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PMID: 10775102 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Positional syntenic cloning and functional characterization of the mammalian circadian mutation tau.

Science (New York, N.Y.) ·Vol. 288 ·No. 5465 ·2000-04-21 ·Pages 483-92

Lowrey PL, Shimomura K, Antoch MP, Yamazaki S, Zemenides PD, Ralph MR, Menaker M, Takahashi JS

Abstract

The tau mutation is a semidominant autosomal allele that dramatically shortens period length of circadian rhythms in Syrian hamsters. We report the molecular identification of the tau locus using genetically directed representational difference analysis to define a region of conserved synteny in hamsters with both the mouse and human genomes. The tau locus is encoded by casein kinase I epsilon (CKIepsilon), a homolog of the Drosophila circadian gene double-time. In vitro expression and functional studies of wild-type and tau mutant CKIepsilon enzyme reveal that the mutant enzyme has a markedly reduced maximal velocity and autophosphorylation state. In addition, in vitro CKIepsilon can interact with mammalian PERIOD proteins, and the mutant enzyme is deficient in its ability to phosphorylate PERIOD. We conclude that tau is an allele of hamster CKIepsilon and propose a mechanism by which the mutation leads to the observed aberrant circadian phenotype in mutant animals.

MeSH Terms
Alleles Amino Acid Sequence Amino Acid Substitution Animals Casein Kinases Cell Cycle Proteins Chromosome Mapping Circadian Rhythm/genetics Cloning, Molecular Cricetinae Female Heterozygote Humans Male Mesocricetus Mice Microsatellite Repeats Molecular Sequence Data Nuclear Proteins/genetics,metabolism Period Circadian Proteins Phenotype Phosphorylation Point Mutation Polymerase Chain Reaction Polymorphism, Genetic Protein Kinases/chemistry,genetics,metabolism RNA, Messenger/genetics,metabolism Recombinant Fusion Proteins/chemistry,metabolism Suprachiasmatic Nucleus/metabolism
Chemicals
Cell Cycle Proteins Nuclear Proteins PER1 protein, human Per1 protein, mouse Period Circadian Proteins RNA, Messenger Recombinant Fusion Proteins Protein Kinases Casein Kinases
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Lowrey P L
Department of Neurobiology and Physiology, Howard Hughes Medical Institute, Northwestern University, Evanston, IL 60208, USA.
Shimomura K
Antoch M P
Yamazaki S
Zemenides P D
Ralph M R
Menaker M
Takahashi J S
References (77)
77 references, click to expand
  1. The mouse stargazer gene encodes a neuronal Ca2+-channel gamma subunit.
    Nat Genet. 1998 Aug;19(4):340-7 PMID: 9697694
  2. A light-independent oscillatory gene mPer3 in mouse SCN and OVLT.
    EMBO J. 1998 Aug 17;17(16):4753-9 PMID: 9707434
  3. The molecular control of circadian behavioral rhythms and their entrainment in Drosophila.
    Annu Rev Biochem. 1998;67:135-52 PMID: 9759485
  4. Crystallographic studies of casein kinase I delta toward a structural understanding of auto-inhibition.
    Acta Crystallogr D Biol Crystallogr. 1998 May 1;54(Pt 3):473-5 PMID: 9761932
  5. Circadian rhythms: molecular basis of the clock.
    Curr Opin Genet Dev. 1998 Oct;8(5):595-602 PMID: 9794822
  6. Mammalian circadian autoregulatory loop: a timeless ortholog and mPer1 interact and negatively regulate CLOCK-BMAL1-induced transcription.
    Neuron. 1998 Nov;21(5):1101-13 PMID: 9856465
  7. Molecular analysis of mammalian timeless.
    Neuron. 1998 Nov;21(5):1115-22 PMID: 9856466
  8. Casein kinase I: spatial organization and positioning of a multifunctional protein kinase family.
    Cell Signal. 1998 Nov;10(10):699-711 PMID: 9884021
  9. Identification of the mammalian homologues of the Drosophila timeless gene, Timeless1.
    FEBS Lett. 1998 Dec 28;441(3):427-31 PMID: 9891984
  10. Molecular bases for circadian clocks.
    Cell. 1999 Jan 22;96(2):271-90 PMID: 9988221
  11. Overview of QTL mapping software and introduction to map manager QT.
    Mamm Genome. 1999 Apr;10(4):327-34 PMID: 10087288
  12. Mammalian Cry1 and Cry2 are essential for maintenance of circadian rhythms.
    Nature. 1999 Apr 15;398(6728):627-30 PMID: 10217146
  13. A mammalian ortholog of Drosophila timeless, highly expressed in SCN and retina, forms a complex with mPER1.
    Genes Cells. 1999 Jan;4(1):67-75 PMID: 10231394
  14. 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. 1999 Aug;19(8):5316-25 PMID: 10409723
  15. mCRY1 and mCRY2 are essential components of the negative limb of the circadian clock feedback loop.
    Cell. 1999 Jul 23;98(2):193-205 PMID: 10428031
  16. Differential regulation of mammalian period genes and circadian rhythmicity by cryptochromes 1 and 2.
    Proc Natl Acad Sci U S A. 1999 Oct 12;96(21):12114-9 PMID: 10518585
  17. Origin of the golden hamster Cricetus auratus as a laboratory animal.
    Nature. 1948 Aug 14;162(4111):256 PMID: 18934878
  18. Identification of inhibitory autophosphorylation sites in casein kinase I epsilon.
    J Biol Chem. 1999 Nov 5;274(45):32063-70 PMID: 10542239
  19. Circadian programs in cyanobacteria: adaptiveness and mechanism.
    Annu Rev Microbiol. 1999;53:389-409 PMID: 10547696
  20. Photic induction of mPer1 and mPer2 in cry-deficient mice lacking a biological clock.
    Science. 1999 Dec 24;286(5449):2531-4 PMID: 10617474
  21. The circadian clock of cyanobacteria.
    Bioessays. 2000 Jan;22(1):10-5 PMID: 10649285
  22. dCLOCK is present in limiting amounts and likely mediates daily interactions between the dCLOCK-CYC transcription factor and the PER-TIM complex.
    J Neurosci. 2000 Mar 1;20(5):1746-53 PMID: 10684876
  23. Light-independent role of CRY1 and CRY2 in the mammalian circadian clock.
    Science. 1999 Oct 22;286(5440):768-71 PMID: 10531061
  24. Analysis of clock proteins in mouse SCN demonstrates phylogenetic divergence of the circadian clockwork and resetting mechanisms.
    Neuron. 2000 Feb;25(2):437-47 PMID: 10719897
  25. Feedback of the Drosophila period gene product on circadian cycling of its messenger RNA levels.
    Nature. 1990 Feb 8;343(6258):536-40 PMID: 2105471
  26. Transplanted suprachiasmatic nucleus determines circadian period.
    Science. 1990 Feb 23;247(4945):975-8 PMID: 2305266
  27. Phosphate groups as substrate determinants for casein kinase I action.
    J Biol Chem. 1990 Aug 25;265(24):14264-9 PMID: 2117608
  28. Role of acidic residues as substrate determinants for casein kinase I.
    J Biol Chem. 1991 Feb 25;266(6):3724-7 PMID: 1995625
  29. A synthetic beta-casein phosphopeptide and analogues as model substrates for casein kinase-1, a ubiquitous, phosphate directed protein kinase.
    FEBS Lett. 1991 Jun 3;283(2):303-6 PMID: 2044770
  30. A genetic map of the mouse suitable for typing intraspecific crosses.
    Genetics. 1992 Jun;131(2):423-47 PMID: 1353738
  31. Cloning the differences between two complex genomes.
    Science. 1993 Feb 12;259(5097):946-51 PMID: 8438152
  32. Temporal organization: reflections of a Darwinian clock-watcher.
    Annu Rev Physiol. 1993;55:16-54 PMID: 8466172
  33. Finding similarities and differences among genomes.
    Nat Genet. 1993 May;4(1):5-6 PMID: 8513322
  34. Differential regulation of mPER1 and mTIM proteins in the mouse suprachiasmatic nuclei: new insights into a core clock mechanism.
    J Neurosci. 1999 Jun 15;19(12):RC11 PMID: 10366649
  35. Oscillation and light induction of timeless mRNA in the mammalian circadian clock.
    J Neurosci. 1999 Jun 15;19(12):RC15 PMID: 10366653
  36. Molecular genetics of circadian rhythms in mammals.
    Annu Rev Neurosci. 2000;23:713-42 PMID: 10845079
  37. A mutation of the circadian system in golden hamsters.
    Science. 1988 Sep 2;241(4870):1225-7 PMID: 3413487
  38. Temporal phosphorylation of the Drosophila period protein.
    Proc Natl Acad Sci U S A. 1994 Mar 15;91(6):2260-4 PMID: 8134384
  39. Direct isolation of polymorphic markers linked to a trait by genetically directed representational difference analysis.
    Nat Genet. 1994 Jan;6(1):57-63 PMID: 8136836
  40. Mutagenesis and mapping of a mouse gene, Clock, essential for circadian behavior.
    Science. 1994 Apr 29;264(5159):719-25 PMID: 8171325
  41. Protein kinase regulation: insights from crystal structure analysis.
    Curr Opin Cell Biol. 1994 Apr;6(2):239-46 PMID: 7517688
  42. Maps from two interspecific backcross DNA panels available as a community genetic mapping resource.
    Mamm Genome. 1994 May;5(5):253-74 PMID: 8075499
  43. Three protein kinase structures define a common motif.
    Structure. 1994 May 15;2(5):345-55 PMID: 8081750
  44. Crystal structure of casein kinase-1, a phosphate-directed protein kinase.
    EMBO J. 1995 Mar 1;14(5):1015-23 PMID: 7889932
  45. Protein kinases 6. The eukaryotic protein kinase superfamily: kinase (catalytic) domain structure and classification.
    FASEB J. 1995 May;9(8):576-96 PMID: 7768349
  46. Isolation and characterization of human casein kinase I epsilon (CKI), a novel member of the CKI gene family.
    J Biol Chem. 1995 Jun 23;270(25):14875-83 PMID: 7797465
  47. Role of COOH-terminal phosphorylation in the regulation of casein kinase I delta.
    J Biol Chem. 1995 Sep 15;270(37):21689-94 PMID: 7665585
  48. Representational difference analysis in detection of genetic lesions in cancer.
    Methods Enzymol. 1995;254:291-304 PMID: 8531693
  49. Rhythmic expression of timeless: a basis for promoting circadian cycles in period gene autoregulation.
    Science. 1995 Nov 3;270(5237):808-10 PMID: 7481772
  50. Representational difference analysis: finding the differences between genomes.
    Trends Genet. 1995 Aug;11(8):303-7 PMID: 8585127
  51. Light-induced degradation of TIMELESS and entrainment of the Drosophila circadian clock.
    Science. 1996 Mar 22;271(5256):1736-40 PMID: 8596937
  52. Circadian rhythms in cultured mammalian retina.
    Science. 1996 Apr 19;272(5260):419-21 PMID: 8602533
  53. Three-dimensional structure of mammalian casein kinase I: molecular basis for phosphate recognition.
    J Mol Biol. 1996 Apr 5;257(3):618-31 PMID: 8648628
  54. A diffusible coupling signal from the transplanted suprachiasmatic nucleus controlling circadian locomotor rhythms.
    Nature. 1996 Aug 29;382(6594):810-3 PMID: 8752274
  55. A structural basis for substrate specificities of protein Ser/Thr kinases: primary sequence preference of casein kinases I and II, NIMA, phosphorylase kinase, calmodulin-dependent kinase II, CDK5, and Erk1.
    Mol Cell Biol. 1996 Nov;16(11):6486-93 PMID: 8887677
  56. Regulation of nuclear entry of the Drosophila clock proteins period and timeless.
    Neuron. 1996 Nov;17(5):911-20 PMID: 8938123
  57. Linkage map of Syrian hamster with restriction landmark genomic scanning.
    Mamm Genome. 1997 Feb;8(2):121-8 PMID: 9060411
  58. cDNA cloning and tissue-specific expression of a novel basic helix-loop-helix/PAS protein (BMAL1) and identification of alternatively spliced variants with alternative translation initiation site usage.
    Biochem Biophys Res Commun. 1997 Apr 7;233(1):258-64 PMID: 9144434
  59. Positional cloning of the mouse circadian clock gene.
    Cell. 1997 May 16;89(4):641-53 PMID: 9160755
  60. Functional identification of the mouse circadian Clock gene by transgenic BAC rescue.
    Cell. 1997 May 16;89(4):655-67 PMID: 9160756
  61. A circadian enhancer mediates PER-dependent mRNA cycling in Drosophila melanogaster.
    Mol Cell Biol. 1997 Jul;17(7):3687-93 PMID: 9199302
  62. RIGUI, a putative mammalian ortholog of the Drosophila period gene.
    Cell. 1997 Sep 19;90(6):1003-11 PMID: 9323128
  63. Circadian oscillation of a mammalian homologue of the Drosophila period gene.
    Nature. 1997 Oct 2;389(6650):512-6 PMID: 9333243
  64. Phototransduction and circadian clock pathways regulating gene transcription in higher plants.
    Adv Genet. 1997;35:1-34 PMID: 9348644
  65. Post-transcriptional regulation contributes to Drosophila clock gene mRNA cycling.
    EMBO J. 1997 Dec 1;16(23):7146-55 PMID: 9384591
  66. Two period homologs: circadian expression and photic regulation in the suprachiasmatic nuclei.
    Neuron. 1997 Dec;19(6):1261-9 PMID: 9427249
  67. Light-induced resetting of a mammalian circadian clock is associated with rapid induction of the mPer1 transcript.
    Cell. 1997 Dec 26;91(7):1043-53 PMID: 9428526
  68. A differential response of two putative mammalian circadian regulators, mper1 and mper2, to light.
    Cell. 1997 Dec 26;91(7):1055-64 PMID: 9428527
  69. Autoinhibition of casein kinase I epsilon (CKI epsilon) is relieved by protein phosphatases and limited proteolysis.
    J Biol Chem. 1998 Jan 16;273(3):1357-64 PMID: 9430669
  70. Role of the CLOCK protein in the mammalian circadian mechanism.
    Science. 1998 Jun 5;280(5369):1564-9 PMID: 9616112
  71. Closing the circadian loop: CLOCK-induced transcription of its own inhibitors per and tim.
    Science. 1998 Jun 5;280(5369):1599-603 PMID: 9616122
  72. A new mammalian period gene predominantly expressed in the suprachiasmatic nucleus.
    Genes Cells. 1998 Mar;3(3):167-76 PMID: 9619629
  73. A mutant Drosophila homolog of mammalian Clock disrupts circadian rhythms and transcription of period and timeless.
    Cell. 1998 May 29;93(5):791-804 PMID: 9630223
  74. CYCLE is a second bHLH-PAS clock protein essential for circadian rhythmicity and transcription of Drosophila period and timeless.
    Cell. 1998 May 29;93(5):805-14 PMID: 9630224
  75. Three period homologs in mammals: differential light responses in the suprachiasmatic circadian clock and oscillating transcripts outside of brain.
    Neuron. 1998 Jun;20(6):1103-10 PMID: 9655499
  76. double-time is a novel Drosophila clock gene that regulates PERIOD protein accumulation.
    Cell. 1998 Jul 10;94(1):83-95 PMID: 9674430
  77. The Drosophila clock gene double-time encodes a protein closely related to human casein kinase Iepsilon.
    Cell. 1998 Jul 10;94(1):97-107 PMID: 9674431
Article Info
Journal
Science (New York, N.Y.)
Abbr.
Science
ISSN
0036-8075
Published
2000-04-21
Pages
483-92
Language
English
Region
United States
NLM ID
0404511
PMCID
PMC3869379
Subset
IM
Grants
Howard Hughes Medical Institute · United States
NIMH NIH HHS · R01MH56647 · United States
NIMH NIH HHS · R37MH39592 · United States
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