Browse > Article
http://dx.doi.org/10.5483/BMBRep.2010.43.12.807

ZAS3 represses NFκB-dependent transcription by direct competition for DNA binding  

Hong, Joung-Woo (The Graduate School of East-West Medical Science, Kyung Hee University)
Wu, Lai-Chu (Department Molecular and Cellular Biochemistry, College of Medicine and Public Health, The Ohio State University)
Publication Information
BMB Reports / v.43, no.12, 2010 , pp. 807-812 More about this Journal
Abstract
$NF{\kappa}B$ and ZAS3 are transcription factors that control important cellular processes including immunity, cell survival and apoptosis. Although both proteins bind the ${\kappa}B$-motif, they produce opposite physiological consequences; $NF{\kappa}B$ activates transcription, promotes cell growth and is often found to be constitutively expressed in cancer cells, while ZAS3 generally represses transcription, inhibits cell proliferation and is downregulated in some cancers. Here, we show that ZAS3 inhibits $NF{\kappa}B$-dependent transcription by competing with $NF{\kappa}B$ for the ${\kappa}B$-motif. Transient transfection studies show that N-terminal 645 amino acids is sufficient to repress transcription activated by $NF{\kappa}B$, and that the identical region also possesses intrinsic repression activity to inhibit basal transcription from a promoter. Finally, in vitro DNA-protein interaction analysis shows that ZAS3 is able to displace $NF{\kappa}B$ by competing with $NF{\kappa}B$ for the ${\kappa}B$-motif. It is conceivable that ZAS3 has therapeutic potential for controlling aberrant activation of $NF{\kappa}B$ in various diseases.
Keywords
DNA competition; ${\kappa}B$-motif-binding proteins; $NF{\kappa}B$; Transcriptional repression; ZAS3;
Citations & Related Records

Times Cited By Web Of Science : 2  (Related Records In Web of Science)
Times Cited By SCOPUS : 1
연도 인용수 순위
1 Gerritsen, M. E., Williams, A. J., Neish, A. S., Moore, S., Shi, Y. and Collins, T. (1997) CREB-binding protein/p300 are transcriptional coactivators of p65. Proc. Natl. Acad. Sci. U.S.A. 94, 2927-2932.   DOI
2 Papin, S., Cazeneuve, C., Duquesnoy, P., Jeru, I., Sahali, D. and Amselem, S. (2003) The tumor necrosis factor $\alpha$-dependent activation of the human mediterranean fever (MEFV) promoter is mediated by a synergistic interaction between $C/EBP{\beta}$ and $NF{\kappa}B$ p65. J. Biol. Chem. 278, 48839-48847.   DOI   ScienceOn
3 Levine, M. and Manley, J. L. (1989) Transcriptional repression of eukaryotic promoters. Cell 59, 405-408.   DOI   ScienceOn
4 Ayer, D. E., Laherty, C. D., Lawrence, Q. A., Armstrong, A. P. and Eisenman, R. N. (1996) Mad proteins contain a dominant transcription repression domain. Mol. Cell Biol. 16, 5772-5781.   DOI
5 Fleischer, T. C., Yun, U. J. and Ayer, D. E. (2003) Identification and characterization of three new components of the mSin3A corepressor complex. Mol. Cell Biol. 23, 3456-3467.   DOI
6 Kakidani, H. and Ptashne, M. (1988) GAL4 activates gene expression in mammalian cells. Cell 52, 161-167.   DOI   ScienceOn
7 Ptashne, M. (1986) A genetic switch. Cell Press and Blackwell Scientific Publications, Cambridge, Massachusetts.
8 Ghosh, S. and Karin, M. (2002) Missing pieces in the $NF-{\kappa}B$ puzzle. Cell 109(Suppl), S81-96.   DOI   ScienceOn
9 Han, K. and Manley, J. L. (1993) Transcriptional repression by the Drosophila even-skipped protein: definition of a minimal repression domain. Genes Dev. 7, 491-503.   DOI   ScienceOn
10 Han, K. and Manley, J. L. (1993) Functional domains of the Drosophila Engrailed protein. EMBO J. 12, 2723-2733.
11 Sigler, P. B. (1988) Transcriptional activation. Acid blobs and negative noodles. Nature 333, 210-212.   DOI   ScienceOn
12 Ptashne, M. (1988) How eukaryotic transcriptional activators work. Nature 335, 683-689.   DOI   ScienceOn
13 Allen, C. E., Mak, C. H. and Wu, L. C. (2002) The ${\kappa}B$ transcriptional enhancer motif and signal sequences of V(D)J recombination are targets for the zinc finger protein HIVEP3/KRC: a site selection amplification binding study. BMC Immunol. 3, 10.   DOI
14 Nissen, R. M. and Yamamoto, K. R. (2000) The glucocorticoid receptor inhibits $NF{\kappa}B$ by interfering with serine-2 phosphorylation of the RNA polymerase II carboxy-terminal domain. Genes Dev. 14, 2314-2329.   DOI
15 Chen, G. and Goeddel, D. V. (2002) TNF-R1 signaling: a beautiful pathway. Science 296, 1634-1635.   DOI   ScienceOn
16 Gilmore, T., Gapuzan, M. E., Kalaitzidis, D. and Starczynowski, D. (2002) $Rel/NF-{\kappa}B/I\;{\kappa}B$ signal transduction in the generation and treatment of human cancer. Cancer Lett. 181, 1-9.   DOI   ScienceOn
17 Wu, L. C. (2002) ZAS: $C_2H_2$ zinc finger proteins involved in growth and development. Gene Expr. 10, 137-152.
18 Fujii, H., Gabrielson, E., Takagaki, T., Ohtsuji, M., Ohtsuji, N. and Hino, O. (2005) Frequent down-regulation of HIVEP2 in human breast cancer. Breast Cancer Res. Treat. 91, 103-112.   DOI
19 Aalto, Y., El-Rifa, W., Vilpo, L., Ollila, J., Nagy, B., Vihinen, M., Vilpo, J. and Knuutila, S. (2001) Distinct gene expression profiling in chronic lymphocytic leukemia with 11q23 deletion. Leukemia 15, 1721-1728.   DOI   ScienceOn
20 Allen, C. E., Muthusamy, N., Weisbrode, S. E., Hong, J. W. and Wu, L. C. (2002) Developmental anomalies and neoplasia in animals and cells deficient in the large zinc finger protein KRC. Genes Chromosomes Cancer 35, 287-298.   DOI   ScienceOn
21 Oeckinghaus, A. and Ghosh, S. (2009) The NF-kB Family of Transcription Factors and its regulation. Cold Spring Harb. Perspect. Biol. 1, a000034.   DOI   ScienceOn
22 Oukka, M., Kim, S. T., Lugo, G., Sun, J., Wu, L. C. and Glimcher, L. H. (2002) A mammalian homolog of Drosophila schnurri, KRC, regulates TNF receptor-driven responses and interacts with TRAF2. Mol. Cell 9, 121-131.   DOI   ScienceOn
23 Hong, J. W., Allen, C. E. and Wu, L. C. (2003) Inhibition of $NF-{\kappa}B$ by ZAS3, a zinc-finger protein that also binds to the ${\kappa}B$ motif. Proc. Natl. Acad. Sci. U.S.A. 100, 12301-12306.   DOI   ScienceOn
24 Pierce, J. W., Lenardo, M. and Baltimore, D. (1988) Oligonucleotide that binds nuclear factor $NF-{\kappa}B$ acts as a lymphoid-specific and inducible enhancer element. Proc. Natl. Acad. Sci. U.S.A. 85, 1482-1486.   DOI   ScienceOn