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Research Article

Involvement of AP-2 in Regulation of the R-FABP Gene in the Developing Chick Retina

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Pages 5935-5945 | Received 25 Feb 1997, Accepted 29 Jul 1997, Published online: 29 Mar 2023

REFERENCES

  • Bass, N. M. 1993. Cellular binding proteins for fatty acids and retinoids: similar or specialized functions? Mol. Cell. Biochem. 123:191–202.
  • Bass, N. M., D. E. R. Raghuphaty, J. A. Manning, and R. K. Ockner. 1984. Partial purification of molecular weight 12000 fatty acid binding proteins from rat brain and their effect on synaptosomal Na+-dependent amino acid uptake. Biochemistry 23:6539–6544.
  • Belikov, S., and L. Wieslander. 1995. Express protocol for generating G+A sequencing ladders. Nucleic Acids Res. 23:310.
  • Bernier, I., and P. Jolles. 1984. Purification and characterization of a basic 23 kDa cytosolic protein from rat brain. Biochim. Biophys. Acta 790:174–181.
  • Bird, A. P., M. H. Taggart, R. D. Nicholls, and D. R. Higgs. 1987. Nonmethylated CpG-rich islands at the human alpha-globin locus: implications for evolution of the alpha-globin pseudogene. EMBO J. 6:999–1004.
  • Börchers, T., C. Unterberg, H. Rüdel, H. Robenek, and F. Spener. 1989. Subcellular distribution of cardiac fatty acid-binding protein in bovine heart muscle and quantitation with an enzyme-linked immunosorbent assay. Biochim. Biophys. Acta 1002:54–61.
  • Bordewick, U., M. Hesse, T. Börchers, H. Robenek, and F. Spener. 1989. Compartmentation of hepatic fatty-acid-binding protein in liver cells and its effect on microsomal phosphatidic acid. Biol. Chem. Hoppe-Seyler 370:229–238.
  • Buelt, M. K., L. L. Shekels, B. W. Jarvis, and D. A. Bernlohr. 1991. In vitro phosphorylation of the adipocyte lipid-binding protein (p15) by the insulin receptor. J. Biol. Chem. 265:12266–12271.
  • Buettner, R., P. Kannan, A. Imhof, R. Bauer, S. O. Yim, R. Glockshuber, M. W. Van Dyke, and M. A. Tainsky. 1993. An alternatively spliced mRNA from the AP-2 gene encodes a negative regulator of transcriptional activation by AP-2. Mol. Cell. Biol. 13:4174–4185.
  • Burren, C. P., J. L. Berka, S. R. Edmondson, G. A. Werther, and J. A. Batch. 1996. Localization of mRNAs for insulin-like growth factor-I (IGF-I), IGF-I receptor, and IGF binding proteins in rat eye. Investig. Ophthalmol. Vis. Sci. 37:1459–1468.
  • Chen, A., D. W. A. Beno, and B. H. Davis. 1996. Suppression of stellate cell type I collagen gene expression involves AP-2 transmodulation of nuclear factor-1-dependent gene transcription. J. Biol. Chem. 271:25994–25998.
  • Chen, T.-T., R.-L. Wu, F. Castro-Munozledo, and T.-T. Sun. 1997. Regulation of K3 keratin gene transcription by Sp1 and AP-2 in differentiating rabbit corneal epithelial cells. Mol. Cell. Biol. 17:3056–3064.
  • Clark, S. J., J. Harrison, C. L. Paul, and M. Frommer. 1994. High sensitivity mapping of methylated cytosines. Nucleic Acids Res. 22:2990–2997.
  • Comb, M., and H. W. Goodman. 1990. CpG methylation inhibits proenkephalin gene expression and binding of the transcription factor AP-2. Nucleic Acids Res. 18:3975–3982.
  • Duan, C., and D. R. Clemmons. 1995. Transcription factor AP-2 regulates human insulin-like growth factor binding protein-5 gene expression. J. Biol. Chem. 270:24844–24851.
  • Dütting, D., A. Gierer, and G. Hansmann. 1983. Self-renewal of stem cells and differentiation of nerve cells in the developing chick retina. Dev. Brain Res. 10:21–32.
  • Eden, S., and H. Cedar. 1994. Role of DNA methylation in the regulation of transcription. Curr. Opin. Genet. Dev. 4:255–259.
  • Feng, L., M. E. Hatten, and N. Heintz. 1994. Brain lipid-binding protein (BLBP): a novel signaling system in the developing mammalian CNS. Neuron 12:895–908.
  • Feng, L., and N. Heintz. 1995. Differentiating neurons activate transcription of the brain lipid-binding protein gene in radial glia through a novel regulatory element. Development 121:1719–1730.
  • Frommer, M., L. E. McDonald, D. S. Millar, C. M. Collis, F. Watt, G. W. Grigg, P. L. Molloy, and C. L. Paul. 1992. A genomic sequencing protocol that yields a positive display of 5-methylcytosine residues in individual DNA strands. Proc. Natl. Acad. Sci. USA 89:1827–1831.
  • Garabedian, M. J., J. LaBaer, W.-H. Liu, and J. R. Thomas. 1993. Analysis of protein-DNA interactions, p. 243–291. In B. D. Hames and S. J. Higgins (ed.), Gene transcription: a practical approach. IRL Press, Oxford, United Kingdom.
  • Gaubatz, S., A. Imhof, R. Dosch, O. Werner, P. Mitchell, R. Buettner, and M. Eilers. 1995. Transcriptional activation by Myc is under negative control by the transcription factor AP-2. EMBO J. 14:1508–1519.
  • Getman, D. K., A. Mutero, K. Inoue, and P. Taylor. 1995. Transcription factor repression and activation of the human acetylcholinesterase gene. J. Biol. Chem. 270:23511–23519.
  • Godbout, R. 1993. Identification and characterization of transcripts present at elevated levels in the undifferentiated chick retina. Exp. Eye Res. 56:95–106.
  • Godbout, R., R. Ingram, and S. M. Tilghman. 1986. Multiple regulatory elements in the intergenic region between the a-fetoprotein and albumin genes. Mol. Cell. Biol. 6:477–487.
  • Godbout, R., H. Marusyk, D. Bisgrove, L. Dabbagh, and S. Poppema. 1995. Localization of a fatty acid binding protein and its transcript in the developing chick retina. Exp. Eye Res. 60:645–657.
  • Godbout, R., and S. M. Tilghman. 1988. Configuration of the a-fetoprotein regulatory domain during development. Genes Dev. 2:949–956.
  • Gorski, K. M., M. Carneiro, and U. Schibler. 1986. Tissue-specific in vitro transcription from the mouse abumin promoter. Cell 47:767–776.
  • Graham, F. L., and A. J. Van der Eb. 1973. A new technique for the assay of infectivity of human adenovirus 5 DNA. Virology 52:456–467.
  • Gross, D. S., and W. T. Garrard. 1988. Nuclease hypersensitivity sites in chromatin. Annu. Rev. Biochem. 57:159–197.
  • Hirt, B. 1967. Selective extraction of polyoma DNA from infected mouse cultures. J. Mol. Biol. 26:365–369.
  • Holler, M., G. Westin, J. Jiricny, and W. Schaffner. 1988. Sp1 transcription factor binds DNA and activates transcription even when the binding site is CpG methylated. Genes Dev. 2:1127–1135.
  • Holton, T. A., and M. W. Graham. 1991. A simple and efficient method for direct cloning of PCR products using ddT-tailed vectors. Nucleic Acids Res. 19:1156.
  • Jones, K. A., K. R. Yamamoto, and R. Tjian. 1985. Two distinct transcription factors bind to the HSV thymidine kinase promoter in vitro. Cell 42:559–572.
  • Keler, T., C. S. Barker, and S. Sorof. 1992. Specific growth stimulation by linoleic acid in hepatoma cell lines transfected with the target protein of a liver carcinogen. Proc. Natl. Acad. Sci. USA 89:4830–4834.
  • Khan, S., and S. Sorof. 1994. Liver fatty acid-binding protein: specific mediator of the mitogenesis induced by two classes of carcinogenic peroxisome proliferators. Proc. Natl. Acad. Sci. USA 91:848–852.
  • Kurtz, A., A. Zimmer, F. Schnütgen, G. Brüning, F. Spener, and T. Müller. 1994. The expression pattern of a novel gene encoding brain-fatty acid binding protein correlates with neuronal and glial cell development. Development 120:2637–2649.
  • Meunier-Durmort, C., H. Poirier, I. Niot, C. Forest, and P. Besnard. 1996. Up-regulation of the expression of the gene for liver fatty acid-binding protein by long-chain fatty acids. Biochem. J. 319:483–487.
  • Moser, M., A. Imhof, A. Pscherer, R. Bauer, W. Amselgruber, F. Sinowatz, F. Hofstädter, R. Schüle, and R. Buettner. 1995. Cloning and characterization of a second AP-2 transcription factor: AP-2 beta. Development 121:2779–2788.
  • Ngô, V., D. Gourdji, and J.-N. Laverriere. 1996. Site-specific methylation of the rat prolactin and growth hormone promoters correlates with gene expression. Mol. Cell. Biol. 16:3245–3254.
  • Nielsen, S. U., and F. Spener. 1993. Fatty acid binding protein from rat heart is phosphorylated on Tyr19 in response to insulin stimulation. J. Lipid Res. 34:1355–1366.
  • O’Brien, R. M., E. L. Noisin, A. Suwanichkul, T. Yamasaki, P. C. Lucas, J.-C. Wang, D. R. Powell, and D. K. Granner. 1995. Hepatic nuclear factor 3- and hormone-regulated expression of phosphoenolpyruvate carboxykinase and insulin-like growth factor-binding protein 1 genes. Mol. Cell. Biol. 15:1747–1758.
  • Philipp, J., P. J. Mitchell, U. Malipiero, and A. Fontana. 1994. Cell typespecific regulation of expression of transcription factor AP-2 in neuroectodermal cells. Dev. Biol. 165:602–614.
  • Prada, C., J. Puga, L. Pérez-Méndez, R. López, and G. Ramirez. 1991. Spatial and temporal patterns of neurogenesis in the chick retina. Eur. J. Neurosci. 3:559–569.
  • Sambrook, J., E. F. Fritsch, and T. Maniatis. 1989. Molecular cloning: a laboratory manual, 2nd ed. Cold Spring Harbor Laboratory, Cold Spring Harbor, N.Y.
  • Specht, B., N. Bartetzko, C. Hohoff, H. Kuhl, R. Franke, T. Börchers, and F. Spener. 1996. Mammary derived growth inhibitor is not a distinct protein but a mix of heart-type and adipocyte-type fatty acid-binding protein. J. Biol. Chem. 271:19943–19949.
  • Treuner, M., C. A. Kozak, D. Gallahan, R. Grosse, and T. Müller. 1994. Cloning and characterization of the mouse gene encoding mammary-derived growth inhibitor/heart-fatty acid-binding protein. Gene 147:237–242.
  • Tsukiyama, T., P. B. Becker, and C. Wu. 1994. ATP-dependent nucleosome disruption at a heat-shock promoter mediated by binding of GAGA transcription factor. Nature 367:525–532.
  • Turner, D. L., and C. L. Cepko. 1987. A common progenitor for neurons and glia persists in rat retinas late in development. Nature 328:131–136.
  • Turner, D. L., E. Y. Snyder, and C. L. Cepko. 1990. Lineage-independent determination of cell type in the embryonic mouse retina. Neuron 4:833–845.
  • Veerkamp, J. H., and R. G. H. J. Maatman. 1995. Cytoplasmic fatty acidbinding proteins: their structure and genes. Prog. Lipid Res. 34:17–52.
  • Wadzinski, B. E., W. H. Wheat, S. Jaspers, L. F. Peruski, Jr., R. L. Lickteig, G. L. Johnson, and D. J. Klemm. 1993. Nuclear protein phosphatase 2A dephosphorylates protein kinase A-phosphorylated CREB and regulates CREB transcriptional stimulation. Mol. Cell. Biol. 13:2822–2834.
  • Wetts, R., and S. E. Fraser. 1988. Multipotent precursors can give rise to all major cell types of the frog retina. Science 239:1142–1145.
  • Wharton, K. A., B. Yedvobnick, V. G. Finnerty, and S. Artavanis-Tsakonas. 1985. Opa: a novel family of transcribed repeats shared by the Notch locus and other developmentally regulated loci in D. melanogaster. Cell 40:55–62.
  • Williams, R. W., and D. Goldowitz. 1992. Lineage versus environment in embryonic retina: a revisionist perspective. Trends Neurosci. 15:368–373.
  • Williams, R. W., and D. Goldowitz. 1992. Structure of clonal and polyclonal cell arrays in chimeric mouse retina. Proc. Natl. Acad. Sci. USA 89:1184–1188.
  • Williams, T., and R. Tjian. 1991. Analysis of the DNA-binding and activation properties of the human transcription factor AP-2. Genes Dev. 5:670–682.
  • Williamson, J. A., J. M. Bosher, A. Skinner, D. Sheer, T. Williams, and H. C. Hurst. 1996. Chromosomal mapping of the human and mouse homologues of two new members of the AP-2 family of transcription factors. Genomics 35:262–264.
  • Wu, C. 1980. The 5′ ends of Drosophilia heat shock genes in chromatin are hypersensitive to DNase I. Nature 286:854–860.
  • Yang, Y., E. Spitzer, N. Kenney, W. Zschiesche, M. Li, A. Kromminga, T. Müller, F. Spener, A. Lezius, J. H. Veerkamp, G. H. Smith, D. S. Salomon, and R. Grosse. 1994. Members of the fatty acid binding protein family are differentiation factors for the mammary gland. J. Cell Biol. 127:1097–1109.
  • Yoshimura, M., and T. Oka. 1989. Isolation and structural analysis of the mouse-casein gene. Gene 78:267–275.

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