-
3
-
-
0033843592
-
Physiological effects of light on the human circadian pacemaker
-
Shanahan T.L., and Czeisler C.A. Physiological effects of light on the human circadian pacemaker. Semin. Perinatol. 24 (2000) 299-320
-
(2000)
Semin. Perinatol.
, vol.24
, pp. 299-320
-
-
Shanahan, T.L.1
Czeisler, C.A.2
-
4
-
-
11844259365
-
Sleepless in America: a pathway to obesity and the metabolic syndrome?
-
Bass J., and Turek F.W. Sleepless in America: a pathway to obesity and the metabolic syndrome?. Arch. Intern. Med. 165 (2005) 15-16
-
(2005)
Arch. Intern. Med.
, vol.165
, pp. 15-16
-
-
Bass, J.1
Turek, F.W.2
-
5
-
-
30044448307
-
When the Clock stops ticking, metabolic syndrome explodes
-
Staels B. When the Clock stops ticking, metabolic syndrome explodes. Nat. Med. 12 (2006) 54-55
-
(2006)
Nat. Med.
, vol.12
, pp. 54-55
-
-
Staels, B.1
-
7
-
-
28844502722
-
Timeline: circadian clocks - the fall and rise of physiology
-
Roenneberg T., and Merrow M. Timeline: circadian clocks - the fall and rise of physiology. Nat. Rev. Mol. Cell Biol. 6 (2005) 965-971
-
(2005)
Nat. Rev. Mol. Cell Biol.
, vol.6
, pp. 965-971
-
-
Roenneberg, T.1
Merrow, M.2
-
8
-
-
0042490526
-
A clockwork web: circadian timing in brain and periphery, in health and disease
-
Hastings M.H., et al. A clockwork web: circadian timing in brain and periphery, in health and disease. Nat. Rev. Neurosci. 4 (2003) 649-661
-
(2003)
Nat. Rev. Neurosci.
, vol.4
, pp. 649-661
-
-
Hastings, M.H.1
-
9
-
-
14644423201
-
Orchestrating time: arrangements of the brain circadian clock
-
Antle M.C., and Silver R. Orchestrating time: arrangements of the brain circadian clock. Trends Neurosci. 28 (2005) 145-151
-
(2005)
Trends Neurosci.
, vol.28
, pp. 145-151
-
-
Antle, M.C.1
Silver, R.2
-
10
-
-
0025021084
-
Transplanted suprachiasmatic nucleus determines circadian period
-
Ralph M.R., et al. Transplanted suprachiasmatic nucleus determines circadian period. Science 247 (1990) 975-978
-
(1990)
Science
, vol.247
, pp. 975-978
-
-
Ralph, M.R.1
-
11
-
-
0035930732
-
Regulation of daily locomotor activity and sleep by hypothalamic EGF receptor signaling
-
Kramer A., et al. Regulation of daily locomotor activity and sleep by hypothalamic EGF receptor signaling. Science 294 (2001) 2511-2515
-
(2001)
Science
, vol.294
, pp. 2511-2515
-
-
Kramer, A.1
-
12
-
-
0029781519
-
A diffusible coupling signal from the transplanted suprachiasmatic nucleus controlling circadian locomotor rhythms
-
Silver R., et al. A diffusible coupling signal from the transplanted suprachiasmatic nucleus controlling circadian locomotor rhythms. Nature 382 (1996) 810-813
-
(1996)
Nature
, vol.382
, pp. 810-813
-
-
Silver, R.1
-
13
-
-
0037161808
-
Prokineticin 2 transmits the behavioural circadian rhythm of the suprachiasmatic nucleus
-
Cheng M.Y., et al. Prokineticin 2 transmits the behavioural circadian rhythm of the suprachiasmatic nucleus. Nature 417 (2002) 405-410
-
(2002)
Nature
, vol.417
, pp. 405-410
-
-
Cheng, M.Y.1
-
14
-
-
0032896113
-
Effects of suprachiasmatic transplants on circadian rhythms of neuroendocrine function in golden hamsters
-
Meyer-Bernstein E.L., et al. Effects of suprachiasmatic transplants on circadian rhythms of neuroendocrine function in golden hamsters. Endocrinology 140 (1999) 207-218
-
(1999)
Endocrinology
, vol.140
, pp. 207-218
-
-
Meyer-Bernstein, E.L.1
-
15
-
-
33646468639
-
The regulation of neuroendocrine function: timing is everything
-
Kriegsfeld L.J., and Silver R. The regulation of neuroendocrine function: timing is everything. Horm. Behav. 49 (2006) 557-574
-
(2006)
Horm. Behav.
, vol.49
, pp. 557-574
-
-
Kriegsfeld, L.J.1
Silver, R.2
-
16
-
-
14644435678
-
The hypothalamic integrator for circadian rhythms
-
Saper C.B., et al. The hypothalamic integrator for circadian rhythms. Trends Neurosci. 28 (2005) 152-157
-
(2005)
Trends Neurosci.
, vol.28
, pp. 152-157
-
-
Saper, C.B.1
-
17
-
-
0035991390
-
Output pathways of the mammalian suprachiasmatic nucleus: coding circadian time by transmitter selection and specific targeting
-
Kalsbeek A., and Buijs R.M. Output pathways of the mammalian suprachiasmatic nucleus: coding circadian time by transmitter selection and specific targeting. Cell Tissue Res. 309 (2002) 109-118
-
(2002)
Cell Tissue Res.
, vol.309
, pp. 109-118
-
-
Kalsbeek, A.1
Buijs, R.M.2
-
18
-
-
0033038418
-
Interacting appetite-regulating pathways in the hypothalamic regulation of body weight
-
Kalra S.P., et al. Interacting appetite-regulating pathways in the hypothalamic regulation of body weight. Endocr. Rev. 20 (1999) 68-100
-
(1999)
Endocr. Rev.
, vol.20
, pp. 68-100
-
-
Kalra, S.P.1
-
19
-
-
0035847577
-
The suprachiasmatic nucleus projects to posterior hypothalamic arousal systems
-
Abrahamson E.E., et al. The suprachiasmatic nucleus projects to posterior hypothalamic arousal systems. Neuroreport 12 (2001) 435-440
-
(2001)
Neuroreport
, vol.12
, pp. 435-440
-
-
Abrahamson, E.E.1
-
20
-
-
0033082380
-
From lesions to leptin: hypothalamic control of food intake and body weight
-
Elmquist J.K., et al. From lesions to leptin: hypothalamic control of food intake and body weight. Neuron 22 (1999) 221-232
-
(1999)
Neuron
, vol.22
, pp. 221-232
-
-
Elmquist, J.K.1
-
21
-
-
0034994462
-
SCN efferents to peripheral tissues: implications for biological rhythms
-
Bartness T.J., et al. SCN efferents to peripheral tissues: implications for biological rhythms. J. Biol. Rhythms 16 (2001) 196-204
-
(2001)
J. Biol. Rhythms
, vol.16
, pp. 196-204
-
-
Bartness, T.J.1
-
22
-
-
0035911803
-
Parasympathetic and sympathetic control of the pancreas: a role for the suprachiasmatic nucleus and other hypothalamic centers that are involved in the regulation of food intake
-
Buijs R.M., et al. Parasympathetic and sympathetic control of the pancreas: a role for the suprachiasmatic nucleus and other hypothalamic centers that are involved in the regulation of food intake. J. Comp. Neurol. 431 (2001) 405-423
-
(2001)
J. Comp. Neurol.
, vol.431
, pp. 405-423
-
-
Buijs, R.M.1
-
23
-
-
32644439916
-
The brain and the metabolic syndrome: not a wireless connection
-
Perez-Tilve D., et al. The brain and the metabolic syndrome: not a wireless connection. Endocrinology 147 (2006) 1136-1139
-
(2006)
Endocrinology
, vol.147
, pp. 1136-1139
-
-
Perez-Tilve, D.1
-
24
-
-
32644451260
-
Tracing from fat tissue, liver, and pancreas: a neuroanatomical framework for the role of the brain in type 2 diabetes
-
Kreier F., et al. Tracing from fat tissue, liver, and pancreas: a neuroanatomical framework for the role of the brain in type 2 diabetes. Endocrinology 147 (2006) 1140-1147
-
(2006)
Endocrinology
, vol.147
, pp. 1140-1147
-
-
Kreier, F.1
-
25
-
-
16244383657
-
A brain-liver circuit regulates glucose homeostasis
-
Pocai A., et al. A brain-liver circuit regulates glucose homeostasis. Cell Metab. 1 (2005) 53-61
-
(2005)
Cell Metab.
, vol.1
, pp. 53-61
-
-
Pocai, A.1
-
26
-
-
33344469291
-
The dorsomedial hypothalamic nucleus is critical for the expression of food-entrainable circadian rhythms
-
Gooley J.J., et al. The dorsomedial hypothalamic nucleus is critical for the expression of food-entrainable circadian rhythms. Nat. Neurosci. 9 (2006) 398-407
-
(2006)
Nat. Neurosci.
, vol.9
, pp. 398-407
-
-
Gooley, J.J.1
-
27
-
-
33747058480
-
The dorsomedial hypothalamic nucleus as a putative food-entrainable circadian pacemaker
-
Mieda M., et al. The dorsomedial hypothalamic nucleus as a putative food-entrainable circadian pacemaker. Proc. Natl. Acad. Sci. U. S. A. 103 (2006) 12150-12155
-
(2006)
Proc. Natl. Acad. Sci. U. S. A.
, vol.103
, pp. 12150-12155
-
-
Mieda, M.1
-
28
-
-
33744832402
-
Persistence of a behavioral food-anticipatory circadian rhythm following dorsomedial hypothalamic ablation in rats
-
Landry G.J., et al. Persistence of a behavioral food-anticipatory circadian rhythm following dorsomedial hypothalamic ablation in rats. Am. J. Physiol. Regul. Integr. Comp. Physiol. 290 (2006) R1527-R1534
-
(2006)
Am. J. Physiol. Regul. Integr. Comp. Physiol.
, vol.290
-
-
Landry, G.J.1
-
29
-
-
0028215250
-
Circadian food-anticipatory activity: formal models and physiological mechanisms
-
Mistlberger R.E. Circadian food-anticipatory activity: formal models and physiological mechanisms. Neurosci. Biobehav. Rev. 18 (1994) 171-195
-
(1994)
Neurosci. Biobehav. Rev.
, vol.18
, pp. 171-195
-
-
Mistlberger, R.E.1
-
30
-
-
0036674316
-
The 'other' circadian system: food as a Zeitgeber
-
Stephan F.K. The 'other' circadian system: food as a Zeitgeber. J. Biol. Rhythms 17 (2002) 284-292
-
(2002)
J. Biol. Rhythms
, vol.17
, pp. 284-292
-
-
Stephan, F.K.1
-
32
-
-
0030885313
-
RIGUI, a putative mammalian ortholog of the Drosophila period gene
-
Sun Z.S., et al. RIGUI, a putative mammalian ortholog of the Drosophila period gene. Cell 90 (1997) 1003-1011
-
(1997)
Cell
, vol.90
, pp. 1003-1011
-
-
Sun, Z.S.1
-
33
-
-
0030800739
-
Circadian oscillation of a mammalian homologue of the Drosophila period gene
-
Tei H., et al. Circadian oscillation of a mammalian homologue of the Drosophila period gene. Nature 389 (1997) 512-516
-
(1997)
Nature
, vol.389
, pp. 512-516
-
-
Tei, H.1
-
34
-
-
0345596433
-
A differential response of two putative mammalian circadian regulators, mper1 and mper2, to light
-
Albrecht U., et al. A differential response of two putative mammalian circadian regulators, mper1 and mper2, to light. Cell 91 (1997) 1055-1064
-
(1997)
Cell
, vol.91
, pp. 1055-1064
-
-
Albrecht, U.1
-
35
-
-
0031472474
-
Two period homologs: circadian expression and photic regulation in the suprachiasmatic nuclei
-
Shearman L.P., et al. Two period homologs: circadian expression and photic regulation in the suprachiasmatic nuclei. Neuron 19 (1997) 1261-1269
-
(1997)
Neuron
, vol.19
, pp. 1261-1269
-
-
Shearman, L.P.1
-
36
-
-
7344261271
-
A new mammalian period gene predominantly expressed in the suprachiasmatic nucleus
-
Takumi T., et al. A new mammalian period gene predominantly expressed in the suprachiasmatic nucleus. Genes Cells 3 (1998) 167-176
-
(1998)
Genes Cells
, vol.3
, pp. 167-176
-
-
Takumi, T.1
-
37
-
-
0032541435
-
A light-independent oscillatory gene mPer3 in mouse SCN and OVLT
-
Takumi T., et al. A light-independent oscillatory gene mPer3 in mouse SCN and OVLT. EMBO J. 17 (1998) 4753-4759
-
(1998)
EMBO J.
, vol.17
, pp. 4753-4759
-
-
Takumi, T.1
-
38
-
-
0025044560
-
Feedback of the Drosophila period gene product on circadian cycling of its messenger RNA levels
-
Hardin P.E., et al. Feedback of the Drosophila period gene product on circadian cycling of its messenger RNA levels. Nature 343 (1990) 536-540
-
(1990)
Nature
, vol.343
, pp. 536-540
-
-
Hardin, P.E.1
-
39
-
-
15044341917
-
Cellular oscillators: rhythmic gene expression and metabolism
-
Schibler U., and Naef F. Cellular oscillators: rhythmic gene expression and metabolism. Curr. Opin. Cell Biol. 17 (2005) 223-229
-
(2005)
Curr. Opin. Cell Biol.
, vol.17
, pp. 223-229
-
-
Schibler, U.1
Naef, F.2
-
40
-
-
20044396172
-
A noncanonical E-box enhancer drives mouse Period2 circadian oscillations in vivo
-
Yoo S.H., et al. A noncanonical E-box enhancer drives mouse Period2 circadian oscillations in vivo. Proc. Natl. Acad. Sci. U. S. A. 102 (2005) 2608-2613
-
(2005)
Proc. Natl. Acad. Sci. U. S. A.
, vol.102
, pp. 2608-2613
-
-
Yoo, S.H.1
-
41
-
-
33749031807
-
Molecular components of the mammalian circadian clock
-
Ko C.H., and Takahashi J.S. Molecular components of the mammalian circadian clock. Hum. Mol. Genet. 15 Suppl. 2 (2006) R271-R277
-
(2006)
Hum. Mol. Genet.
, vol.15
, Issue.SUPPL. 2
-
-
Ko, C.H.1
Takahashi, J.S.2
-
42
-
-
13944254430
-
System-level identification of transcriptional circuits underlying mammalian circadian clocks
-
Ueda H.R., et al. System-level identification of transcriptional circuits underlying mammalian circadian clocks. Nat. Genet. 37 (2005) 187-192
-
(2005)
Nat. Genet.
, vol.37
, pp. 187-192
-
-
Ueda, H.R.1
-
43
-
-
0037178787
-
The orphan nuclear receptor REV-ERBα controls circadian transcription within the positive limb of the mammalian circadian oscillator
-
Preitner N., et al. The orphan nuclear receptor REV-ERBα controls circadian transcription within the positive limb of the mammalian circadian oscillator. Cell 110 (2002) 251-260
-
(2002)
Cell
, vol.110
, pp. 251-260
-
-
Preitner, N.1
-
44
-
-
0024522826
-
A novel member of the thyroid/steroid hormone receptor family is encoded by the opposite strand of the rat c-erbA α transcriptional unit
-
Lazar M.A., et al. A novel member of the thyroid/steroid hormone receptor family is encoded by the opposite strand of the rat c-erbA α transcriptional unit. Mol. Cell. Biol. 9 (1989) 1128-1136
-
(1989)
Mol. Cell. Biol.
, vol.9
, pp. 1128-1136
-
-
Lazar, M.A.1
-
45
-
-
12644279862
-
Molecular characterization of two mammalian bHLH-PAS domain proteins selectively expressed in the central nervous system
-
Zhou Y.D., et al. Molecular characterization of two mammalian bHLH-PAS domain proteins selectively expressed in the central nervous system. Proc. Natl. Acad. Sci. U. S. A. 94 (1997) 713-718
-
(1997)
Proc. Natl. Acad. Sci. U. S. A.
, vol.94
, pp. 713-718
-
-
Zhou, Y.D.1
-
46
-
-
33644625748
-
Feedback repression is required for mammalian circadian clock function
-
Sato T.K., et al. Feedback repression is required for mammalian circadian clock function. Nat. Genet. 38 (2006) 312-319
-
(2006)
Nat. Genet.
, vol.38
, pp. 312-319
-
-
Sato, T.K.1
-
47
-
-
33745503975
-
JETLAG resets the Drosophila circadian clock by promoting light-induced degradation of TIMELESS
-
Koh K., et al. JETLAG resets the Drosophila circadian clock by promoting light-induced degradation of TIMELESS. Science 312 (2006) 1809-1812
-
(2006)
Science
, vol.312
, pp. 1809-1812
-
-
Koh, K.1
-
48
-
-
33645961290
-
Large-scale mutagenesis and phenotypic screens for the nervous system and behavior in mice
-
Vitaterna M.H., et al. Large-scale mutagenesis and phenotypic screens for the nervous system and behavior in mice. Trends Neurosci. 29 (2006) 233-240
-
(2006)
Trends Neurosci.
, vol.29
, pp. 233-240
-
-
Vitaterna, M.H.1
-
49
-
-
4544219781
-
Finding new clock components: past and future
-
Takahashi J.S. Finding new clock components: past and future. J. Biol. Rhythms 19 (2004) 339-347
-
(2004)
J. Biol. Rhythms
, vol.19
, pp. 339-347
-
-
Takahashi, J.S.1
-
50
-
-
0038681910
-
Drosophila clock can generate ectopic circadian clocks
-
Zhao J., et al. Drosophila clock can generate ectopic circadian clocks. Cell 113 (2003) 755-766
-
(2003)
Cell
, vol.113
, pp. 755-766
-
-
Zhao, J.1
-
51
-
-
33646130147
-
A clock shock: mouse CLOCK is not required for circadian oscillator function
-
Debruyne J.P., et al. A clock shock: mouse CLOCK is not required for circadian oscillator function. Neuron 50 (2006) 465-477
-
(2006)
Neuron
, vol.50
, pp. 465-477
-
-
Debruyne, J.P.1
-
52
-
-
0034697099
-
Positional syntenic cloning and functional characterization of the mammalian circadian mutation tau
-
Lowrey P.L., et al. Positional syntenic cloning and functional characterization of the mammalian circadian mutation tau. Science 288 (2000) 483-492
-
(2000)
Science
, vol.288
, pp. 483-492
-
-
Lowrey, P.L.1
-
53
-
-
22344447747
-
Casein kinase 2, circadian clocks, and the flight from mutagenic light
-
Allada R., and Meissner R.A. Casein kinase 2, circadian clocks, and the flight from mutagenic light. Mol. Cell. Biochem. 274 (2005) 141-149
-
(2005)
Mol. Cell. Biochem.
, vol.274
, pp. 141-149
-
-
Allada, R.1
Meissner, R.A.2
-
54
-
-
0037086535
-
Nucleocytoplasmic shuttling and mCRY-dependent inhibition of ubiquitylation of the mPER2 clock protein
-
Yagita K., et al. Nucleocytoplasmic shuttling and mCRY-dependent inhibition of ubiquitylation of the mPER2 clock protein. EMBO J. 21 (2002) 1301-1314
-
(2002)
EMBO J.
, vol.21
, pp. 1301-1314
-
-
Yagita, K.1
-
55
-
-
0042626226
-
BMAL1-dependent circadian oscillation of nuclear CLOCK: posttranslational events induced by dimerization of transcriptional activators of the mammalian clock system
-
Kondratov R.V., et al. BMAL1-dependent circadian oscillation of nuclear CLOCK: posttranslational events induced by dimerization of transcriptional activators of the mammalian clock system. Genes Dev. 17 (2003) 1921-1932
-
(2003)
Genes Dev.
, vol.17
, pp. 1921-1932
-
-
Kondratov, R.V.1
-
56
-
-
17244373578
-
Reconstitution of circadian oscillation of cyanobacterial KaiC phosphorylation in vitro
-
Nakajima M., et al. Reconstitution of circadian oscillation of cyanobacterial KaiC phosphorylation in vitro. Science 308 (2005) 414-415
-
(2005)
Science
, vol.308
, pp. 414-415
-
-
Nakajima, M.1
-
57
-
-
0032511229
-
A serum shock induces circadian gene expression in mammalian tissue culture cells
-
Balsalobre A., et al. A serum shock induces circadian gene expression in mammalian tissue culture cells. Cell 93 (1998) 929-937
-
(1998)
Cell
, vol.93
, pp. 929-937
-
-
Balsalobre, A.1
-
58
-
-
0034724728
-
Resetting central and peripheral circadian oscillators in transgenic rats
-
Yamazaki S., et al. Resetting central and peripheral circadian oscillators in transgenic rats. Science 288 (2000) 682-685
-
(2000)
Science
, vol.288
, pp. 682-685
-
-
Yamazaki, S.1
-
59
-
-
0035910387
-
Entrainment of the circadian clock in the liver by feeding
-
Stokkan K.A., et al. Entrainment of the circadian clock in the liver by feeding. Science 291 (2001) 490-493
-
(2001)
Science
, vol.291
, pp. 490-493
-
-
Stokkan, K.A.1
-
60
-
-
18444414586
-
Coordinated transcription of key pathways in the mouse by the circadian clock
-
Panda S., et al. Coordinated transcription of key pathways in the mouse by the circadian clock. Cell 109 (2002) 307-320
-
(2002)
Cell
, vol.109
, pp. 307-320
-
-
Panda, S.1
-
61
-
-
33645768796
-
Circadian clocks are resounding in peripheral tissues
-
Ptitsyn A.A., et al. Circadian clocks are resounding in peripheral tissues. PLoS Comput. Biol. 2 (2006) e16
-
(2006)
PLoS Comput. Biol.
, vol.2
-
-
Ptitsyn, A.A.1
-
62
-
-
0036682099
-
A transcription factor response element for gene expression during circadian night
-
Ueda H.R., et al. A transcription factor response element for gene expression during circadian night. Nature 418 (2002) 534-539
-
(2002)
Nature
, vol.418
, pp. 534-539
-
-
Ueda, H.R.1
-
63
-
-
0037007625
-
Extensive and divergent circadian gene expression in liver and heart
-
Storch K.F., et al. Extensive and divergent circadian gene expression in liver and heart. Nature 417 (2002) 78-83
-
(2002)
Nature
, vol.417
, pp. 78-83
-
-
Storch, K.F.1
-
64
-
-
33645790960
-
Characterization of peripheral circadian clocks in adipose tissues
-
Zvonic S., et al. Characterization of peripheral circadian clocks in adipose tissues. Diabetes 55 (2006) 962-970
-
(2006)
Diabetes
, vol.55
, pp. 962-970
-
-
Zvonic, S.1
-
65
-
-
33744515807
-
Circadian orchestration of the hepatic proteome
-
Reddy A.B., et al. Circadian orchestration of the hepatic proteome. Curr. Biol. 16 (2006) 1107-1115
-
(2006)
Curr. Biol.
, vol.16
, pp. 1107-1115
-
-
Reddy, A.B.1
-
66
-
-
23944470712
-
Circadian clock control by SUMOylation of BMAL1
-
Cardone L., et al. Circadian clock control by SUMOylation of BMAL1. Science 309 (2005) 1390-1394
-
(2005)
Science
, vol.309
, pp. 1390-1394
-
-
Cardone, L.1
-
67
-
-
18444391229
-
SREBP-1 as a transcriptional integrator of circadian and nutritional cues in the liver
-
Brewer M., et al. SREBP-1 as a transcriptional integrator of circadian and nutritional cues in the liver. J. Biol. Rhythms 20 (2005) 195-205
-
(2005)
J. Biol. Rhythms
, vol.20
, pp. 195-205
-
-
Brewer, M.1
-
68
-
-
33747157406
-
Nuclear receptor expression links the circadian clock to metabolism
-
Yang X., et al. Nuclear receptor expression links the circadian clock to metabolism. Cell 126 (2006) 801-810
-
(2006)
Cell
, vol.126
, pp. 801-810
-
-
Yang, X.1
-
69
-
-
0027237512
-
Induction of Rev-ErbA α, an orphan receptor encoded on the opposite strand of the alpha-thyroid hormone receptor gene, during adipocyte differentiation
-
Chawla A., and Lazar M.A. Induction of Rev-ErbA α, an orphan receptor encoded on the opposite strand of the alpha-thyroid hormone receptor gene, during adipocyte differentiation. J. Biol. Chem. 268 (1993) 16265-16269
-
(1993)
J. Biol. Chem.
, vol.268
, pp. 16265-16269
-
-
Chawla, A.1
Lazar, M.A.2
-
70
-
-
4143142003
-
A functional genomics strategy reveals Rora as a component of the mammalian circadian clock
-
Sato T.K., et al. A functional genomics strategy reveals Rora as a component of the mammalian circadian clock. Neuron 43 (2004) 527-537
-
(2004)
Neuron
, vol.43
, pp. 527-537
-
-
Sato, T.K.1
-
71
-
-
4344668155
-
RORα regulates the expression of genes involved in lipid homeostasis in skeletal muscle cells: caveolin-3 and CPT-1 are direct targets of ROR
-
Lau P., et al. RORα regulates the expression of genes involved in lipid homeostasis in skeletal muscle cells: caveolin-3 and CPT-1 are direct targets of ROR. J. Biol. Chem. 279 (2004) 36828-36840
-
(2004)
J. Biol. Chem.
, vol.279
, pp. 36828-36840
-
-
Lau, P.1
-
72
-
-
22944434929
-
Serum retinol binding protein 4 contributes to insulin resistance in obesity and type 2 diabetes
-
Yang Q., et al. Serum retinol binding protein 4 contributes to insulin resistance in obesity and type 2 diabetes. Nature 436 (2005) 356-362
-
(2005)
Nature
, vol.436
, pp. 356-362
-
-
Yang, Q.1
-
73
-
-
0035967914
-
Regulation of CLOCK and MOP4 by nuclear hormone receptors in the vasculature: a humoral mechanism to reset a peripheral clock
-
McNamara P., et al. Regulation of CLOCK and MOP4 by nuclear hormone receptors in the vasculature: a humoral mechanism to reset a peripheral clock. Cell 105 (2001) 877-889
-
(2001)
Cell
, vol.105
, pp. 877-889
-
-
McNamara, P.1
-
74
-
-
0035875069
-
A role for the segment polarity gene shaggy/GSK-3 in the Drosophila circadian clock
-
Martinek S., et al. A role for the segment polarity gene shaggy/GSK-3 in the Drosophila circadian clock. Cell 105 (2001) 769-779
-
(2001)
Cell
, vol.105
, pp. 769-779
-
-
Martinek, S.1
-
75
-
-
33144465537
-
Nuclear receptor Rev-erbα is a critical lithium-sensitive component of the circadian clock
-
Yin L., et al. Nuclear receptor Rev-erbα is a critical lithium-sensitive component of the circadian clock. Science 311 (2006) 1002-1005
-
(2006)
Science
, vol.311
, pp. 1002-1005
-
-
Yin, L.1
-
76
-
-
33746591126
-
Reciprocal regulation of brain and muscle Arnt-like protein 1 and peroxisome proliferator-activated receptor α defines a novel positive feedback loop in the rodent liver circadian clock
-
Canaple L., et al. Reciprocal regulation of brain and muscle Arnt-like protein 1 and peroxisome proliferator-activated receptor α defines a novel positive feedback loop in the rodent liver circadian clock. Mol. Endocrinol. 20 (2006) 1715-1727
-
(2006)
Mol. Endocrinol.
, vol.20
, pp. 1715-1727
-
-
Canaple, L.1
-
77
-
-
15944382729
-
CLOCK is involved in the circadian transactivation of peroxisome-proliferator-activated receptor α (PPARα) in mice
-
Oishi K., et al. CLOCK is involved in the circadian transactivation of peroxisome-proliferator-activated receptor α (PPARα) in mice. Biochem. J. 386 (2005) 575-581
-
(2005)
Biochem. J.
, vol.386
, pp. 575-581
-
-
Oishi, K.1
-
78
-
-
26944446214
-
CLOCK/BMAL1 is involved in lipid metabolism via transactivation of the peroxisome proliferator-activated receptor (PPAR) response element
-
Inoue I., et al. CLOCK/BMAL1 is involved in lipid metabolism via transactivation of the peroxisome proliferator-activated receptor (PPAR) response element. J. Atheroscler. Thromb. 12 (2005) 169-174
-
(2005)
J. Atheroscler. Thromb.
, vol.12
, pp. 169-174
-
-
Inoue, I.1
-
79
-
-
24744470282
-
Brain and muscle Arnt-like protein-1 (BMAL1), a component of the molecular clock, regulates adipogenesis
-
Shimba S., et al. Brain and muscle Arnt-like protein-1 (BMAL1), a component of the molecular clock, regulates adipogenesis. Proc. Natl. Acad. Sci. U. S. A. 102 (2005) 12071-12076
-
(2005)
Proc. Natl. Acad. Sci. U. S. A.
, vol.102
, pp. 12071-12076
-
-
Shimba, S.1
-
80
-
-
0035919479
-
Regulation of clock and NPAS2 DNA binding by the redox state of NAD cofactors
-
Rutter J., et al. Regulation of clock and NPAS2 DNA binding by the redox state of NAD cofactors. Science 293 (2001) 510-514
-
(2001)
Science
, vol.293
, pp. 510-514
-
-
Rutter, J.1
-
81
-
-
20844461135
-
Obesity and metabolic syndrome in circadian Clock mutant mice
-
Turek F.W., et al. Obesity and metabolic syndrome in circadian Clock mutant mice. Science 308 (2005) 1043-1045
-
(2005)
Science
, vol.308
, pp. 1043-1045
-
-
Turek, F.W.1
-
82
-
-
14044264801
-
BMAL1 and CLOCK, two essential components of the circadian clock, are involved in glucose homeostasis
-
Rudic R.D., et al. BMAL1 and CLOCK, two essential components of the circadian clock, are involved in glucose homeostasis. PLoS Biol. 2 (2004) e377
-
(2004)
PLoS Biol.
, vol.2
-
-
Rudic, R.D.1
-
83
-
-
33746603912
-
CLOCK is involved in obesity-induced disordered fibrinolysis in ob/ob mice by regulating PAI-1 gene expression
-
Oishi K., et al. CLOCK is involved in obesity-induced disordered fibrinolysis in ob/ob mice by regulating PAI-1 gene expression. J. Thromb. Haemost. 4 (2006) 1774-1780
-
(2006)
J. Thromb. Haemost.
, vol.4
, pp. 1774-1780
-
-
Oishi, K.1
-
84
-
-
29344452934
-
Disrupted fat absorption attenuates obesity induced by a high-fat diet in Clock mutant mice
-
Oishi K., et al. Disrupted fat absorption attenuates obesity induced by a high-fat diet in Clock mutant mice. FEBS Lett. 580 (2006) 127-130
-
(2006)
FEBS Lett.
, vol.580
, pp. 127-130
-
-
Oishi, K.1
-
85
-
-
17044396029
-
Progressive arthropathy in mice with a targeted disruption of the Mop3/Bmal-1 locus
-
Bunger M.K., et al. Progressive arthropathy in mice with a targeted disruption of the Mop3/Bmal-1 locus. Genesis 41 (2005) 122-132
-
(2005)
Genesis
, vol.41
, pp. 122-132
-
-
Bunger, M.K.1
-
86
-
-
23444431623
-
Retinoid x receptor heterodimers in the metabolic syndrome
-
Shulman A.I., and Mangelsdorf D.J. Retinoid x receptor heterodimers in the metabolic syndrome. N. Engl. J. Med. 353 (2005) 604-615
-
(2005)
N. Engl. J. Med.
, vol.353
, pp. 604-615
-
-
Shulman, A.I.1
Mangelsdorf, D.J.2
|