 441: 757-760
-
(2006)
Nature
, vol.441
, pp. 757-760
-
-
Joiner, W.J.1
Crocker, A.2
White, B.H.3
Sehgal, A.4
-
107
-
-
84873351364
-
Glucose sensor O-GlcNAcylation coordinates with phosphorylation to regulate circadian clock
-
Kaasik, K., S. Kivimäe, J. J. Allen, R. J. Chalkley, Y. Huang et al., 2013 Glucose sensor O-GlcNAcylation coordinates with phosphorylation to regulate circadian clock. Cell Metab. 17: 291-302
-
(2013)
Cell Metab
, vol.17
, pp. 291-302
-
-
Kaasik, K.1
Kivimäe, S.2
Allen, J.J.3
Chalkley, R.J.4
Huang, Y.5
-
108
-
-
34347382964
-
Clockwork Orange is a transcriptional repressor and a new Drosophila circadian pacemaker component
-
Kadener, S., D. Stoleru, M. McDonald, P. Nawathean, and M. Rosbash, 2007 Clockwork Orange is a transcriptional repressor and a new Drosophila circadian pacemaker component. Genes Dev. 21: 1675-1686
-
(2007)
Genes Dev
, vol.21
, pp. 1675-1686
-
-
Kadener, S.1
Stoleru, D.2
McDonald, M.3
Nawathean, P.4
Rosbash, M.5
-
109
-
-
84867404270
-
Circadian rhythm of temperature preference and its neural control in Drosophila
-
Kaneko, H., L. M. Head, J. Ling, X. Tang, Y. Liu et al., 2012 Circadian rhythm of temperature preference and its neural control in Drosophila. Curr. Biol. 22: 1851-1857
-
(2012)
Curr. Biol
, vol.22
, pp. 1851-1857
-
-
Kaneko, H.1
Head, L.M.2
Ling, J.3
Tang, X.4
Liu, Y.5
-
110
-
-
84899477982
-
A critical period of sleep for development of courtship circuitry and behavior in Drosophila
-
Kayser, M. S., Z. Yue, and A. Sehgal, 2014 A critical period of sleep for development of courtship circuitry and behavior in Drosophila. Science 344: 269-274
-
(2014)
Science
, vol.344
, pp. 269-274
-
-
Kayser, M.S.1
Yue, Z.2
Sehgal, A.3
-
111
-
-
84938367399
-
-
Kayser, M. S., B. Mainwaring, Z. Yue, and A. Sehgal, 2015 Sleep deprivation suppresses aggression in Drosophila. eLife 4: e07643
-
(2015)
Sleep Deprivation Suppresses Aggression in Drosophila. Elife
, vol.4
-
-
Kayser, M.S.1
Mainwaring, B.2
Yue, Z.3
Sehgal, A.4
-
112
-
-
36949004698
-
Metaanalysis of Drosophila circadian microarray studies identifies a novel set of rhythmically expressed genes.
-
Keegan, K. P., S. Pradhan, J.-P. Wang, and R. Allada, 2007 Metaanalysis of Drosophila circadian microarray studies identifies a novel set of rhythmically expressed genes. PLoS Comput. Biol. 3: e208-e224
-
(2007)
Plos Comput. Biol
, vol.3
, pp. e208-e224
-
-
Keegan, K.P.1
Pradhan, S.2
Wang, J.-P.3
Allada, R.4
-
113
-
-
77955420495
-
Clock and cycle limit starvation-induced sleep loss in Drosophila
-
Keene, A. C., E. R. Duboué, D. M. McDonald, M. Dus, G. S. B. Suh et al., 2010 Clock and cycle limit starvation-induced sleep loss in Drosophila. Curr. Biol. 20: 1209-1215
-
(2010)
Curr. Biol
, vol.20
, pp. 1209-1215
-
-
Keene, A.C.1
Duboué, E.R.2
McDonald, D.M.3
Dus, M.4
Suh, G.S.B.5
-
114
-
-
33646591926
-
Balance between DBT/CKIe kinase and protein phosphatase activities regulate phosphorylation and stability of Drosophila CLOCK protein
-
Kim, E. Y., and I. Edery, 2006 Balance between DBT/CKIe kinase and protein phosphatase activities regulate phosphorylation and stability of Drosophila CLOCK protein. Proc. Natl. Acad. Sci. USA 103: 6178-6183
-
(2006)
Proc. Natl. Acad. Sci. USA
, vol.103
, pp. 6178-6183
-
-
Kim, E.Y.1
Edery, I.2
-
115
-
-
34347363069
-
A DOUBLETIME kinase binding domain on the Drosophila PERIOD protein is essential for its hyperphosphorylation, transcriptional repression, and circadian clock function.
-
Kim, E. Y., H. W. Ko, W. Yu, P. E. Hardin, and I. Edery, 2007 A DOUBLETIME kinase binding domain on the Drosophila PERIOD protein is essential for its hyperphosphorylation, transcriptional repression, and circadian clock function. Mol. Cell. Biol. 27: 5014-5028
-
(2007)
Mol. Cell. Biol
, vol.27
, pp. 5014-5028
-
-
Kim, E.Y.1
Ko, H.W.2
Yu, W.3
Hardin, P.E.4
Edery, I.5
-
116
-
-
84863230299
-
A role for O-GlcNAcylation in setting circadian clock speed
-
Kim, E. Y., E. H. Jeong, S. Park, H. J. Jeong, I. Edery et al., 2012 A role for O-GlcNAcylation in setting circadian clock speed. Genes Dev. 26: 490-502
-
(2012)
Genes Dev
, vol.26
, pp. 490-502
-
-
Kim, E.Y.1
Jeong, E.H.2
Park, S.3
Jeong, H.J.4
Edery, I.5
-
117
-
-
0035072239
-
Conditional modification of behavior in Drosophila by targeted expression of a temperature-sensitive shibire allele in defined neurons
-
Kitamoto, T., 2001 Conditional modification of behavior in Drosophila by targeted expression of a temperature-sensitive shibire allele in defined neurons. J. Neurobiol. 47: 81-92
-
(2001)
J. Neurobiol
, vol.47
, pp. 81-92
-
-
Kitamoto, T.1
-
118
-
-
84895524488
-
Independent optical excitation of distinct neural populations. Nat
-
Klapoetke, N. C., Y. Murata, S. S. Kim, S. R. Pulver, A. Birdsey-Benson et al., 2014 Independent optical excitation of distinct neural populations. Nat. Methods 11: 338-346
-
(2014)
Methods
, vol.11
, pp. 338-346
-
-
Klapoetke, N.C.1
Murata, Y.2
Kim, S.S.3
Pulver, S.R.4
Birdsey-Benson, A.5
-
119
-
-
1242291763
-
Novel features of cryptochrome-mediated photoreception in the brain circadian clock of Drosophila
-
Klarsfeld, A., S. Malpel, C. Michard-Vanhée, M. Picot, E. Chélot et al., 2004 Novel features of cryptochrome-mediated photoreception in the brain circadian clock of Drosophila. J. Neurosci. 24: 1468-1477
-
(2004)
J. Neurosci
, vol.24
, pp. 1468-1477
-
-
Klarsfeld, A.1
Malpel, S.2
Michard-Vanhée, C.3
Picot, M.4
Chélot, E.5
-
120
-
-
84964977887
-
Functional PDF signaling in the Drosophila circadian neural circuit is gated by Ral A-Dependent modulation
-
Klose, M., L. B. Duvall, W. Li, X. Liang, C. Ren et al., 2016 Functional PDF signaling in the Drosophila circadian neural circuit is gated by Ral A-Dependent modulation. Neuron 90: 781-794
-
(2016)
Neuron
, vol.90
, pp. 781-794
-
-
Klose, M.1
Duvall, L.B.2
Li, W.3
Liang, X.4
Ren, C.5
-
121
-
-
0032504041
-
The Drosophila clock gene double-time encodes a protein closely related to human casein kinase Ie
-
Kloss, B., J. L. Price, L. Saez, J. Blau, A. Rothenfluh et al., 1998 The Drosophila clock gene double-time encodes a protein closely related to human casein kinase Ie. Cell 94: 97-107
-
(1998)
Cell
, vol.94
, pp. 97-107
-
-
Kloss, B.1
Price, J.L.2
Saez, L.3
Blau, J.4
Rothenfluh, A.5
-
122
-
-
0037069671
-
Role for Slimb in the degradation of Drosophila period protein phosphorylated by doubletime
-
Ko, H. W., J. Jiang, and I. Edery, 2002 Role for Slimb in the degradation of Drosophila period protein phosphorylated by doubletime. Nature 420: 673-678
-
(2002)
Nature
, vol.420
, pp. 673-678
-
-
Ko, H.W.1
Jiang, J.2
Edery, I.3
-
123
-
-
77957195902
-
A hierarchical phosphorylation cascade that regulates the timing of PERIOD nuclear entry reveals novel roles for proline-directed kinases and GSK-3/SGG in circadian clocks
-
Ko, H. W., E. Y. Kim, J. Chiu, J. T. Vanselow, A. Kramer et al., 2010 A hierarchical phosphorylation cascade that regulates the timing of PERIOD nuclear entry reveals novel roles for proline-directed kinases and GSK-3/SGG in circadian clocks. J. Neurosci. 30: 12664-12675
-
(2010)
J. Neurosci
, vol.30
, pp. 12664-12675
-
-
Ko, H.W.1
Kim, E.Y.2
Chiu, J.3
Vanselow, J.T.4
Kramer, A.5
-
124
-
-
33748802246
-
A Drosophila model for age-associated changes in sleep: Wake cycles
-
Koh, K., J. M. Evans, J. C. Hendricks, and A. Sehgal, 2006a A Drosophila model for age-associated changes in sleep: wake cycles. Proc. Natl. Acad. Sci. USA 103: 13843-13847
-
(2006)
Proc. Natl. Acad. Sci. USA
, vol.103
, pp. 13843-13847
-
-
Koh, K.1
Evans, J.M.2
Hendricks, J.C.3
Sehgal, A.4
-
125
-
-
33745503975
-
JETLAG resets the Drosophila circadian clock by promoting light-induced degradation of TIMELESS
-
Koh, K., X. Zheng, and A. Sehgal, 2006b JETLAG resets the Drosophila circadian clock by promoting light-induced degradation of TIMELESS. Science 312: 1809-1812
-
(2006)
Science
, vol.312
, pp. 1809-1812
-
-
Koh, K.1
Zheng, X.2
Sehgal, A.3
-
126
-
-
47749139631
-
Identification of SLEEPLESS, a sleep-promoting factor
-
Koh, K., W. J. Joiner, M. N. Wu, Z. Yue, C. J. Smith et al., 2008 Identification of SLEEPLESS, a sleep-promoting factor. Science 321: 372-376
-
(2008)
Science
, vol.321
, pp. 372-376
-
-
Koh, K.1
Joiner, W.J.2
Wu, M.N.3
Yue, Z.4
Smith, C.J.5
-
127
-
-
0015119210
-
Clock mutants of Drosophila melanogaster
-
Konopka, R. J., and S. Benzer, 1971 Clock mutants of Drosophila melanogaster. Proc. Natl. Acad. Sci. USA 68: 2112-2116
-
(1971)
Proc. Natl. Acad. Sci. USA
, vol.68
, pp. 2112-2116
-
-
Konopka, R.J.1
Benzer, S.2
-
128
-
-
84880033511
-
Pigment-dispersing factor modulates pheromone production in clock cells that influence mating in Drosophila
-
Krupp, J. J., J.-C. Billeter, A. Wong, C. Choi, M. N. Nitabach et al., 2013 Pigment-dispersing factor modulates pheromone production in clock cells that influence mating in Drosophila. Neuron 79: 54-68
-
(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
-
129
-
-
77955829612
-
Surprising gene expression patterns within and between PDF-containing circadian neurons in Drosophila
-
Kula-Eversole, E., E. Nagoshi, Y. Shang, J. Rodriguez, and R. Allada, 2010 Surprising gene expression patterns within and between PDF-containing circadian neurons in Drosophila. Proc. Natl. Acad. Sci. USA 107: 13497-13502
-
(2010)
Proc. Natl. Acad. Sci. USA
, vol.107
, pp. 13497-13502
-
-
Kula-Eversole, E.1
Nagoshi, E.2
Shang, Y.3
Rodriguez, J.4
Allada, R.5
-
130
-
-
84922623840
-
An ecdysone-responsive nuclear receptor regulates circadian rhythms in Drosophila.
-
Kumar, S., D. Chen, C. Jang, A. Nall, X. Zheng et al., 2014 An ecdysone-responsive nuclear receptor regulates circadian rhythms in Drosophila. Nat. Commun. 5: 5697
-
(2014)
Nat. Commun
, vol.5
, pp. 5697
-
-
Kumar, S.1
Chen, D.2
Jang, C.3
Nall, A.4
Zheng, X.5
-
131
-
-
23744439861
-
Dopamine is a regulator of arousal in the fruit fly
-
Kume, K., S. Kume, S. K. Park, J. Hirsh, and F. R. Jackson, 2005 Dopamine is a regulator of arousal in the fruit fly. J. Neurosci. 25: 7377-7384
-
(2005)
J. Neurosci
, vol.25
, pp. 7377-7384
-
-
Kume, K.1
Kume, S.2
Park, S.K.3
Hirsh, J.4
Jackson, F.R.5
-
132
-
-
84923263404
-
Calcitonin gene-related peptide neurons mediate sleepspecific circadian output in Drosophila
-
Kunst, M., M. E. Hughes, D. Raccuglia, M. Felix, M. Li et al., 2014 Calcitonin gene-related peptide neurons mediate sleepspecific circadian output in Drosophila. Curr. Biol. 24: 2652-2664
-
(2014)
Curr. Biol
, vol.24
, pp. 2652-2664
-
-
Kunst, M.1
Hughes, M.E.2
Raccuglia, D.3
Felix, M.4
Li, M.5
-
133
-
-
84899688951
-
Acute sleep deprivation enhances post-infection sleep and promotes survival during bacterial infection in Drosophila
-
Kuo, T.-H., and J. A. Williams, 2014 Acute sleep deprivation enhances post-infection sleep and promotes survival during bacterial infection in Drosophila. Sleep 37: 859-869
-
(2014)
Sleep
, vol.37
, pp. 859-869
-
-
Kuo, T.-H.1
Williams, J.A.2
-
134
-
-
77649170209
-
Sleep triggered by an immune response in Drosophila is regulated by the circadian clock and requires the NFkB Relish
-
Kuo, T.-H., D. H. Pike, Z. Beizaeipour, and J. A. Williams, 2010 Sleep triggered by an immune response in Drosophila is regulated by the circadian clock and requires the NFkB Relish. BMC Neurosci. 11: 17
-
(2010)
BMC Neurosci
, vol.11
, pp. 17
-
-
Kuo, T.-H.1
Pike, D.H.2
Beizaeipour, Z.3
Williams, J.A.4
-
135
-
-
84899979838
-
Morning and evening oscillators cooperate to reset circadian behavior in response to light input
-
Lamba, P., D. Bilodeau-Wentworth, P. Emery, and Y. Zhang, 2014 Morning and evening oscillators cooperate to reset circadian behavior in response to light input. Cell Rep. 7: 601-608
-
(2014)
Cell Rep
, vol.7
, pp. 601-608
-
-
Lamba, P.1
Bilodeau-Wentworth, D.2
Emery, P.3
Zhang, Y.4
-
136
-
-
26944456961
-
A G protein-coupled receptor, groom-of-PDF, is required for PDF neuron action in circadian behavior
-
Lear, B. C., C. E. Merrill, J.-M. Lin, A. Schroeder, L. Zhang et al., 2005 A G protein-coupled receptor, groom-of-PDF, is required for PDF neuron action in circadian behavior. Neuron 48: 221-227
-
(2005)
Neuron
, vol.48
, pp. 221-227
-
-
Lear, B.C.1
Merrill, C.E.2
Lin, J.-M.3
Schroeder, A.4
Zhang, L.5
-
137
-
-
0032778040
-
PER and TIM inhibit the DNA binding activity of a Drosophila CLOCK-CYC/dBMAL1 heterodimer without disrupting formation of the heterodimer: A basis for circadian transcription.
-
Lee, C., K. Bae, and I. Edery, 1999 PER and TIM inhibit the DNA binding activity of a Drosophila CLOCK-CYC/dBMAL1 heterodimer without disrupting formation of the heterodimer: a basis for circadian transcription. Mol. Cell. Biol. 19: 5316-5325
-
(1999)
Mol. Cell. Biol
, vol.19
, pp. 5316-5325
-
-
Lee, C.1
Bae, K.2
Edery, I.3
-
138
-
-
84930763556
-
FMRFamide signaling promotes stress-induced sleep in Drosophila.
-
Lenz, O., J. Xiong, M. D. Nelson, D. M. Raizen, and J. A. Williams, 2015 FMRFamide signaling promotes stress-induced sleep in Drosophila. Brain Behav. Immun. 47: 141-148
-
(2015)
Brain Behav. Immun
, vol.47
, pp. 141-148
-
-
Lenz, O.1
Xiong, J.2
Nelson, M.D.3
Raizen, D.M.4
Williams, J.A.5
-
139
-
-
84897535524
-
PDF and cAMP enhance PER stability in Drosophila clock neurons
-
Li, Y., F. Guo, J. Shen, and M. Rosbash, 2014 PDF and cAMP enhance PER stability in Drosophila clock neurons. Proc. Natl. Acad. Sci. USA 111: E1284-E1290
-
(2014)
Proc. Natl. Acad. Sci. USA
, vol.111
, pp. E1284-E1290
-
-
Li, Y.1
Guo, F.2
Shen, J.3
Rosbash, M.4
-
140
-
-
84959440542
-
Synchronous Drosophila circadian pacemakers display nonsynchronous Ca2+ rhythms in vivo
-
Liang, X., T. E. Holy, and P. H. Taghert, 2016 Synchronous Drosophila circadian pacemakers display nonsynchronous Ca2+ rhythms in vivo. Science 351: 976-981
-
(2016)
Science
, vol.351
, pp. 976-981
-
-
Liang, X.1
Holy, T.E.2
Taghert, P.H.3
-
141
-
-
84877741071
-
ATAXIN-2 activates PERIOD translation to sustain circadian rhythms in Drosophila
-
Lim, C., and R. Allada, 2013 ATAXIN-2 activates PERIOD translation to sustain circadian rhythms in Drosophila. Science 340: 875-879
-
(2013)
Science
, vol.340
, pp. 875-879
-
-
Lim, C.1
Allada, R.2
-
142
-
-
34250215964
-
S. Pradhan et al., 2007 clockwork orange encodes a transcriptional repressor important for circadian-clock amplitude in Drosophila.
-
Lim, C., B. Y. Chung, J. L. Pitman, J. J. McGill, S. Pradhan et al., 2007 clockwork orange encodes a transcriptional repressor important for circadian-clock amplitude in Drosophila. Curr. Biol. 17: 1082-1089
-
Curr. Biol
, vol.17
, pp. 1082-1089
-
-
Lim, C.1
Chung, B.Y.2
Pitman, J.L.3
McGill, J.J.4
-
143
-
-
79951779669
-
The novel gene twenty-four defines a critical translational step in the Drosophila clock
-
Lim, C., J. Lee, C. Choi, V. L. Kilman, J. Kim et al., 2011 The novel gene twenty-four defines a critical translational step in the Drosophila clock. Nature 470: 399-403
-
(2011)
Nature
, vol.470
, pp. 399-403
-
-
Lim, C.1
Lee, J.2
Choi, C.3
Kilman, V.L.4
Kim, J.5
-
144
-
-
4544363312
-
The neuropeptide pigment-dispersing factor coordinates pacemaker interactions in the Drosophila circadian system
-
Lin, Y., G. D. Stormo, and P. H. Taghert, 2004 The neuropeptide pigment-dispersing factor coordinates pacemaker interactions in the Drosophila circadian system. J. Neurosci. 24: 7951-7957
-
(2004)
J. Neurosci
, vol.24
, pp. 7951-7957
-
-
Lin, Y.1
Stormo, G.D.2
Taghert, P.H.3
-
145
-
-
30644471172
-
In vivo circadian function of casein kinase 2 phosphorylation sites in Drosophila PERIOD
-
Lin, J.-M., A. Schroeder, and R. Allada, 2005 In vivo circadian function of casein kinase 2 phosphorylation sites in Drosophila PERIOD. J. Neurosci. 25: 11175-11183
-
(2005)
J. Neurosci
, vol.25
, pp. 11175-11183
-
-
Lin, J.-M.1
Schroeder, A.2
Allada, R.3
-
146
-
-
0037180767
-
A role for casein kinase 2a in the Drosophila circadian clock
-
Lin, J. M., V. L. Kilman, K. Keegan, B. Paddock, M. Emery-Le et al., 2002 A role for casein kinase 2a in the Drosophila circadian clock. Nature 420: 816-820
-
(2002)
Nature
, vol.420
, pp. 816-820
-
-
Lin, J.M.1
Kilman, V.L.2
Keegan, K.3
Paddock, B.4
Emery-Le, M.5
-
147
-
-
0037047054
-
Influence of the period-dependent circadian clock on diurnal, circadian, and aperiodic gene expression in Drosophila melanogaster
-
Lin, Y., M. Han, B. Shimada, L. Wang, T. M. Gibler et al., 2002 Influence of the period-dependent circadian clock on diurnal, circadian, and aperiodic gene expression in Drosophila melanogaster. Proc. Natl. Acad. Sci. USA 99: 9562-9567
-
(2002)
Proc. Natl. Acad. Sci. USA
, vol.99
, pp. 9562-9567
-
-
Lin, Y.1
Han, M.2
Shimada, B.3
Wang, L.4
Gibler, T.M.5
-
148
-
-
84870026497
-
KAYAK-alpha modulates circadian transcriptional feedback loops in Drosophila pacemaker neurons
-
Ling, J., R. Dubruille, and P. Emery, 2012 KAYAK-alpha modulates circadian transcriptional feedback loops in Drosophila pacemaker neurons. J. Neurosci. 32: 16959-16970
-
(2012)
J. Neurosci
, vol.32
, pp. 16959-16970
-
-
Ling, J.1
Dubruille, R.2
Emery, P.3
-
149
-
-
85020697494
-
Sleep in populations of Drosophila melanogaster
-
pii: ENEURO.0071-15.2015
-
Liu C., P. R. Haynes, N. C. Donelson, S. Aharon, and L. C. Griffith, 2015 Sleep in populations of Drosophila melanogaster. eNeuro 2: pii: ENEURO.0071-15.2015
-
(2015)
Eneuro
, vol.2
-
-
Liu, C.1
Haynes, P.R.2
Donelson, N.C.3
Aharon, S.4
Griffith, L.C.5
-
150
-
-
84869495917
-
Two dopaminergic neurons signal to the dorsal fanshaped body to promote wakefulness in Drosophila
-
Liu, Q., S. Liu, L. Kodama, M. R. Driscoll, and M. N. Wu, 2012 Two dopaminergic neurons signal to the dorsal fanshaped body to promote wakefulness in Drosophila. Curr. Biol. 22: 2114-2123
-
(2012)
Curr. Biol
, vol.22
, pp. 2114-2123
-
-
Liu, Q.1
Liu, S.2
Kodama, L.3
Driscoll, M.R.4
Wu, M.N.5
-
151
-
-
84897954289
-
WIDE AWAKE mediates the circadian timing of sleep onset
-
Liu, S., A. Lamaze, Q. Liu, M. Tabuchi, Y. Yang et al., 2014 WIDE AWAKE mediates the circadian timing of sleep onset. Neuron 82: 151-166
-
(2014)
Neuron
, vol.82
, pp. 151-166
-
-
Liu, S.1
Lamaze, A.2
Liu, Q.3
Tabuchi, M.4
Yang, Y.5
-
152
-
-
84971508902
-
Sleep drive is encoded by neural plastic changes in a dedicated circuit
-
Liu, S., Q. Liu, M. Tabuchi, and M. N. Wu, 2016 Sleep drive is encoded by neural plastic changes in a dedicated circuit. Cell 165: 1347-1360
-
(2016)
Cell
, vol.165
, pp. 1347-1360
-
-
Liu, S.1
Liu, Q.2
Tabuchi, M.3
Wu, M.N.4
-
153
-
-
84961191419
-
Social experience is sufficient to modulate sleep need of Drosophila without increasing wakefulness
-
Lone, S. R., S. Potdar, M. Srivastava, and V. K. Sharma, 2016 Social experience is sufficient to modulate sleep need of Drosophila without increasing wakefulness. PLoS One 11: e0150596
-
(2016)
Plos One
, pp. 11
-
-
Lone, S.R.1
Potdar, S.2
Srivastava, M.3
Sharma, V.K.4
-
154
-
-
32544460801
-
Functional dissection of a neuronal network required for cuticle tanning and wing expansion in Drosophila
-
Luan, H., W. C. Lemon, N. C. Peabody, J. B. Pohl, P. K. Zelensky et al., 2006 Functional dissection of a neuronal network required for cuticle tanning and wing expansion in Drosophila. J. Neurosci. 26: 573-584
-
(2006)
J. Neurosci
, vol.26
, pp. 573-584
-
-
Luan, H.1
Lemon, W.C.2
Peabody, N.C.3
Pohl, J.B.4
Zelensky, P.K.5
-
155
-
-
36248934760
-
Macromolecule biosynthesis: A key function of sleep. Physiol
-
Mackiewicz, M., K. R. Shockley, M. A. Romer, R. J. Galante, J. E. Zimmerman et al., 2007 Macromolecule biosynthesis: a key function of sleep. Physiol. Genomics 31: 441-457
-
(2007)
Genomics
, vol.31
, pp. 441-457
-
-
Mackiewicz, M.1
Shockley, K.R.2
Romer, M.A.3
Galante, R.J.4
Zimmerman, J.E.5
-
156
-
-
60649083558
-
What are microarrays teaching us about sleep? Trends Mol
-
Mackiewicz, M., J. E. Zimmerman, K. R. Shockley, G. A. Churchill, and A. I. Pack, 2009 What are microarrays teaching us about sleep? Trends Mol. Med. 15: 79-87
-
(2009)
Med
, vol.15
, pp. 79-87
-
-
Mackiewicz, M.1
Zimmerman, J.E.2
Shockley, K.R.3
Churchill, G.A.4
Pack, A.I.5
-
157
-
-
84939643816
-
Independent effects of GABA transaminase (GABAT) on metabolic and sleep homeostasis
-
Maguire, S. E., S. Rhoades, W.-F. Chen, A. Sengupta, Z. Yue et al., 2015 Independent effects of GABA transaminase (GABAT) on metabolic and sleep homeostasis. J. Biol. Chem. 290: 20407-20416
-
(2015)
J. Biol. Chem
, vol.290
, pp. 20407-20416
-
-
Maguire, S.E.1
Rhoades, S.2
Chen, W.-F.3
Sengupta, A.4
Yue, Z.5
-
158
-
-
0035875069
-
A role for the segment polarity gene shaggy/GSK-3 in the Drosophila circadian clock
-
Martinek, S., S. Inonog, A. S. Manoukian, and M. W. Young, 2001 A role for the segment polarity gene shaggy/GSK-3 in the Drosophila circadian clock. Cell 105: 769-779
-
(2001)
Cell
, vol.105
, pp. 769-779
-
-
Martinek, S.1
Inonog, S.2
Manoukian, A.S.3
Young, M.W.4
-
159
-
-
85006324751
-
Altered regulation of sleep and feeding contributes to starvation resistance in Drosophila melanogaster
-
Masek, P., L. A. Reynolds, W. L. Bollinger, C. Moody, A. Mehta et al., 2014 Altered regulation of sleep and feeding contributes to starvation resistance in Drosophila melanogaster. J. Exp. Biol. 217: 3122-3132
-
(2014)
J. Exp. Biol
, vol.217
, pp. 3122-3132
-
-
Masek, P.1
Reynolds, L.A.2
Bollinger, W.L.3
Moody, C.4
Mehta, A.5
-
160
-
-
34347375754
-
A functional genomics strategy reveals clockwork orange as a transcriptional regulator in the Drosophila circadian clock
-
Matsumoto, A., M. Ukai-Tadenuma, R. G. Yamada, J. Houl, K. D. Uno et al., 2007 A functional genomics strategy reveals clockwork orange as a transcriptional regulator in the Drosophila circadian clock. Genes Dev. 21: 1687-1700
-
(2007)
Genes Dev
, vol.21
, pp. 1687-1700
-
-
Matsumoto, A.1
Ukai-Tadenuma, M.2
Yamada, R.G.3
Houl, J.4
Uno, K.D.5
-
161
-
-
0035977158
-
Microarray analysis and organization of circadian gene expression in Drosophila
-
McDonald, M. J., and M. Rosbash, 2001 Microarray analysis and organization of circadian gene expression in Drosophila. Cell 107: 567-578
-
(2001)
Cell
, vol.107
, pp. 567-578
-
-
McDonald, M.J.1
Rosbash, M.2
-
162
-
-
26944486625
-
PDF receptor signaling in Drosophila contributes to both circadian and geotactic behaviors
-
Mertens, I., A. Vandingenen, E. C. Johnson, O. T. Shafer, W. Li et al., 2005 PDF receptor signaling in Drosophila contributes to both circadian and geotactic behaviors. Neuron 48: 213-219
-
(2005)
Neuron
, vol.48
, pp. 213-219
-
-
Mertens, I.1
Vandingenen, A.2
Johnson, E.C.3
Shafer, O.T.4
Li, W.5
-
163
-
-
84900443397
-
Lowered insulin signalling ameliorates age-related sleep fragmentation in Drosophila
-
Metaxakis, A., L. S. Tain, S. Grönke, O. Hendrich, Y. Hinze et al., 2014 Lowered insulin signalling ameliorates age-related sleep fragmentation in Drosophila. PLoS Biol. 12: e1001824
-
(2014)
Plos Biol
, pp. 12
-
-
Metaxakis, A.1
Tain, L.S.2
Grönke, S.3
Hendrich, O.4
Hinze, Y.5
-
164
-
-
30844466208
-
PER-TIM interactions in living Drosophila cells: An interval timer for the circadian clock
-
Meyer, P., L. Saez, and M. W. Young, 2006 PER-TIM interactions in living Drosophila cells: an interval timer for the circadian clock. Science 311: 226-229
-
(2006)
Science
, vol.311
, pp. 226-229
-
-
Meyer, P.1
Saez, L.2
Young, M.W.3
-
165
-
-
34147172166
-
Separate sets of cerebral clock neurons are responsible for light and temperature entrainment of Drosophila circadian locomotor rhythms
-
Miyasako, Y., Y. Umezaki, and K. Tomioka, 2007 Separate sets of cerebral clock neurons are responsible for light and temperature entrainment of Drosophila circadian locomotor rhythms. J. Biol. Rhythms 22: 115-126
-
(2007)
J. Biol. Rhythms
, vol.22
, pp. 115-126
-
-
Miyasako, Y.1
Umezaki, Y.2
Tomioka, K.3
-
166
-
-
84863317080
-
Neuronal influence on peripheral circadian oscillators in pupal Drosophila prothoracic glands. Nat
-
Morioka, E., A. Matsumoto, and M. Ikeda, 2012 Neuronal influence on peripheral circadian oscillators in pupal Drosophila prothoracic glands. Nat. Commun. 3: 909
-
(2012)
Commun
, vol.3
, pp. 909
-
-
Morioka, E.1
Matsumoto, A.2
Ikeda, M.3
-
167
-
-
84962162281
-
Translin is required for metabolic regulation of sleep
-
Murakami, K., M. E. Yurgel, B. A. Stahl, P. Masek, A. Mehta et al., 2016 Translin is required for metabolic regulation of sleep. Curr. Biol. 26: 972-980
-
(2016)
Curr. Biol
, vol.26
, pp. 972-980
-
-
Murakami, K.1
Yurgel, M.E.2
Stahl, B.A.3
Masek, P.4
Mehta, A.5
-
168
-
-
0037452919
-
Circadian control of eclosion: Interaction between a central and peripheral clock in Drosophila melanogaster
-
Myers, E. M., J. Yu, and A. Sehgal, 2003 Circadian control of eclosion: interaction between a central and peripheral clock in Drosophila melanogaster. Curr. Biol. 13: 526-533
-
(2003)
Curr. Biol
, vol.13
, pp. 526-533
-
-
Myers, E.M.1
Yu, J.2
Sehgal, A.3
-
169
-
-
0029989521
-
Light-induced degradation of TIMELESS and entrainment of the Drosophila circadian clock
-
Myers, M. P., K. Wager-Smith, A. Rothenfluh-Hilfiker, and M. W. Young, 1996 Light-induced degradation of TIMELESS and entrainment of the Drosophila circadian clock. Science 271: 1736-1740
-
(1996)
Science
, vol.271
, pp. 1736-1740
-
-
Myers, M.P.1
Wager-Smith, K.2
Rothenfluh-Hilfiker, A.3
Young, M.W.4
-
170
-
-
34250678865
-
A role for the molecular chaperone protein BiP/GRP78 in Drosophila sleep homeostasis
-
Naidoo, N., V. Casiano, J. Carter, J. Zimmerman, and A. I. Pack, 2007 A role for the molecular chaperone protein BiP/GRP78 in Drosophila sleep homeostasis. Sleep 30: 557-565
-
(2007)
Sleep
, vol.30
, pp. 557-565
-
-
Naidoo, N.1
Carter, C.J.2
Zimmerman, J.3
Pack, A.I.4
-
171
-
-
17244373578
-
Reconstitution of circadian oscillation of cyanobacterial KaiC phosphorylation in vitro
-
Nakajima, M., K. Imai, H. Ito, T. Nishiwaki, Y. Murayama et al., 2005 Reconstitution of circadian oscillation of cyanobacterial KaiC phosphorylation in vitro. Science 308: 414-415
-
(2005)
Science
, vol.308
, pp. 414-415
-
-
Nakajima, M.1
Imai, K.2
Ito, H.3
Nishiwaki, T.4
Murayama, Y.5
-
172
-
-
84958068695
-
Caffeine promotes wakefulness via dopamine signaling in Drosophila.
-
Nall, A. H., I. Shakhmantsir, K. Cichewicz, S. Birman, J. Hirsh et al., 2016 Caffeine promotes wakefulness via dopamine signaling in Drosophila. Sci. Rep. 6: 20938
-
(2016)
Sci. Rep
, vol.6
, pp. 20938
-
-
Nall, A.H.1
Shakhmantsir, I.2
Cichewicz, K.3
Birman, S.4
Hirsh, J.5
-
173
-
-
34347356507
-
A small conserved domain of Drosophila PERIOD is important for circadian phosphorylation, nuclear localization, and transcriptional repressor activity.
-
Nawathean, P., D. Stoleru, and M. Rosbash, 2007 A small conserved domain of Drosophila PERIOD is important for circadian phosphorylation, nuclear localization, and transcriptional repressor activity. Mol. Cell. Biol. 27: 5002-5013
-
(2007)
Mol. Cell. Biol
, vol.27
, pp. 5002-5013
-
-
Nawathean, P.1
Stoleru, D.2
Rosbash, M.3
-
174
-
-
0037123779
-
Electrical silencing of Drosophila pacemaker neurons stops the free-running circadian clock
-
Nitabach, M. N., J. Blau, and T. C. Holmes, 2002 Electrical silencing of Drosophila pacemaker neurons stops the free-running circadian clock. Cell 109: 485-495
-
(2002)
Cell
, vol.109
, pp. 485-495
-
-
Nitabach, M.N.1
Blau, J.2
Holmes, T.C.3
-
175
-
-
10444290712
-
Membrane electrical excitability is necessary for the freerunning larval Drosophila circadian clock
-
Nitabach, M. N., V. Sheeba, D. A. Vera, J. Blau, and T. C. Holmes, 2004 Membrane electrical excitability is necessary for the freerunning larval Drosophila circadian clock. J. Neurobiol. 62: 1-13
-
(2004)
J. Neurobiol
, vol.62
, pp. 1-13
-
-
Nitabach, M.N.1
Sheeba, V.2
Vera, D.A.3
Blau, J.4
Holmes, T.C.5
-
176
-
-
32544439026
-
Electrical hyperexcitation of lateral ventral pacemaker neurons desynchronizes downstream circadian oscillators in the fly circadian circuit and induces multiple behavioral periods
-
Nitabach, M. N., Y. Wu, V. Sheeba, W. C. Lemon, J. Strumbos et al., 2006 Electrical hyperexcitation of lateral ventral pacemaker neurons desynchronizes downstream circadian oscillators in the fly circadian circuit and induces multiple behavioral periods. J. Neurosci. 26: 479-489
-
(2006)
J. Neurosci
, vol.26
, pp. 479-489
-
-
Nitabach, M.N.1
Wu, Y.2
Sheeba, V.3
Lemon, W.C.4
Strumbos, J.5
-
177
-
-
0037137439
-
Electrophysiological correlates of rest and activity in Drosophila melanogaster
-
Nitz, D. A., B. van Swinderen, G. Tononi, and R. J. Greenspan, 2002 Electrophysiological correlates of rest and activity in Drosophila melanogaster. Curr. Biol. 12: 1934-1940
-
(2002)
Curr. Biol
, vol.12
, pp. 1934-1940
-
-
Nitz, D.A.1
Van Swinderen, B.2
Tononi, G.3
Greenspan, R.J.4
-
178
-
-
84944897515
-
Olfactory learning skews mushroom body output pathways to steer behavioral choice in Drosophila
-
Owald, D., and S. Waddell, 2015 Olfactory learning skews mushroom body output pathways to steer behavioral choice in Drosophila. Curr. Opin. Neurobiol. 35: 178-184
-
(2015)
Curr. Opin. Neurobiol
, vol.35
, pp. 178-184
-
-
Owald, D.1
Waddell, S.2
-
179
-
-
56349145622
-
PDF cells are a GABA-responsive wake-promoting component of the Drosophila sleep circuit
-
Parisky, K. M., J. Agosto, S. R. Pulver, Y. Shang, E. Kuklin et al., 2008 PDF cells are a GABA-responsive wake-promoting component of the Drosophila sleep circuit. Neuron 60: 672-682
-
(2008)
Neuron
, vol.60
, pp. 672-682
-
-
Parisky, K.M.1
Agosto, J.2
Pulver, S.R.3
Shang, Y.4
Kuklin, E.5
-
180
-
-
84961989562
-
Reorganization of sleep by temperature in Drosophila requires light, the homeostat, and the circadian clock
-
Parisky, K. M., J. L. Agosto Rivera, N. C. Donelson, S. Kotecha, and L. C. Griffith, 2016 Reorganization of sleep by temperature in Drosophila requires light, the homeostat, and the circadian clock. Curr. Biol. 26: 882-892
-
(2016)
Curr. Biol
, vol.26
, pp. 882-892
-
-
Parisky, K.M.1
Agosto Rivera, J.L.2
Donelson, N.C.3
Kotecha, S.4
Griffith, L.C.5
-
181
-
-
84901404010
-
SIFamide and SIFamide receptor define a novel neuropeptide signaling to promote sleep in Drosophila.
-
Park, S., J. Y. Sonn, Y. Oh, C. Lim, and J. Choe, 2014 SIFamide and SIFamide receptor define a novel neuropeptide signaling to promote sleep in Drosophila. Mol. Cells 37: 295-301
-
(2014)
Mol. Cells
, vol.37
, pp. 295-301
-
-
Park, S.1
Sonn, J.Y.2
Oh, Y.3
Lim, C.4
Choe, J.5
-
182
-
-
84892976423
-
Molecular architecture of the mammalian circadian clock
-
Partch, C. L., C. B. Green, and J. S. Takahashi, 2014 Molecular architecture of the mammalian circadian clock. Trends Cell Biol. 24: 90-99
-
(2014)
Trends Cell Biol
, vol.24
, pp. 90-99
-
-
Partch, C.L.1
Green, C.B.2
Takahashi, J.S.3
-
183
-
-
84868089899
-
Cul3 and the BTB adaptor insomniac are key regulators of sleep homeostasis and a dopamine arousal pathway in Drosophila
-
Pfeiffenberger, C., and R. Allada, 2012 Cul3 and the BTB adaptor insomniac are key regulators of sleep homeostasis and a dopamine arousal pathway in Drosophila. PLoS Genet. 8: e1003003
-
(2012)
Plos Genet
, pp. 8
-
-
Pfeiffenberger, C.1
Allada, R.2
-
184
-
-
37249088864
-
Light activates output from evening neurons and inhibits output from morning neurons in the Drosophila circadian clock
-
Picot, M., P. Cusumano, A. Klarsfeld, R. Ueda, and F. Rouyer, 2007 Light activates output from evening neurons and inhibits output from morning neurons in the Drosophila circadian clock. PLoS Biol. 5: 2513-2521
-
(2007)
Plos Biol
, vol.5
, pp. 2513-2521
-
-
Picot, M.1
Cusumano, P.2
Klarsfeld, A.3
Ueda, R.4
Rouyer, F.5
-
185
-
-
84983445814
-
Operation of a homeostatic sleep switch
-
Pimentel, D., J. M. Donlea, C. B. Talbot, S. M. Song, A. J. F. Thurston et al., 2016 Operation of a homeostatic sleep switch. Nature 536: 333-337
-
(2016)
Nature
, vol.536
, pp. 333-337
-
-
Pimentel, D.1
Donlea, J.M.2
Talbot, C.B.3
Song, S.M.4
Thurston, A.J.F.5
-
186
-
-
33744997647
-
A dynamic role for the mushroom bodies in promoting sleep in Drosophila
-
Pitman, J. L., J. J. McGill, K. P. Keegan, and R. Allada, 2006 A dynamic role for the mushroom bodies in promoting sleep in Drosophila. Nature 441: 753-756
-
(2006)
Nature
, vol.441
, pp. 753-756
-
-
Pitman, J.L.1
McGill, J.J.2
Keegan, K.P.3
Allada, R.4
-
187
-
-
0014141703
-
Circadian systems. I. The driving oscillation and its assay in Drosophila pseudoobscura
-
Pittendrigh, C. S., 1967 Circadian systems. I. The driving oscillation and its assay in Drosophila pseudoobscura. Proc. Natl. Acad. Sci. USA 58: 1762-1767
-
(1967)
Proc. Natl. Acad. Sci. USA
, vol.58
, pp. 1762-1767
-
-
Pittendrigh, C.S.1
-
188
-
-
0032503969
-
Double-time is a novel Drosophila clock gene that regulates PERIOD protein accumulation
-
Price, J. L., J. Blau, A. Rothenfluh, M. Abodeely, B. Kloss et al., 1998 Double-time is a novel Drosophila clock gene that regulates PERIOD protein accumulation. Cell 94: 83-95
-
(1998)
Cell
, vol.94
, pp. 83-95
-
-
Price, J.L.1
Blau, J.2
Rothenfluh, A.3
Abodeely, M.4
Kloss, B.5
-
189
-
-
38749092606
-
Lethargus is a Caenorhabditis elegans sleep-like state
-
Raizen, D. M., J. E. Zimmerman, M. H. Maycock, U. D. Ta, Y.-J. You et al., 2008 Lethargus is a Caenorhabditis elegans sleep-like state. Nature 451: 569-572
-
(2008)
Nature
, vol.451
, pp. 569-572
-
-
Raizen, D.M.1
Zimmerman, J.E.2
Maycock, M.H.3
Ta, U.D.4
You, Y.-J.5
-
190
-
-
0033599009
-
A pdf neuropeptide gene mutation and ablation of PDF neurons each cause severe abnormalities of behavioral circadian rhythms in Drosophila
-
Renn, S. C., J. H. Park, M. Rosbash, J. C. Hall, and P. H. Taghert, 1999 A pdf neuropeptide gene mutation and ablation of PDF neurons each cause severe abnormalities of behavioral circadian rhythms in Drosophila. Cell 99: 791-802
-
(1999)
Cell
, vol.99
, pp. 791-802
-
-
Renn, S.C.1
Park, J.H.2
Rosbash, M.3
Hall, J.C.4
Taghert, P.H.5
-
191
-
-
0141453190
-
Cryptochrome, compound eyes, Hofbauer-Buchner eyelets, and ocelli play different roles in the entrainment and masking pathway of the locomotor activity rhythm in the fruit fly Drosophila Melanogaster
-
Rieger, D., R. Stanewsky, and C. Helfrich-Förster, 2003 Cryptochrome, compound eyes, Hofbauer-Buchner eyelets, and ocelli play different roles in the entrainment and masking pathway of the locomotor activity rhythm in the fruit fly Drosophila Melanogaster. J. Biol. Rhythms 18: 377-391
-
(2003)
J. Biol. Rhythms
, vol.18
, pp. 377-391
-
-
Rieger, D.1
Stanewsky, R.2
Helfrich-Förster, C.3
-
192
-
-
33645646764
-
Functional analysis of circadian pacemaker neurons in Drosophila melanogaster
-
Rieger, D., O. T. Shafer, K. Tomioka, and C. Helfrich-Förster, 2006 Functional analysis of circadian pacemaker neurons in Drosophila melanogaster. J. Neurosci. 26: 2531-2543
-
(2006)
J. Neurosci
, vol.26
, pp. 2531-2543
-
-
Rieger, D.1
Shafer, O.T.2
Tomioka, K.3
Helfrich-Förster, C.4
-
193
-
-
67651171469
-
Period gene expression in four neurons is sufficient for rhythmic activity of Drosophila melanogaster under dim light conditions
-
Rieger, D., C. Wulbeck, F. Rouyer, and C. Helfrich-Förster, 2009 Period gene expression in four neurons is sufficient for rhythmic activity of Drosophila melanogaster under dim light conditions. J. Biol. Rhythms 24: 271-282
-
(2009)
J. Biol. Rhythms
, vol.24
, pp. 271-282
-
-
Rieger, D.1
Wulbeck, C.2
Rouyer, F.3
Helfrich-Förster, C.4
-
194
-
-
79551660001
-
Behavioral consequences of dopamine deficiency in the Drosophila central nervous system
-
Riemensperger, T., G. Isabel, H. Coulom, K. Neuser, L. Seugnet et al., 2011 Behavioral consequences of dopamine deficiency in the Drosophila central nervous system. Proc. Natl. Acad. Sci. USA 108: 834-839
-
(2011)
Proc. Natl. Acad. Sci. USA
, vol.108
, pp. 834-839
-
-
Riemensperger, T.1
Isabel, G.2
Coulom, H.3
Neuser, K.4
Seugnet, L.5
-
195
-
-
84928669149
-
Light evokes rapid circadian network oscillator desynchrony followed by gradual phase retuning of synchrony
-
Roberts, L., T. L. Leise, T. Noguchi, A. M. Galschiodt, J. H. Houl et al., 2015 Light evokes rapid circadian network oscillator desynchrony followed by gradual phase retuning of synchrony. Curr. Biol. 25: 858-867
-
(2015)
Curr. Biol
, vol.25
, pp. 858-867
-
-
Roberts, L.1
Leise, T.L.2
Noguchi, T.3
Galschiodt, A.M.4
Houl, J.H.5
-
196
-
-
84955512477
-
ADAR-mediated RNA editing suppresses sleep by acting as a brake on glutamatergic synaptic plasticity. Nat
-
Robinson, J. E., J. Paluch, D. K. Dickman, and W. J. Joiner, 2016 ADAR-mediated RNA editing suppresses sleep by acting as a brake on glutamatergic synaptic plasticity. Nat. Commun. 7: 10512
-
(2016)
Commun
, vol.7
, pp. 10512
-
-
Robinson, J.E.1
Paluch, J.2
Dickman, D.K.3
Joiner, W.J.4
-
197
-
-
84859129533
-
Control of sleep by cyclin a and its regulator
-
Rogulja, D., and M. W. Young, 2012 Control of sleep by cyclin a and its regulator. Science 335: 1617-1621
-
(2012)
Science
, vol.335
, pp. 1617-1621
-
-
Rogulja, D.1
Young, M.W.2
-
198
-
-
33750467113
-
Molecular and phylogenetic analyses reveal mammalian-like clockwork in the honey bee (Apis mellifera) and shed new light on the molecular evolution of the circadian clock
-
Rubin, E. B., Y. Shemesh, M. Cohen, S. Elgavish, H.M. Robertson et al., 2006 Molecular and phylogenetic analyses reveal mammalian-like clockwork in the honey bee (Apis mellifera) and shed new light on the molecular evolution of the circadian clock. Genome Res. 16: 1352-1365
-
(2006)
Genome Res
, vol.16
, pp. 1352-1365
-
-
Rubin, E.B.1
Shemesh, Y.2
Cohen, M.3
Elgavish, S.4
Robertson, H.M.5
-
199
-
-
0032577450
-
CYCLE is a second bHLH-PAS clock protein essential for circadian rhythmicity and transcription of Drosophila period and timeless
-
Rutila, J. E., V. Suri, M. Le, W. V. So, M. Rosbash et al., 1998 CYCLE is a second bHLH-PAS clock protein essential for circadian rhythmicity and transcription of Drosophila period and timeless. Cell 93: 805-814
-
(1998)
Cell
, vol.93
, pp. 805-814
-
-
Rutila, J.E.1
Suri, V.2
Le, M.3
So, W.V.4
Rosbash, M.5
-
200
-
-
78650230533
-
Sleep state switching
-
Saper, C. B., P. M. Fuller, N. P. Pedersen, J. Lu, and T. E. Scammell, 2010 Sleep state switching. Neuron 68: 1023-1042
-
(2010)
Neuron
, vol.68
, pp. 1023-1042
-
-
Saper, C.B.1
Fuller, P.M.2
Pedersen, N.P.3
Lu, J.4
Scammell, T.E.5
-
201
-
-
1342285689
-
Posttranslational regulation of Drosophila PERIOD protein by protein phosphatase 2A
-
Sathyanarayanan, S., X. Zheng, R. Xiao, and A. Sehgal, 2004 Posttranslational regulation of Drosophila PERIOD protein by protein phosphatase 2A. Cell 116: 603-615
-
(2004)
Cell
, vol.116
, pp. 603-615
-
-
Sathyanarayanan, S.1
Zheng, X.2
Xiao, R.3
Sehgal, A.4
-
202
-
-
55149116510
-
The energy hypothesis of sleep revisited. Prog
-
Scharf, M. T., N. Naidoo, J. E. Zimmerman, and A. I. Pack, 2008 The energy hypothesis of sleep revisited. Prog. Neurobiol. 86: 264-280
-
(2008)
Neurobiol
, vol.86
, pp. 264-280
-
-
Scharf, M.T.1
Naidoo, N.2
Zimmerman, J.E.3
Pack, A.I.4
-
203
-
-
84984972601
-
A neural network underlying circadian entrainment and photoperiodic adjustment of sleep and activity in Drosophila
-
Schlichting, M., P. Menegazzi, K. R. Lelito, Z. Yao, E. Buhl et al., 2016 A neural network underlying circadian entrainment and photoperiodic adjustment of sleep and activity in Drosophila. J. Neurosci. 36: 9084-9096
-
(2016)
J. Neurosci
, vol.36
, pp. 9084-9096
-
-
Schlichting, M.1
Menegazzi, P.2
Lelito, K.R.3
Yao, Z.4
Buhl, E.5
-
204
-
-
70350183790
-
Temperature entrainment of Drosophila’s circadian clock involves the gene nocte and signaling from peripheral sensory tissues to the brain
-
Sehadova, H., F. T. Glaser, C. Gentile, A. Simoni, A. Giesecke et al., 2009 Temperature entrainment of Drosophila’s circadian clock involves the gene nocte and signaling from peripheral sensory tissues to the brain. Neuron 64: 251-266
-
(2009)
Neuron
, vol.64
, pp. 251-266
-
-
Sehadova, H.1
Glaser, F.T.2
Gentile, C.3
Simoni, A.4
Giesecke, A.5
-
205
-
-
0028330442
-
Loss of circadian behavioral rhythms and per RNA oscillations in the Drosophila mutant timeless
-
Sehgal, A., J. L. Price, B. Man, and M. W. Young, 1994 Loss of circadian behavioral rhythms and per RNA oscillations in the Drosophila mutant timeless. Science 263: 1603-1606
-
(1994)
Science
, vol.263
, pp. 1603-1606
-
-
Sehgal, A.1
Price, J.L.2
Man, B.3
Young, M.W.4
-
206
-
-
0028838668
-
Rhythmic expression of timeless: A basis for promoting circadian cycles in period gene autoregulation
-
Sehgal, A., A. Rothenfluh-Hilfiker, M. Hunter-Ensor, Y. Chen, M. P. Myers et al., 1995 Rhythmic expression of timeless: a basis for promoting circadian cycles in period gene autoregulation. Science 270: 808-810
-
(1995)
Science
, vol.270
, pp. 808-810
-
-
Sehgal, A.1
Rothenfluh-Hilfiker, A.2
Hunter-Ensor, M.3
Chen, Y.4
Myers, M.P.5
-
207
-
-
84960814842
-
Identification of neurons with a privileged role in sleep homeostasis in Drosophila melanogaster
-
Seidner, G., J. E. Robinson, M. Wu, K. Worden, P. Masek et al., 2015 Identification of neurons with a privileged role in sleep homeostasis in Drosophila melanogaster. Curr. Biol. 25: 2928-2938
-
(2015)
Curr. Biol
, vol.25
, pp. 2928-2938
-
-
Seidner, G.1
Robinson, J.E.2
Wu, M.3
Worden, K.4
Masek, P.5
-
208
-
-
84899015909
-
Dual PDF signaling pathways reset clocks via TIMELESS and acutely excite target neurons to control circadian behavior
-
Seluzicki, A., M. Flourakis, E. Kula-Eversole, L. Zhang, V. Kilman et al., 2014 Dual PDF signaling pathways reset clocks via TIMELESS and acutely excite target neurons to control circadian behavior. PLoS Biol. 12: e1001810
-
(2014)
Plos Biol
, pp. 12
-
-
Seluzicki, A.1
Flourakis, M.2
Kula-Eversole, E.3
Zhang, L.4
Kilman, V.5
-
209
-
-
52249108908
-
D1 receptor activation in the mushroom bodies rescues sleep-loss-induced learning impairments in Drosophila
-
Seugnet, L., Y. Suzuki, L. Vine, L. Gottschalk, and P. J. Shaw, 2008 D1 receptor activation in the mushroom bodies rescues sleep-loss-induced learning impairments in Drosophila. Curr. Biol. 18: 1110-1117
-
(2008)
Curr. Biol
, vol.18
, pp. 1110-1117
-
-
Seugnet, L.1
Suzuki, Y.2
Vine, L.3
Gottschalk, L.4
Shaw, P.J.5
-
210
-
-
79851494087
-
Sleep deprivation during early-adult development results in long-lasting learning deficits in adult Drosophila
-
Seugnet, L., Y. Suzuki, J. M. Donlea, L. Gottschalk, and P. J. Shaw, 2011a Sleep deprivation during early-adult development results in long-lasting learning deficits in adult Drosophila. Sleep 34: 137-146
-
(2011)
Sleep
, vol.34
, pp. 137-146
-
-
Seugnet, L.1
Suzuki, Y.2
Donlea, J.M.3
Gottschalk, L.4
Shaw, P.J.5
-
211
-
-
79957502385
-
Notch signaling modulates sleep homeostasis and learning after sleep deprivation in Drosophila
-
Seugnet, L., Y. Suzuki, G. Merlin, L. Gottschalk, S. P. Duntley et al., 2011b Notch signaling modulates sleep homeostasis and learning after sleep deprivation in Drosophila. Curr. Biol. 21: 835-840
-
(2011)
Curr. Biol
, vol.21
, pp. 835-840
-
-
Seugnet, L.1
Suzuki, Y.2
Merlin, G.3
Gottschalk, L.4
Duntley, S.P.5
-
212
-
-
42149175153
-
Widespread receptivity to neuropeptide PDF throughout the neuronal circadian clock network of Drosophila revealed by real-time cyclic AMP imaging
-
Shafer, O. T., D. J. Kim, R. Dunbar-Yaffe, V. O. Nikolaev, M. J. Lohse et al., 2008 Widespread receptivity to neuropeptide PDF throughout the neuronal circadian clock network of Drosophila revealed by real-time cyclic AMP imaging. Neuron 58: 223-237
-
(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
-
213
-
-
56349125022
-
Light-arousal and circadian photoreception circuits intersect at the large PDF cells of the Drosophila brain
-
Shang, Y., L. C. Griffith, and M. Rosbash, 2008 Light-arousal and circadian photoreception circuits intersect at the large PDF cells of the Drosophila brain. Proc. Natl. Acad. Sci. USA 105: 19587-19594
-
(2008)
Proc. Natl. Acad. Sci. USA
, vol.105
, pp. 19587-19594
-
-
Shang, Y.1
Griffith, L.C.2
Rosbash, M.3
-
214
-
-
79959630627
-
Imaging analysis of clock neurons reveals light buffers the wake-promoting effect of dopamine. Nat
-
Shang, Y., P. Haynes, N. Pírez, K. I. Harrington, F. Guo et al., 2011 Imaging analysis of clock neurons reveals light buffers the wake-promoting effect of dopamine. Nat. Neurosci. 14: 889-895
-
(2011)
Neurosci
, vol.14
, pp. 889-895
-
-
Shang, Y.1
Haynes, P.2
Pírez, N.3
Harrington, K.I.4
Guo, F.5
-
215
-
-
0034629130
-
Correlates of sleep and waking in Drosophila melanogaster
-
Shaw, P. J., C. Cirelli, R. J. Greenspan, and G. Tononi, 2000 Correlates of sleep and waking in Drosophila melanogaster. Science 287: 1834-1837
-
(2000)
Science
, vol.287
, pp. 1834-1837
-
-
Shaw, P.J.1
Cirelli, C.2
Greenspan, R.J.3
Tononi, G.4
-
216
-
-
0037118054
-
Stress response genes protect against lethal effects of sleep deprivation in Drosophila
-
Shaw, P. J., G. Tononi, R. J. Greenspan, and D. F. Robinson, 2002 Stress response genes protect against lethal effects of sleep deprivation in Drosophila. Nature 417: 287-291
-
(2002)
Nature
, vol.417
, pp. 287-291
-
-
Shaw, P.J.1
Tononi, G.2
Greenspan, R.J.3
Robinson, D.F.4
-
217
-
-
54149098124
-
Large ventral lateral neurons modulate arousal and sleep in Drosophila
-
Sheeba, V., K. J. Fogle, M. Kaneko, S. Rashid, Y.-T. Chou et al., 2008a Large ventral lateral neurons modulate arousal and sleep in Drosophila. Curr. Biol. 18: 1537-1545
-
(2008)
Curr. Biol
, vol.18
, pp. 1537-1545
-
-
Sheeba, V.1
Fogle, K.J.2
Kaneko, M.3
Rashid, S.4
Chou, Y.-T.5
-
218
-
-
38149040998
-
Circadian-and light-dependent regulation of resting membrane potential and spontaneous action potential firing of Drosophila circadian pacemaker neurons
-
Sheeba, V., H. Gu, V. K. Sharma, D. K. O’Dowd, and T. C. Holmes, 2008b Circadian-and light-dependent regulation of resting membrane potential and spontaneous action potential firing of Drosophila circadian pacemaker neurons. J. Neurophysiol. 99: 976-988
-
(2008)
J. Neurophysiol
, vol.99
, pp. 976-988
-
-
Sheeba, V.1
Gu, H.2
Sharma, V.K.3
O’Dowd, D.K.4
Holmes, T.C.5
-
219
-
-
84898756782
-
Identification of redeye, a new sleep-regulating protein whose expression is modulated by sleep amount.
-
Shi, M., Z. Yue, A. Kuryatov, J. M. Lindstrom, and A. Sehgal, 2014 Identification of redeye, a new sleep-regulating protein whose expression is modulated by sleep amount. eLife 3: e01473
-
(2014)
Elife
, vol.3
-
-
Shi, M.1
Yue, Z.2
Kuryatov, A.3
Lindstrom, J.M.4
Sehgal, A.5
-
220
-
-
84948792681
-
Propagation of homeostatic sleep signals by segregated synaptic microcircuits of the Drosophila mushroom body
-
Sitaraman, D., Y. Aso, X. Jin, N. Chen, M. Felix et al., 2015a Propagation of homeostatic sleep signals by segregated synaptic microcircuits of the Drosophila mushroom body. Curr. Biol. 25: 2915-2927
-
(2015)
Curr. Biol
, vol.25
, pp. 2915-2927
-
-
Sitaraman, D.1
Aso, Y.2
Jin, X.3
Chen, N.4
Felix, M.5
-
221
-
-
84948739501
-
Control of sleep by dopaminergic inputs to the Drosophila mushroom body. Front
-
Sitaraman, D., Y. Aso, G. M. Rubin, and M. N. Nitabach, 2015b Control of sleep by dopaminergic inputs to the Drosophila mushroom body. Front. Neural Circuits 9: 73
-
(2015)
Neural Circuits
, vol.9
, pp. 73
-
-
Sitaraman, D.1
Aso, Y.2
Rubin, G.M.3
Nitabach, M.N.4
-
222
-
-
0023985889
-
Antibodies to the period gene product of Drosophila reveal diverse tissue distribution and rhythmic changes in the visual system
-
Siwicki, K. K., C. Eastman, G. Petersen, M. Rosbash, and J. C. Hall, 1988 Antibodies to the period gene product of Drosophila reveal diverse tissue distribution and rhythmic changes in the visual system. Neuron 1: 141-150
-
(1988)
Neuron
, vol.1
, pp. 141-150
-
-
Siwicki, K.K.1
Eastman, C.2
Petersen, G.3
Rosbash, M.4
Hall, J.C.5
-
223
-
-
0032566970
-
The cryb mutation identifies cryptochrome as a circadian photoreceptor in Drosophila
-
Stanewsky, R., M. Kaneko, P. Emery, B. Beretta, K. Wager-Smith et al., 1998 The cryb mutation identifies cryptochrome as a circadian photoreceptor in Drosophila. Cell 95: 681-692
-
(1998)
Cell
, vol.95
, pp. 681-692
-
-
Stanewsky, R.1
Kaneko, M.2
Emery, P.3
Beretta, B.4
Wager-Smith, K.5
-
224
-
-
84155177082
-
Insomniac and Cullin-3 regulate sleep and wakefulness in Drosophila
-
Stavropoulos, N., and M. W. Young, 2011 Insomniac and Cullin-3 regulate sleep and wakefulness in Drosophila. Neuron 72: 964-976
-
(2011)
Neuron
, vol.72
, pp. 964-976
-
-
Stavropoulos, N.1
Young, M.W.2
-
225
-
-
7244242193
-
Coupled oscillators control morning and evening locomotor behaviour of Drosophila
-
Stoleru, D., Y. Peng, J. Agosto, and M. Rosbash, 2004 Coupled oscillators control morning and evening locomotor behaviour of Drosophila. Nature 431: 862-868
-
(2004)
Nature
, vol.431
, pp. 862-868
-
-
Stoleru, D.1
Peng, Y.2
Agosto, J.3
Rosbash, M.4
-
226
-
-
27744493091
-
A resetting signal between Drosophila pacemakers synchronizes morning and evening activity
-
Stoleru, D., Y. Peng, P. Nawathean, and M. Rosbash, 2005 A resetting signal between Drosophila pacemakers synchronizes morning and evening activity. Nature 438: 238-242
-
(2005)
Nature
, vol.438
, pp. 238-242
-
-
Stoleru, D.1
Peng, Y.2
Nawathean, P.3
Rosbash, M.4
-
227
-
-
33847098901
-
The Drosophila circadian network is a seasonal timer
-
Stoleru, D., P. Nawathean, M. P. Fernández, J. S. Menet, M. F. Ceriani et al., 2007 The Drosophila circadian network is a seasonal timer. Cell 129: 207-219
-
(2007)
Cell
, vol.129
, pp. 207-219
-
-
Stoleru, D.1
Nawathean, P.2
Fernández, M.P.3
Menet, J.S.4
Ceriani, M.F.5
-
228
-
-
84876307446
-
Deep homology of arthropod central complex and vertebrate basal Ganglia
-
Strausfeld, N. J., and F. Hirth, 2013 Deep homology of arthropod central complex and vertebrate basal Ganglia. Science 340: 157-161
-
(2013)
Science
, vol.340
, pp. 157-161
-
-
Strausfeld, N.J.1
Hirth, F.2
-
229
-
-
77952731343
-
Light-mediated TIM degradation within Drosophila pacemaker neurons (S-LNvs) is neither necessary nor sufficient for delay zone phase shifts
-
Tang, C.-H. A., E. Hinteregger, Y. Shang, and M. Rosbash, 2010 Light-mediated TIM degradation within Drosophila pacemaker neurons (s-LNvs) is neither necessary nor sufficient for delay zone phase shifts. Neuron 66: 378-385
-
(2010)
Neuron
, vol.66
, pp. 378-385
-
-
Tang, C.-H.A.1
Hinteregger, E.2
Shang, Y.3
Rosbash, M.4
-
230
-
-
84947996379
-
Calcium and SOL protease mediate temperature resetting of circadian clocks
-
Tataroglu, O., X. Zhao, A. Busza, J. Ling, J. S. O’Neill et al., 2015 Calcium and SOL protease mediate temperature resetting of circadian clocks. Cell 163: 1214-1224
-
(2015)
Cell
, vol.163
, pp. 1214-1224
-
-
Tataroglu, O.1
Zhao, X.2
Busza, A.3
Ling, J.4
O’Neill, J.S.5
-
231
-
-
84928882671
-
Identification of genes associated with resilience/ vulnerability to sleep deprivation and starvation in Drosophila
-
Thimgan, M. S., L. Seugnet, J. Turk, and P. J. Shaw, 2015 Identification of genes associated with resilience/ vulnerability to sleep deprivation and starvation in Drosophila. Sleep 38: 801-814
-
(2015)
Sleep
, vol.38
, pp. 801-814
-
-
Thimgan, M.S.1
Seugnet, L.2
Turk, J.3
Shaw, P.J.4
-
232
-
-
77956854713
-
The perilipin homologue, lipid storage droplet 2, regulates sleep homeostasis and prevents learning impairments following sleep loss
-
Thimgan, M. S., Y. Suzuki, L. Seugnet, L. Gottschalk, and P. J. Shaw, 2010 The perilipin homologue, lipid storage droplet 2, regulates sleep homeostasis and prevents learning impairments following sleep loss. PLoS Biol. 8: e1000466
-
(2010)
Plos Biol
, pp. 8
-
-
Thimgan, M.S.1
Suzuki, Y.2
Seugnet, L.3
Gottschalk, L.4
Shaw, P.J.5
-
233
-
-
0035136677
-
An hPer2 phosphorylation site mutation in familial advanced sleep phase syndrome
-
Toh, K., C. R. Jones, Y. He, E. J. Eide, W. A. Hinz et al., 2001 An hPer2 phosphorylation site mutation in familial advanced sleep phase syndrome. Science 291: 1040-1043
-
(2001)
Science
, vol.291
, pp. 1040-1043
-
-
Toh, K.1
Jones, C.R.2
He, Y.3
Eide, E.J.4
Hinz, W.A.5
-
234
-
-
30844435916
-
Sleep function and synaptic homeostasis. Sleep Med
-
Tononi, G., and C. Cirelli, 2006 Sleep function and synaptic homeostasis. Sleep Med. Rev. 10: 49-62
-
(2006)
Rev
, vol.10
, pp. 49-62
-
-
Tononi, G.1
Cirelli, C.2
-
235
-
-
84891772571
-
Sleep and the price of plasticity: From synaptic and cellular homeostasis to memory consolidation and integration
-
Tononi, G., and C. Cirelli, 2014 Sleep and the price of plasticity: from synaptic and cellular homeostasis to memory consolidation and integration. Neuron 81: 12-34
-
(2014)
Neuron
, vol.81
, pp. 12-34
-
-
Tononi, G.1
Cirelli, C.2
-
236
-
-
0037134445
-
Genome-wide transcriptional orchestration of circadian rhythms in Drosophila
-
Ueda, H. R., A. Matsumoto, M. Kawamura, M. Iino, T. Tanimura et al., 2002 Genome-wide transcriptional orchestration of circadian rhythms in Drosophila. J. Biol. Chem. 277: 14048-14052
-
(2002)
J. Biol. Chem
, vol.277
, pp. 14048-14052
-
-
Ueda, H.R.1
Matsumoto, A.2
Kawamura, M.3
Iino, M.4
Tanimura, T.5
-
237
-
-
84868199388
-
Identification of a dopamine pathway that regulates sleep and arousal in Drosophila. Nat
-
Ueno, T., J. Tomita, H. Tanimoto, K. Endo, K. Ito et al., 2012 Identification of a dopamine pathway that regulates sleep and arousal in Drosophila. Nat. Neurosci. 15: 1516-1523
-
(2012)
Neurosci
, vol.15
, pp. 1516-1523
-
-
Ueno, T.1
Tomita, J.2
Tanimoto, H.3
Endo, K.4
Ito, K.5
-
238
-
-
84876216271
-
A dynamic deep sleep stage in Drosophila
-
van Alphen, B., M. H. W. Yap, L. Kirszenblat, B. Kottler, and B. van Swinderen, 2013 A dynamic deep sleep stage in Drosophila. J. Neurosci. 33: 6917-6927
-
(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
-
239
-
-
84859926266
-
Unexpected features of Drosophila circadian behavioural rhythms under natural conditions
-
Vanin, S., S. Bhutani, S. Montelli, P. Menegazzi, E. W. Green et al., 2012 Unexpected features of Drosophila circadian behavioural rhythms under natural conditions. Nature 484: 371-375
-
(2012)
Nature
, vol.484
, pp. 371-375
-
-
Vanin, S.1
Bhutani, S.2
Montelli, S.3
Menegazzi, P.4
Green, E.W.5
-
240
-
-
33845999933
-
Hofbauer-buchner eyelet affects circadian photosensitivity and coordinates TIM and PER expression in Drosophila clock neurons
-
Veleri, S., D. Rieger, C. Helfrich-Förster, and R. Stanewsky, 2007 Hofbauer-buchner eyelet affects circadian photosensitivity and coordinates TIM and PER expression in Drosophila clock neurons. J. Biol. Rhythms 22: 29-42
-
(2007)
J. Biol. Rhythms
, vol.22
, pp. 29-42
-
-
Veleri, S.1
Rieger, D.2
Helfrich-Förster, C.3
Stanewsky, R.4
-
241
-
-
34250623288
-
Vasoactive intestinal peptide and the mammalian circadian system. Gen. Comp
-
Vosko, A. M., A. Schroeder, D. H. Loh, and C. S. Colwell, 2007 Vasoactive intestinal peptide and the mammalian circadian system. Gen. Comp. Endocrinol. 152: 165-175
-
(2007)
Endocrinol
, vol.152
, pp. 165-175
-
-
Vosko, A.M.1
Schroeder, A.2
Loh, D.H.3
Colwell, C.S.4
-
242
-
-
84990248946
-
Circuit-based interrogation of sleep control
-
Weber, F., and Y. Dan, 2016 Circuit-based interrogation of sleep control. Nature 538: 51-59
-
(2016)
Nature
, vol.538
, pp. 51-59
-
-
Weber, F.1
Dan, Y.2
-
243
-
-
77951927020
-
Suprachiasmatic nucleus: Cell autonomy and network properties. Annu
-
Welsh, D. K., J. S. Takahashi, and S. A. Kay, 2010 Suprachiasmatic nucleus: cell autonomy and network properties. Annu. Rev. Physiol. 72: 551-577
-
(2010)
Rev. Physiol
, vol.72
, pp. 551-577
-
-
Welsh, D.K.1
Takahashi, J.S.2
Kay, S.A.3
-
244
-
-
0027564206
-
Behavior in light-dark cycles of Drosophila mutants that are arrhythmic, blind, or both
-
Wheeler, D. A., M. J. Hamblen-Coyle, M. S. Dushay, and J. C. Hall, 1993 Behavior in light-dark cycles of Drosophila mutants that are arrhythmic, blind, or both. J. Biol. Rhythms 8: 67-94
-
(1993)
J. Biol. Rhythms
, vol.8
, pp. 67-94
-
-
Wheeler, D.A.1
Hamblen-Coyle, M.J.2
Dushay, M.S.3
Hall, J.C.4
-
245
-
-
33645766967
-
Control of daily transcript oscillations in Drosophila by light and the circadian clock
-
Wijnen, H., F. Naef, C. Boothroyd, A. Claridge-Chang, and M. W. Young, 2006 Control of daily transcript oscillations in Drosophila by light and the circadian clock. PLoS Genet. 2: e39
-
(2006)
Plos Genet
, pp. 2
-
-
Wijnen, H.1
Naef, F.2
Boothroyd, C.3
Claridge-Chang, A.4
Young, M.W.5
-
246
-
-
34247585988
-
Interaction between sleep and the immune response in Drosophila: A role for the NFkB elish
-
Williams, J. A., S. Sathyanarayanana, J. C. Hendricks, and A. Sehgal, 2007 Interaction between sleep and the immune response in Drosophila: a role for the NFkB elish. Sleep 30: 389-400
-
(2007)
Sleep
, vol.30
, pp. 389-400
-
-
Williams, J.A.1
Sathyanarayanana, S.2
Hendricks, J.C.3
Sehgal, A.4
-
247
-
-
84898286053
-
The Pyrexia transient receptor potential channel mediates circadian clock synchronization to low temperatures cycles in Drosophila melanogaster.
-
Wolfgang, W., A. Simoni, C. Gentile, and R. Stanewsky, 2013 The Pyrexia transient receptor potential channel mediates circadian clock synchronization to low temperatures cycles in Drosophila melanogaster. Proc. Biol. Sci. 280: 20130959
-
(2013)
Proc. Biol. Sci
, vol.280
-
-
Wolfgang, W.1
Simoni, A.2
Gentile, C.3
Stanewsky, R.4
-
248
-
-
73949103017
-
SLEEPLESS, a Ly-6/neurotoxin family member, regulates the levels, localization and activity of Shaker.
-
Wu, M. N., W. J. Joiner, T. Dean, Z. Yue, C. J. Smith et al., 2009 SLEEPLESS, a Ly-6/neurotoxin family member, regulates the levels, localization and activity of Shaker. Nat. Neurosci. 13: 69-75
-
(2009)
Nat. Neurosci
, vol.13
, pp. 69-75
-
-
Wu, M.N.1
Joiner, W.J.2
Dean, T.3
Yue, Z.4
Smith, C.J.5
-
249
-
-
84896549341
-
SLEEPLESS is a bifunctional regulator of excitability and cholinergic synaptic transmission
-
Wu, M., J. E. Robinson, and W. J. Joiner, 2014 SLEEPLESS is a bifunctional regulator of excitability and cholinergic synaptic transmission. Curr. Biol. 24: 621-629
-
(2014)
Curr. Biol
, vol.24
, pp. 621-629
-
-
Wu, M.1
Robinson, J.E.2
Joiner, W.J.3
-
250
-
-
84885775321
-
Sleep drives metabolite clearance from the adult brain
-
Xie, L., H. Kang, Q. Xu, M. J. Chen, Y. Liao et al., 2013 Sleep drives metabolite clearance from the adult brain. Science 342: 373-377
-
(2013)
Science
, vol.342
, pp. 373-377
-
-
Xie, L.1
Kang, H.2
Xu, Q.3
Chen, M.J.4
Liao, Y.5
-
251
-
-
79958072411
-
The circadian clock interacts with metabolic physiology to influence reproductive fitness
-
Xu, K., J. R. DiAngelo, M. E. Hughes, J. B. Hogenesch, and A. Sehgal, 2011 The circadian clock interacts with metabolic physiology to influence reproductive fitness. Cell Metab. 13: 639-654
-
(2011)
Cell Metab
, vol.13
, pp. 639-654
-
-
Xu, K.1
Diangelo, J.R.2
Hughes, M.E.3
Hogenesch, J.B.4
Sehgal, A.5
-
252
-
-
15844420887
-
Functional consequences of a CKId mutation causing familial advanced sleep phase syndrome
-
Xu, Y., Q. S. Padiath, R. E. Shapiro, C. R. Jones, S. C. Wu et al., 2005 Functional consequences of a CKId mutation causing familial advanced sleep phase syndrome. Nature 434: 640-644
-
(2005)
Nature
, vol.434
, pp. 640-644
-
-
Xu, Y.1
Padiath, Q.S.2
Shapiro, R.E.3
Jones, C.R.4
Wu, S.C.5
-
253
-
-
84896996418
-
The Drosophila circadian clock is a variably coupled network of multiple peptidergic units
-
Yao, Z., and O. T. Shafer, 2014 The Drosophila circadian clock is a variably coupled network of multiple peptidergic units. Science 343: 1516-1520
-
(2014)
Science
, vol.343
, pp. 1516-1520
-
-
Yao, Z.1
Shafer, O.T.2
-
254
-
-
84960916789
-
Circadian light-input pathways in Drosophila. Commun. Integr
-
Yoshii, T., C. Hermann-Luibl, and C. Helfrich-Förster, 2016 Circadian light-input pathways in Drosophila. Commun. Integr. Biol. 9: e1102805
-
(2016)
Biol
, pp. 9
-
-
Yoshii, T.1
Hermann-Luibl, C.2
Helfrich-Förster, C.3
-
255
-
-
25844484674
-
Temperature cycles drive Drosophila circadian oscillation in constant light that otherwise induces behavioural arrhythmicity
-
Yoshii, T., Y. Heshiki, T. Ibuki-Ishibashi, A. Matsumoto, T. Tanimura et al., 2005 Temperature cycles drive Drosophila circadian oscillation in constant light that otherwise induces behavioural arrhythmicity. Eur. J. Neurosci. 22: 1176-1184
-
(2005)
Eur. J. Neurosci
, vol.22
, pp. 1176-1184
-
-
Yoshii, T.1
Heshiki, Y.2
Ibuki-Ishibashi, T.3
Matsumoto, A.4
Tanimura, T.5
-
256
-
-
43749091967
-
Cryptochrome is present in the compound eyes and a subset of Drosophila’s clock neurons
-
Yoshii, T., T. Todo, C. Wülbeck, R. Stanewsky, and C. Helfrich-Förster, 2008 Cryptochrome is present in the compound eyes and a subset of Drosophila’s clock neurons. J. Comp. Neurol. 508: 952-966
-
(2008)
J. Comp. Neurol
, vol.508
, pp. 952-966
-
-
Yoshii, T.1
Todo, T.2
Wülbeck, C.3
Stanewsky, R.4
Helfrich-Förster, C.5
-
257
-
-
70450186286
-
Synergic entrainment of Drosophila’s circadian clock by light and temperature
-
Yoshii, T., S. Vanin, R. Costa, and C. Helfrich-Förster, 2009a Synergic entrainment of Drosophila’s circadian clock by light and temperature. J. Biol. Rhythms 24: 452-464
-
(2009)
J. Biol. Rhythms
, vol.24
, pp. 452-464
-
-
Yoshii, T.1
Vanin, S.2
Costa, R.3
Helfrich-Förster, C.4
-
258
-
-
61449178808
-
The neuropeptide pigment-dispersing factor adjusts period and phase of Drosophila’s clock
-
Yoshii, T., C. Wulbeck, H. Sehadova, S. Veleri, D. Bichler et al., 2009b The neuropeptide pigment-dispersing factor adjusts period and phase of Drosophila’s clock. J. Neurosci. 29: 2597-2610
-
(2009)
J. Neurosci
, vol.29
, pp. 2597-2610
-
-
Yoshii, T.1
Wulbeck, C.2
Sehadova, H.3
Veleri, S.4
Bichler, D.5
-
259
-
-
84929236504
-
Cryptochrome-dependent and-independent circadian entrainment circuits in Drosophila
-
Yoshii, T., C. Hermann-Luibl, C. Kistenpfennig, B. Schmid, K. Tomioka et al., 2015 Cryptochrome-dependent and-independent circadian entrainment circuits in Drosophila. J. Neurosci. 35: 6131-6141
-
(2015)
J. Neurosci
, vol.35
, pp. 6131-6141
-
-
Yoshii, T.1
Hermann-Luibl, C.2
Kistenpfennig, C.3
Schmid, B.4
Tomioka, K.5
-
260
-
-
0023152057
-
Molecular mapping of point mutations in the period gene that stop or speed up biological clocks in Drosophila melanogaster
-
Yu, Q., A. C. Jacquier, Y. Citri, M. Hamblen, J. C. Hall et al., 1987 Molecular mapping of point mutations in the period gene that stop or speed up biological clocks in Drosophila melanogaster. Proc. Natl. Acad. Sci. USA 84: 784-788
-
(1987)
Proc. Natl. Acad. Sci. USA
, vol.84
, pp. 784-788
-
-
Yu, Q.1
Jacquier, A.C.2
Citri, Y.3
Hamblen, M.4
Hall, J.C.5
-
261
-
-
33744532825
-
A sleep-promoting role for the Drosophila serotonin receptor 1A
-
Yuan, Q., W. J. Joiner, and A. Sehgal, 2006 A sleep-promoting role for the Drosophila serotonin receptor 1A. Curr. Biol. 16: 1051-1062
-
(2006)
Curr. Biol
, vol.16
, pp. 1051-1062
-
-
Yuan, Q.1
Joiner, W.J.2
Sehgal, A.3
-
262
-
-
0021682879
-
P-element transformation with period locus DNA restores rhythmicity to mutant, arrhythmic Drosophila melanogaster
-
Zehring, W. A., D. A. Wheeler, P. Reddy, R. J. Konopka, C. P. Kyriacou et al., 1984 P-element transformation with period locus DNA restores rhythmicity to mutant, arrhythmic Drosophila melanogaster. Cell 39: 369-376
-
(1984)
Cell
, vol.39
, pp. 369-376
-
-
Zehring, W.A.1
Wheeler, D.A.2
Reddy, P.3
Konopka, R.J.4
Kyriacou, C.P.5
-
263
-
-
0029979174
-
A lightentrainment mechanism for the Drosophila circadian clock
-
Zeng, H., Z. Qian, M. P. Myers, and M. Rosbash, 1996 A lightentrainment mechanism for the Drosophila circadian clock. Nature 380: 129-135
-
(1996)
Nature
, vol.380
, pp. 129-135
-
-
Zeng, H.1
Qian, Z.2
Myers, M.P.3
Rosbash, M.4
-
264
-
-
0025468873
-
Circadian fluctuations of period protein lmmunoreactivity in the CNS and the visual system of Drosophila
-
Zerr, D. M., J. C. Hall, M. Rosbash, and K. K. Siwicki, 1990 Circadian fluctuations of period protein lmmunoreactivity in the CNS and the visual system of Drosophila. J. Neurosci. 10: 2749-2762
-
(1990)
J. Neurosci
, vol.10
, pp. 2749-2762
-
-
Zerr, D.M.1
Hall, J.C.2
Rosbash, M.3
Siwicki, K.K.4
-
265
-
-
84877733547
-
A role for Drosophila ATX2 in activation of PER translation and circadian behavior
-
Zhang, Y., J. Ling, C. Yuan, R. Dubruille, and P. Emery, 2013 A role for Drosophila ATX2 in activation of PER translation and circadian behavior. Science 340: 879-882
-
(2013)
Science
, vol.340
, pp. 879-882
-
-
Zhang, Y.1
Ling, J.2
Yuan, C.3
Dubruille, R.4
Emery, P.5
-
266
-
-
77950495934
-
DN1p circadian neurons coordinate acute light and PDF inputs to produce robust daily behavior in Drosophila
-
Zhang, L., B. Y. Chung, B. C. Lear, V. L. Kilman, Y. Liu et al., 2010 DN1p circadian neurons coordinate acute light and PDF inputs to produce robust daily behavior in Drosophila. Curr. Biol. 20: 591-599
-
(2010)
Curr. Biol
, vol.20
, pp. 591-599
-
-
Zhang, L.1
Chung, B.Y.2
Lear, B.C.3
Kilman, V.L.4
Liu, Y.5
-
267
-
-
77950484547
-
Light and temperature control the contribution of specific DN1 neurons to Drosophila circadian behavior
-
Zhang, Y., Y. Liu, D. Bilodeau-Wentworth, P. E. Hardin, and P. Emery, 2010 Light and temperature control the contribution of specific DN1 neurons to Drosophila circadian behavior. Curr. Biol. 20: 600-605
-
(2010)
Curr. Biol
, vol.20
, pp. 600-605
-
-
Zhang, Y.1
Liu, Y.2
Bilodeau-Wentworth, D.3
Hardin, P.E.4
Emery, P.5
-
268
-
-
84865571932
-
Speed control: Cogs and gears that drive the circadian clock
-
Zheng, X., and A. Sehgal, 2012 Speed control: cogs and gears that drive the circadian clock. Trends Neurosci. 35: 574-585
-
(2012)
Trends Neurosci
, vol.35
, pp. 574-585
-
-
Zheng, X.1
Sehgal, A.2
-
269
-
-
84902649229
-
Casein kinase 1 promotes synchrony of the circadian clock network.
-
Zheng, X., M. Sowcik, D. Chen, and A. Sehgal, 2014 Casein kinase 1 promotes synchrony of the circadian clock network. Mol. Cell. Biol. 34: 2682-2694
-
(2014)
Mol. Cell. Biol
, vol.34
, pp. 2682-2694
-
-
Zheng, X.1
Sowcik, M.2
Chen, D.3
Sehgal, A.4
-
270
-
-
28444447141
-
The two CRYs of the butterfly
-
Zhu, H., Q. Yuan, O. Froy, A. Casselman, and S. M. Reppert, 2005 The two CRYs of the butterfly. Curr. Biol. 15: R953-R954
-
(2005)
Curr. Biol
, vol.15
, pp. R953-R954
-
-
Zhu, H.1
Yuan, Q.2
Froy, O.3
Casselman, A.4
Reppert, S.M.5
-
271
-
-
34247560334
-
Multiple mechanisms limit the duration of wakefulness in Drosophila brain. Physiol
-
Zimmerman, J. E., W. Rizzo, K. R. Shockley, D. M. Raizen, N. Naidoo et al., 2006 Multiple mechanisms limit the duration of wakefulness in Drosophila brain. Physiol. Genomics 27: 337-350
-
(2006)
Genomics
, vol.27
, pp. 337-350
-
-
Zimmerman, J.E.1
Rizzo, W.2
Shockley, K.R.3
Raizen, D.M.4
Naidoo, N.5
-
272
-
-
55549104076
-
A video method to study Drosophila sleep
-
Zimmerman, J. E., D. M. Raizen, M. H. Maycock, G. Maislin, and A. I. Pack, 2008 A video method to study Drosophila sleep. Sleep 31: 1587-1598
-
(2008)
Sleep
, vol.31
, pp. 1587-1598
-
-
Zimmerman, J.E.1
Raizen, D.M.2
Maycock, M.H.3
Maislin, G.4
Pack, A.I.5
-
273
-
-
84859857710
-
Genetic background has a major impact on differences in sleep resulting from environmental influences in Drosophila
-
Zimmerman, J. E., M. T. Chan, N. Jackson, G. Maislin, and A. I. Pack, 2012 Genetic background has a major impact on differences in sleep resulting from environmental influences in Drosophila. Sleep 35: 545-557
-
(2012)
Sleep
, vol.35
, pp. 545-557
-
-
Zimmerman, J.E.1
Chan, M.T.2
Jackson, N.3
Maislin, G.4
Pack, A.I.5
|