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PMID: 8196644 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Mapping and mutagenesis of the amino-terminal transcriptional repression domain of the Drosophila Krüppel protein.

Molecular and cellular biology ·Vol. 14 ·No. 6 ·1994-06-00 ·Pages 4057-66

Licht JD, Hanna-Rose W, Reddy JC, English MA, Ro M, Grossel M, Shaknovich R, Hansen U

Abstract

We previously demonstrated that the Drosophila Krüppel protein is a transcriptional repressor with separable DNA-binding and transcriptional repression activities. In this study, the minimal amino (N)-terminal repression region of the Krüppel protein was defined by transferring regions of the Krüppel protein to a heterologous DNA-binding protein, the lacI protein. Fusion of a predicted alpha-helical region from amino acids 62 to 92 in the N terminus of the Krüppel protein was sufficient to transfer repression activity. This putative alpha-helix has several hydrophobic surfaces, as well as a glutamine-rich surface. Mutants containing multiple amino acid substitutions of the glutamine residues demonstrated that this putative alpha-helical region is essential for repression activity of a Krüppel protein containing the entire N-terminal and DNA-binding regions. Furthermore, one point mutant with only a single glutamine on this surface altered to lysine abolished the ability of the Krüppel protein to repress, indicating the importance of the amino acid at residue 86 for repression. The N terminus also contained an adjacent activation region localized between amino acids 86 and 117. Finally, in accordance with predictions from primary amino acid sequence similarity, a repression region from the Drosophila even-skipped protein, which was six times more potent than that of the Krüppel protein in the mammalian cells, was characterized. This segment included a hydrophobic stretch of 11 consecutive alanine residues and a proline-rich region.

Related Genes
Kr
MeSH Terms
Amino Acid Sequence Animals Base Sequence DNA Primers DNA-Binding Proteins/biosynthesis,chemistry,metabolism Drosophila/genetics,metabolism Drosophila Proteins Kruppel-Like Transcription Factors Molecular Sequence Data Mutagenesis, Insertional Mutagenesis, Site-Directed Plasmids Point Mutation Polymerase Chain Reaction Protein Folding Protein Structure, Secondary Repressor Proteins Transcription Factors/biosynthesis,chemistry,metabolism
Chemicals
DNA Primers DNA-Binding Proteins Drosophila Proteins Kr protein, Drosophila Kruppel-Like Transcription Factors Repressor Proteins Transcription Factors
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Licht J D
Laboratory of Eukaryotic Transcription, Dana-Farber Cancer Institute, Harvard Medical School, Boston, Massachusetts 02115.
Hanna-Rose W
Reddy J C
English M A
Ro M
Grossel M
Shaknovich R
Hansen U
References (63)
63 references, click to expand
  1. A novel repression module, an extensive activation domain, and a bipartite nuclear localization signal defined in the immediate-early transcription factor Egr-1.
    Mol Cell Biol. 1993 Aug;13(8):4556-71 PMID: 8336701
  2. Differential regulation of transcription preinitiation complex assembly by activator and repressor homeo domain proteins.
    Genes Dev. 1992 Nov;6(11):2177-89 PMID: 1358759
  3. The products of the Drosophila gap genes hunchback and Krüppel bind to the hunchback promoters.
    Nature. 1989 Sep 28;341(6240):335-7 PMID: 2797150
  4. Distinct classes of transcriptional activating domains function by different mechanisms.
    Cell. 1990 Sep 21;62(6):1177-87 PMID: 2205398
  5. Transcriptional repression by YY1, a human GLI-Krüppel-related protein, and relief of repression by adenovirus E1A protein.
    Cell. 1991 Oct 18;67(2):377-88 PMID: 1655281
  6. Early and late periodic patterns of even skipped expression are controlled by distinct regulatory elements that respond to different spatial cues.
    Cell. 1989 May 5;57(3):413-22 PMID: 2720776
  7. Analysis of maternal effect mutant combinations elucidates regulation and function of the overlap of hunchback and Krüppel gene expression in the Drosophila blastoderm embryo.
    Development. 1989 Nov;107(3):651-62 PMID: 2612383
  8. Activities of herpes simplex virus type 1 (HSV-1) ICP4 genes specifying nonsense peptides.
    Nucleic Acids Res. 1987 Jun 11;15(11):4491-511 PMID: 3035496
  9. Molecular cloning and functional analysis of Drosophila TAF110 reveal properties expected of coactivators.
    Cell. 1993 Jan 29;72(2):247-60 PMID: 7678780
  10. Functional domains of the Drosophila Engrailed protein.
    EMBO J. 1993 Jul;12(7):2723-33 PMID: 8334991
  11. Sequence-specific DNA-binding activities of the gap proteins encoded by hunchback and Krüppel in Drosophila.
    Nature. 1989 Sep 28;341(6240):331-5 PMID: 2507923
  12. Analysis of the creA gene, a regulator of carbon catabolite repression in Aspergillus nidulans.
    Mol Cell Biol. 1991 Nov;11(11):5701-9 PMID: 1922072
  13. Correlative changes in homoeotic and segmentation gene expression in Krüppel mutant embryos of Drosophila.
    EMBO J. 1986 Jul;5(7):1659-65 PMID: 16453692
  14. Making stripes in the Drosophila embryo.
    Trends Genet. 1990 Sep;6(9):287-92 PMID: 2238086
  15. The carboxyl-terminal two-thirds of the ADP/ATP carrier polypeptide contains sufficient information to direct translocation into mitochondria.
    J Biol Chem. 1987 Nov 5;262(31):14851-4 PMID: 2822702
  16. Reduced binding of TFIID to transcriptionally compromised mutants of VP16.
    Nature. 1991 Jun 13;351(6327):588-90 PMID: 1646402
  17. The human estrogen receptor has two independent nonacidic transcriptional activation functions.
    Cell. 1989 Nov 3;59(3):477-87 PMID: 2805068
  18. Dr1, a TATA-binding protein-associated phosphoprotein and inhibitor of class II gene transcription.
    Cell. 1992 Aug 7;70(3):477-89 PMID: 1339312
  19. The zygotic control of Drosophila pair-rule gene expression. II. Spatial repression by gap and pair-rule gene products.
    Development. 1989 Nov;107(3):673-83 PMID: 2612385
  20. Drosophila transcriptional repressor protein that binds specifically to negative control elements in fat body enhancers.
    Mol Cell Biol. 1992 Sep;12(9):4093-103 PMID: 1508206
  21. Genetic isolation of ADA2: a potential transcriptional adaptor required for function of certain acidic activation domains.
    Cell. 1992 Jul 24;70(2):251-65 PMID: 1638630
  22. Dimerization and the control of transcription by Krüppel.
    Nature. 1993 Jul 29;364(6436):454-7 PMID: 8332216
  23. Altered trans-activational properties of a mutated WT1 gene product in a WAGR-associated Wilms' tumor.
    Cancer Res. 1993 Oct 15;53(20):4757-60 PMID: 8402654
  24. The giant gene of Drosophila encodes a b-ZIP DNA-binding protein that regulates the expression of other segmentation gap genes.
    Development. 1992 Jan;114(1):99-112 PMID: 1576969
  25. Characterization and localization of the even-skipped protein of Drosophila.
    EMBO J. 1987 Mar;6(3):749-59 PMID: 2884106
  26. Fused protein domains inhibit DNA binding by LexA.
    Mol Cell Biol. 1992 Jul;12(7):3006-14 PMID: 1620111
  27. Steroid hormone receptors compete for factors that mediate their enhancer function.
    Cell. 1989 May 5;57(3):433-42 PMID: 2720778
  28. Transcriptional repression mediated by the WT1 Wilms tumor gene product.
    Science. 1991 Sep 27;253(5027):1550-3 PMID: 1654597
  29. Concentration-dependent transcriptional activation or repression by Krüppel from a single binding site.
    Nature. 1991 Oct 10;353(6344):563-6 PMID: 1922363
  30. Cooperative binding at a distance by even-skipped protein correlates with repression and suggests a mechanism of silencing.
    Mol Cell Biol. 1993 May;13(5):2742-52 PMID: 8097276
  31. A structure-function analysis of transcriptional repression mediated by the WT1, Wilms' tumor suppressor protein.
    Oncogene. 1993 Jul;8(7):1713-20 PMID: 8510918
  32. Three hormone receptor-like Drosophila genes encode an identical DNA-binding finger.
    EMBO J. 1989 Oct;8(10):3087-94 PMID: 2555153
  33. NGFIA (EGR1) contains transcription activating domains in both the amino terminal and carboxyl terminal regions of the protein.
    Biochem Biophys Res Commun. 1993 Jul 15;194(1):425-31 PMID: 8392841
  34. Transcriptional repression by the Drosophila even-skipped protein: definition of a minimal repression domain.
    Genes Dev. 1993 Mar;7(3):491-503 PMID: 8095483
  35. The Wilms' tumor gene product WT1 activates or suppresses transcription through separate functional domains.
    J Biol Chem. 1993 May 5;268(13):9172-5 PMID: 8486616
  36. Functional dissection of VP16, the trans-activator of herpes simplex virus immediate early gene expression.
    Genes Dev. 1988 Jun;2(6):718-29 PMID: 2843425
  37. Transcriptional repression of eukaryotic promoters.
    Cell. 1989 Nov 3;59(3):405-8 PMID: 2572326
  38. Human growth hormone as a reporter gene in regulation studies employing transient gene expression.
    Mol Cell Biol. 1986 Sep;6(9):3173-9 PMID: 3023965
  39. Transcriptional regulation in mammalian cells by sequence-specific DNA binding proteins.
    Science. 1989 Jul 28;245(4916):371-8 PMID: 2667136
  40. Recombinant genomes which express chloramphenicol acetyltransferase in mammalian cells.
    Mol Cell Biol. 1982 Sep;2(9):1044-51 PMID: 6960240
  41. Selective repression of transcriptional activators at a distance by the Drosophila Krüppel protein.
    Proc Natl Acad Sci U S A. 1993 Dec 1;90(23):11361-5 PMID: 8248254
  42. A transferable silencing domain is present in the thyroid hormone receptor, in the v-erbA oncogene product and in the retinoic acid receptor.
    EMBO J. 1992 Mar;11(3):1015-23 PMID: 1347744
  43. A comprehensive set of sequence analysis programs for the VAX.
    Nucleic Acids Res. 1984 Jan 11;12(1 Pt 1):387-95 PMID: 6546423
  44. Transcriptional regulation of a pair-rule stripe in Drosophila.
    Genes Dev. 1991 May;5(5):827-39 PMID: 2026328
  45. Five intermediate complexes in transcription initiation by RNA polymerase II.
    Cell. 1989 Feb 24;56(4):549-61 PMID: 2917366
  46. Stringent regulation of stably integrated chloramphenicol acetyl transferase genes by E. coli lac repressor in monkey cells.
    Cell. 1988 Mar 11;52(5):713-22 PMID: 2830990
  47. Analysis of Sp1 in vivo reveals multiple transcriptional domains, including a novel glutamine-rich activation motif.
    Cell. 1988 Dec 2;55(5):887-98 PMID: 3142690
  48. Mitochondrial targeting sequences may form amphiphilic helices.
    EMBO J. 1986 Jun;5(6):1335-42 PMID: 3015599
  49. A novel spatial transcription pattern associated with the segmentation gene, giant, of Drosophila.
    EMBO J. 1989 May;8(5):1539-48 PMID: 2504582
  50. Mechanism of transcriptional activation by Sp1: evidence for coactivators.
    Cell. 1990 Jun 29;61(7):1187-97 PMID: 2194667
  51. Krüppel requirement for knirps enhancement reflects overlapping gap gene activities in the Drosophila embryo.
    Nature. 1989 Sep 28;341(6240):337-40 PMID: 2797151
  52. The tramtrack gene encodes a Drosophila finger protein that interacts with the ftz transcriptional regulatory region and shows a novel embryonic expression pattern.
    EMBO J. 1990 Jan;9(1):207-16 PMID: 2104801
  53. Evidence for interaction of different eukaryotic transcriptional activators with distinct cellular targets.
    Nature. 1990 Jul 12;346(6280):147-52 PMID: 2142255
  54. lac repressor can regulate expression from a hybrid SV40 early promoter containing a lac operator in animal cells.
    Cell. 1987 Jun 5;49(5):603-12 PMID: 3034429
  55. Expression of the Wilms' tumor gene WT1 in the murine urogenital system.
    Genes Dev. 1991 Aug;5(8):1345-56 PMID: 1651275
  56. Ssn6-Tup1 is a general repressor of transcription in yeast.
    Cell. 1992 Feb 21;68(4):709-19 PMID: 1739976
  57. Active repression of transcription by the engrailed homeodomain protein.
    EMBO J. 1991 Jun;10(6):1427-33 PMID: 1673924
  58. Activation of RNA polymerase II transcription by the specific DNA-binding protein LSF. Increased rate of binding of the basal promoter factor TFIIB.
    J Biol Chem. 1992 Apr 15;267(11):7845-55 PMID: 1313810
  59. The Wilms tumour gene WT1 is expressed in murine mesoderm-derived tissues and mutated in a human mesothelioma.
    Nat Genet. 1993 Aug;4(4):415-20 PMID: 8401592
  60. Regulation of a segmentation stripe by overlapping activators and repressors in the Drosophila embryo.
    Science. 1991 Nov 29;254(5036):1385-7 PMID: 1683715
  61. Mechanism of action of an acidic transcriptional activator in vitro.
    Cell. 1991 Mar 8;64(5):971-81 PMID: 2001592
  62. Activation and repression of transcription by the gap proteins hunchback and Krüppel in cultured Drosophila cells.
    Genes Dev. 1991 Feb;5(2):254-64 PMID: 1671661
  63. Drosophila Krüppel protein is a transcriptional repressor.
    Nature. 1990 Jul 5;346(6279):76-9 PMID: 2114551
Article Info
Journal
Molecular and cellular biology
Abbr.
Mol Cell Biol
ISSN
0270-7306
Published
1994-06-00
Pages
4057-66
Language
English
Region
United States
NLM ID
8109087
PMCID
PMC358771
Subset
IM
Grants
NCI NIH HHS · K11-CA01272 · United States
NCRR NIH HHS · S07-RR05526 · United States
NCI NIH HHS · T32-CA09361 · United States
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