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Original

FUNCTION OF THE TRANSCRIPTIONAL REGULATING PROTEIN OF 132 kDa (TReP-132) ON HUMAN P450scc GENE EXPRESSION

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Pages 559-574 | Published online: 07 Jul 2009

REFERENCES

  • Waterman M. R. Control of Gene Expression of Adrenal Steroid Hydroxylases and Related Enzymes. Endocr. Res. 1986; 12(4)393–408, et al
  • Honda S. Ad4BP Regulating Steroidogenic P-450 Gene Is a Member of Steroid Hormone Receptor Superfamily. J. Biol. Chem. 1993; 268(10)7494–7502, et al
  • Lala D. S., Rice D. A., Parker K. L. Steroidogenic Factor I, a Key Regulator of Steroidogenic Enzyme Expression, Is the Mouse Homolog of Fushi Tarazu-Factor I. Mol. Endocrinol. 1992; 6(8)1249–1258
  • Rice D. A. A Shared Promoter Element Regulates the Expression of Three Steroidogenic Enzymes. Mol. Endocrinol. 1991; 5(10)1552–1561, et al
  • Morohashi K. Function and Distribution of a Steroidogenic Cell-Specific Transcription Factor, Ad4BP. J. Steroid. Biochem. Mol. Biol. 1995; 53(1–6)81–88, et al
  • Monte D., DeWitte F., Hum D. W. Regulation of the Human P450scc Gene by Steroidogenic Factor 1 Is Mediated by CBP/p300. J. Biol. Chem. 1998; 273(8)4585–4591
  • Gizard F. The Transcriptional Regulating Protein of 132 kDa (TReP-132) Enhances P450scc Gene Transcription Through Interaction with Steroidogenic Factor-1 in Human Adrenal Cells. J. Biol. Chem. 2002; 5: 5, et al
  • Huang N., Miller W. L. Cloning of Factors Related to HIV-Inducible LBP Proteins That Regulate Steroidogenic Factor-1-Independent Human Placental Transcription of the Cholesterol Side-Chain Cleavage Enzyme, P450scc. J. Biol. Chem. 2000; 275(4)2852–2858
  • Gizard F. A Novel Zinc Finger Protein TReP-132 Interacts with CBP/p300 to Regulate Human CYP11A1 Gene Expression. J. Biol. Chem. 2001; 276(36)33881–33892, et al
  • Rodriguez H. Transcription of the Human Genes for Cytochrome P450scc and P450c17 Is Regulated Differently in Human Adrenal NCI-H295 Cells than in Mouse Adrenal Y1 Cells. J. Clin. Endocrinol. Metab. 1997; 82(2)365–371, et al
  • Hum D. W., Aza-Blanc P., Miller W. L. Characterization of Placental Transcriptional Activation of the Human Gene for P450scc. DNA Cell Biol. 1995; 14(5)451–463
  • Jiang W., Beatty B. G. Identification and Localization of MEP1A-Like Sequences (MEP1AL1–4) in the Human Genome. Biochem. Biophys. Res. Commun. 1999; 261(1)163–168
  • Nature h.g. i. Nature 2001; 409: 6822
  • Qi H. AIbZIP, a Novel bZIP Gene Located on Chromosome 1q21.3 That Is Highly Expressed in Prostate Tumors and of Which the Expression Is Up- Regulated by Androgens in LNCaP Human Prostate Cancer Cells. Cancer. Res. 2002; 62(3)721–733, et al
  • Duguay Y. Region Specific Expression of mTReP-132 in Brain. Mol. Psychiatry. 2002, In Press
  • Biedenkapp H. Viral myb Oncogene Encodes a Sequence-Specific DNA-Binding Activity. Nature 1988; 335(6193)835–837, et al
  • Klempnauer K. H., Sippel A. E. The Highly Conserved Amino-Terminal Region of the Protein Encoded by the v-myb Oncogene Functions as a DNA-Binding Domain. Embo. J. 1987; 6(9)2719–2725
  • Aasland R., Stewart A. F., Gibson T. The SANT Domain: A Putative DNA-Binding Domain in the SWI-SNF and ADA Complexes, the Transcriptional Co-Repressor N-CoR and TFIIIB. Trends Biochem. Sci. 1996; 21(3)87–88
  • Pikuleva I., Waterman M. Cytochromes P450 in Synthesis of Steroid Hormones, Bile Acids, Vitamin D3 and Cholesterol. Mol. Aspects. Med. 1999; 20(1–2)43–37
  • Parker K. L., Schimmer B. P. Steroidogenic Factor 1: A Key Determinant of Endocrine Development and Function. Endocr. Rev. 1997; 18(3)361–377
  • Mitchell P. J., Tjian R. Transcriptional Regulation in Mammalian Cells by Sequence-Specific DNA Binding Proteins. Science 1989; 245(4916)371–378
  • Tanaka M., Lai J. S., Herr W. Promoter-Selective Activation Domains in Oct-1 and Oct-2 Direct Differential Activation of an snRNA and mRNA Promoter. Cell 1992; 68(4)755–767
  • Unger T. p53: A Transdominant Regulator of Transcription Whose Function Is Ablated by Mutations Occurring in Human Cancer. Embo. J. 1992; 11(4)1383–1390, et al
  • Heery D. M. A Signature Motif in Transcriptional Co-Activators Mediates Binding to Nuclear Receptors. Nature 1997; 387(6634)733–736, et al
  • Laity J. H., Dyson H. J., Wright P. E. Molecular Basis for Modulation of Biological Function by Alternate Splicing of the Wilms' Tumor Suppressor Protein. Proc. Natl. Acad. Sci. USA 2000; 97(22)11932–11935
  • Rauscher F. J. Binding of the Wilms' Tumor Locus Zinc Finger Protein to the EGR-1 Consensus Sequence. Science 1990; 250(4985)1259–1262, 3rd. et al
  • Bickmore W. A. Modulation of DNA Binding Specificity by Alternative Splicing of the Wilms Tumor wt1 Gene Transcript. Science 1992; 257(5067)235–237, et al
  • Nachtigal M. W. Wilms' Tumor 1 and Dax-1 Modulate the Orphan Nuclear Receptor SF-1 in Sex-Specific Gene Expression. Cell 1998; 93(3)445–454, et al
  • Larsson S. H. Subnuclear Localization of WT1 in Splicing or Transcription Factor Domains Is Regulated by Alternative Splicing. Cell 1995; 81(3)391–401, et al
  • Davies R. C. WT1 Interacts with the Splicing Factor U2AF65 in an Isoform-Dependent Manner and can Be Incorporated into Spliceosomes. Genes Dev. 1998; 12(20)3217–3225, et al
  • Mermod N. The Proline-Rich Transcriptional Activator of CTF/NF-I Is Distinct from the Replication and DNA Binding Domain. Cell 1989; 58(4)741–753, et al
  • Tanaka M., Clouston W. M., Herr W. The Oct-2 Glutamine-Rich and Proline-Rich Activation Domains can Synergize with Each Other or Duplicates of Themselves to Activate Transcription. Mol. Cell. Biol. 1994; 14(9)6046–6055
  • Moore C. C., Hum D. W., Miller W. L. Identification of Positive and Negative Placenta-Specific Basal Elements and a Cyclic Adenosine 3′,5′-Monophosphate Response Element in the Human Gene for P450scc. Mol. Endocrinol. 1992; 6(12)2045–2058
  • Hu M. C. Functions of the Upstream and Proximal Steroidogenic Factor 1 (SF-1)-Binding Sites in the CYP11A1 Promoter in Basal Transcription and Hormonal Response. Mol. Endocrinol. 2001; 15(5)812–818, et al
  • Sadovsky Y. Mice Deficient in the Orphan Receptor Steroidogenic Factor 1 Lack Adrenal Glands and Gonads but Express P450 Side-Chain-Cleavage Enzyme in the Placenta and have Normal Embryonic Serum Levels of Corticosteroids. Proc. Natl. Acad. Sci. USA 1995; 92(24)10939–10943, et al
  • Ito M., Yu R., Jameson J. L. DAX-1 Inhibits SF-1-Mediated Transactivation via a Carboxy-Terminal Domain That Is Deleted in Adrenal Hypoplasia Congenita. Mol. Cell. Biol. 1997; 17(3)1476–1483
  • Ramayya M. S. Steroidogenic Factor 1 Messenger Ribonucleic Acid Expression in Steroidogenic and Nonsteroidogenic Human Tissues: Northern Blot and In Situ Hybridization Studies. J. Clin. Endocrinol. Metab. 1997; 82(6)1799–1806, et al
  • Wagner S., Green M. R. DNA-Binding Domains: Targets for Viral and Cellular Regulators. Curr. Opin. Cell. Biol. 1994; 6(3)410–414

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