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Article

Rhythmic Interaction between Period1 mRNA and hnRNP Q Leads to Circadian Time-Dependent Translation

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Pages 717-728 | Received 26 Aug 2011, Accepted 10 Nov 2011, Published online: 20 Mar 2023

REFERENCES

  • Albrecht U, Zheng B, Larkin D, Sun ZS, Lee CC. 2001. mPer1 and mper2 are essential for normal resetting of the circadian clock. J. Biol. Rhythms 16:100–104.
  • Bae K, et al. 2001. Differential functions of mPer1, mPer2, and mPer3 in the SCN circadian clock. Neuron 30:525–536.
  • Balsalobre A, et al. 2000. Resetting of circadian time in peripheral tissues by glucocorticoid signaling. Science 289:2344–2347.
  • Balsalobre A, Damiola F, Schibler U. 1998. A serum shock induces circadian gene expression in mammalian tissue culture cells. Cell 93:929–937.
  • Cermakian N, Monaco L, Pando MP, Dierich A, Sassone-Corsi P. 2001. Altered behavioral rhythms and clock gene expression in mice with a targeted mutation in the Period1 gene. EMBO J. 20:3967–3974.
  • Chen CY, et al. 2001. AU binding proteins recruit the exosome to degrade ARE-containing mRNAs. Cell 107:451–464.
  • Cheng HY, et al. 2007. MicroRNA modulation of circadian-clock period and entrainment. Neuron 54:813–829.
  • Cho S, Kim JH, Back SH, Jang SK. 2005. Polypyrimidine tract-binding protein enhances the internal ribosomal entry site-dependent translation of p27Kip1 mRNA and modulates transition from G1 to S phase. Mol. Cell. Biol. 25:1283–1297.
  • Cho S, et al. 2007. BiP internal ribosomal entry site activity is controlled by heat-induced interaction of NSAP1. Mol. Cell. Biol. 27:368–383.
  • Field MD, et al. 2000. Analysis of clock proteins in mouse SCN demonstrates phylogenetic divergence of the circadian clockwork and resetting mechanisms. Neuron 25:437–447.
  • Gastel JA, Roseboom PH, Rinaldi PA, Weller JL, Klein DC. 1998. Melatonin production: proteasomal proteolysis in serotonin N-acetyltransferase regulation. Science 279:1358–1360.
  • Gebauer F, Hentze MW. 2004. Molecular mechanisms of translational control. Nat. Rev. Mol. Cell Biol. 5:827–835.
  • Gekakis N, et al. 1998. Role of the CLOCK protein in the mammalian circadian mechanism. Science 280:1564–1569.
  • Gery S, et al. 2006. The circadian gene per1 plays an important role in cell growth and DNA damage control in human cancer cells. Mol. Cell 22:375–382.
  • Gingras AC, Raught B, Sonenberg N. 2004. mTOR signaling to translation. Curr. Top. Microbiol. Immunol. 279:169–197.
  • Grosset C, et al. 2000. A mechanism for translationally coupled mRNA turnover: interaction between the poly(A) tail and a c-fos RNA coding determinant via a protein complex. Cell 103:29–40.
  • Harms E, Kivimae S, Young MW, Saez L. 2004. Posttranscriptional and posttranslational regulation of clock genes. J. Biol. Rhythms 19:361–373.
  • Hay N, Sonenberg N. 2004. Upstream and downstream of mTOR. Genes Dev. 18:1926–1945.
  • Hellen CU, Sarnow P. 2001. Internal ribosome entry sites in eukaryotic mRNA molecules. Genes Dev. 15:1593–1612.
  • Hida A, et al. 2000. The human and mouse Period1 genes: five well-conserved E-boxes additively contribute to the enhancement of mPer1 transcription. Genomics 65:224–233.
  • Hresko RC, Mueckler M. 2002. Identification of pp68 as the tyrosine-phosphorylated form of SYNCRIP/NSAP1. A cytoplasmic RNA-binding protein. J. Biol. Chem. 277:25233–25238.
  • Jang SK, et al. 1988. A segment of the 5′ nontranslated region of encephalomyocarditis virus RNA directs internal entry of ribosomes during in vitro translation. J. Virol. 62:2636–2643.
  • Kim JH, et al. 2003. Heterogeneous nuclear ribonucleoprotein C modulates translation of c-myc mRNA in a cell cycle phase-dependent manner. Mol. Cell. Biol. 23:708–720.
  • Kim TD, et al. 2005. Rhythmic serotonin N-acetyltransferase mRNA degradation is essential for the maintenance of its circadian oscillation. Mol. Cell. Biol. 25:3232–3246.
  • Kim TD, et al. 2007. Rhythmic control of AANAT translation by hnRNP Q in circadian melatonin production. Genes Dev. 21:797–810.
  • Kojima S, et al. 2007. LARK activates posttranscriptional expression of an essential mammalian clock protein, PERIOD1. Proc. Natl. Acad. Sci. U. S. A. 104:1859–1864.
  • Kozak M. 2001. New ways of initiating translation in eukaryotes? Mol. Cell. Biol. 21:1899–1907.
  • Kume K, et al. 1999. mCRY1 and mCRY2 are essential components of the negative limb of the circadian clock feedback loop. Cell 98:193–205.
  • Kwak E, Kim TD, Kim KT. 2006. Essential role of 3′-untranslated region-mediated mRNA decay in circadian oscillations of mouse Period3 mRNA. J. Biol. Chem. 281:19100–19106.
  • Kwon MC, et al. 2008. Crif1 is a novel transcriptional coactivator of STAT3. EMBO J. 27:642–653.
  • Lowrey PL, Takahashi JS. 2004. Mammalian circadian biology: elucidating genome-wide levels of temporal organization. Annu. Rev. Genomics Hum. Genet. 5:407–441.
  • Ma S, Liu G, Sun Y, Xie J. 2007. Relocalization of the polypyrimidine tract-binding protein during PKA-induced neurite growth. Biochim. Biophys. Acta 1773:912–923.
  • Moore RY, Eichler VB. 1972. Loss of a circadian adrenal corticosterone rhythm following suprachiasmatic lesions in the rat. Brain Res. 42:201–206.
  • Mourelatos Z, Abel L, Yong J, Kataoka N, Dreyfuss G. 2001. SMN interacts with a novel family of hnRNP and spliceosomal proteins. EMBO J. 20:5443–5452.
  • Paek KY, Kim CS, Park SM, Kim JH, Jang SK. 2008. RNA-binding protein hnRNP D modulates internal ribosome entry site-dependent translation of hepatitis C virus RNA. J. Virol. 82:12082–12093.
  • Pause A, et al. 1994. Insulin-dependent stimulation of protein synthesis by phosphorylation of a regulator of 5′-cap function. Nature 371:762–767.
  • Pelletier J, Sonenberg N. 1988. Internal initiation of translation of eukaryotic mRNA directed by a sequence derived from poliovirus RNA. Nature 334:320–325.
  • Pilipenko EV, et al. 2000. A cell cycle-dependent protein serves as a template-specific translation initiation factor. Genes Dev. 14:2028–2045.
  • Pyronnet S, Pradayrol L, Sonenberg N. 2000. A cell cycle-dependent internal ribosome entry site. Mol. Cell 5:607–616.
  • Song Y, et al. 2005. Evidence for an RNA chaperone function of polypyrimidine tract-binding protein in picornavirus translation. RNA 11:1809–1824.
  • Stoneley M, Willis AE. 2004. Cellular internal ribosome entry segments: structures, trans-acting factors and regulation of gene expression. Oncogene 23:3200–3207.
  • Tei H, et al. 1997. Circadian oscillation of a mammalian homologue of the Drosophila period gene. Nature 389:512–516.
  • Vagner S, Galy B, Pyronnet S. 2001. Irresistible IRES. Attracting the translation machinery to internal ribosome entry sites. EMBO Rep. 2:893–898.
  • van den Pol AN, Dudek FE. 1993. Cellular communication in the circadian clock, the suprachiasmatic nucleus. Neuroscience 56:793–811.
  • Wang Z, Weaver M, Magnuson NS. 2005. Cryptic promoter activity in the DNA sequence corresponding to the pim-1 5′-UTR. Nucleic Acids Res. 33:2248–2258.
  • Woo KC, et al. 2010. Circadian amplitude of cryptochrome 1 is modulated by mRNA stability regulation via cytoplasmic hnRNP D oscillation. Mol. Cell. Biol. 30:197–205.
  • Woo KC, et al. 2009. Mouse period 2 mRNA circadian oscillation is modulated by PTB-mediated rhythmic mRNA degradation. Nucleic Acids Res. 37:26–37.
  • Xie J, Lee JA, Kress TL, Mowry KL, Black DL. 2003. Protein kinase A phosphorylation modulates transport of the polypyrimidine tract-binding protein. Proc. Natl. Acad. Sci. U. S. A. 100:8776–8781.
  • Yamaguchi S, et al. 2000. The 5′ upstream region of mPer1 gene contains two promoters and is responsible for circadian oscillation. Curr. Biol. 10:873–876.
  • Yang DQ, Halaby MJ, Zhang Y. 2006. The identification of an internal ribosomal entry site in the 5′-untranslated region of p53 mRNA provides a novel mechanism for the regulation of its translation following DNA damage. Oncogene 25:4613–4619.
  • Zeng H, Hardin PE, Rosbash M. 1994. Constitutive overexpression of the Drosophila period protein inhibits period mRNA cycling. EMBO J. 13:3590–3598.
  • Zheng B, et al. 2001. Nonredundant roles of the mPer1 and mPer2 genes in the mammalian circadian clock. Cell 105:683–694.

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