Related Content
Search Google Scholar for:
|
|
Science 23 July 1993: Vol. 261. no. 5120, pp. 438 - 446 DOI: 10.1126/science.8332909
|
|
Articles
Science, Vol 261, Issue 5120, 438-446
Copyright © 1993 by American Association for the Advancement of Science
NMR structure of a specific DNA complex of Zn-containing DNA binding domain of GATA-1
JG Omichinski,
GM Clore,
O Schaad,
G Felsenfeld,
C Trainor,
E Appella,
SJ Stahl,
and
AM Gronenborn
Laboratory of Chemical Physics, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health, Bethesda, MD 20892.
The three-dimensional solution structure of a complex between the DNA binding domain of the chicken erythroid transcription factor GATA-1 and its cognate DNA site has been determined with multidimensional heteronuclear magnetic resonance spectroscopy. The DNA binding domain consists of a core which contains a zinc coordinated by four cysteines and a carboxyl-terminal tail. The core is composed of two irregular antiparallel beta sheets and an alpha helix, followed by a long loop that leads into the carboxyl-terminal tail. The amino-terminal part of the core, including the helix, is similar in structure, although not in sequence, to the amino-terminal zinc module of the glucocorticoid receptor DNA binding domain. In the other regions, the structures of these two DNA binding domains are entirely different. The DNA target site in contact with the protein spans eight base pairs. The helix and the loop connecting the two antiparallel beta sheets interact with the major groove of the DNA. The carboxyl-terminal tail, which is an essential determinant of specific binding, wraps around into the minor groove. The complex resembles a hand holding a rope with the palm and fingers representing the protein core and the thumb, the carboxyl-terminal tail. The specific interactions between GATA-1 and DNA in the major groove are mainly hydrophobic in nature, which accounts for the preponderance of thymines in the target site. A large number of interactions are observed with the phosphate backbone.
THIS ARTICLE HAS BEEN CITED BY OTHER ARTICLES:
- Mutational Analysis of the Helicase-like Domain of Thermotoga maritima Reverse Gyrase.
- C. B. de la Tour, L. Amrani, R. Cossard, K. C. Neuman, M. C. Serre, and M. Duguet (2008)
J. Biol. Chem.
283, 27395-27402
| Abstract »
| Full Text »
| PDF »
- Positive Receptor Feedback during Lineage Commitment Can Generate Ultrasensitivity to Ligand and Confer Robustness to a Bistable Switch.
- S. Palani and C. A. Sarkar (2008)
Biophys. J.
95, 1575-1589
| Abstract »
| Full Text »
| PDF »
- Sugar beet contains a large CONSTANS-LIKE gene family including a CO homologue that is independent of the early-bolting (B) gene locus.
- T. Y. P. Chia, A. Muller, C. Jung, and E. S. Mutasa-Gottgens (2008)
J. Exp. Bot.
59, 2735-2748
| Abstract »
| Full Text »
| PDF »
- Recent Advances in Nitrogen Regulation: a Comparison between Saccharomyces cerevisiae and Filamentous Fungi.
- K. H. Wong, M. J. Hynes, and M. A. Davis (2008)
Eukaryot. Cell
7, 917-925
| Full Text »
| PDF »
- Structure-Function Analysis of the THAP Zinc Finger of THAP1, a Large C2CH DNA-binding Module Linked to Rb/E2F Pathways.
- D. Bessiere, C. Lacroix, S. Campagne, V. Ecochard, V. Guillet, L. Mourey, F. Lopez, J. Czaplicki, P. Demange, A. Milon, et al. (2008)
J. Biol. Chem.
283, 4352-4363
| Abstract »
| Full Text »
| PDF »
- Distinct Structural Requirements of GATA-3 for the Regulation of Thymocyte and Th2 Cell Differentiation.
- S.-Y. Pai, B. Y. Kang, A. M. Sabadini, E. Parisini, M. L. Truitt, and I-C. Ho (2008)
J. Immunol.
180, 1050-1059
| Abstract »
| Full Text »
| PDF »
- Structural consequences of disease-causing mutations in the ATRX-DNMT3-DNMT3L (ADD) domain of the chromatin-associated protein ATRX.
- A. Argentaro, J.-C. Yang, L. Chapman, M. S. Kowalczyk, R. J. Gibbons, D. R. Higgs, D. Neuhaus, and D. Rhodes (2007)
PNAS
104, 11939-11944
| Abstract »
| Full Text »
| PDF »
- Dissecting Molecular Steps in Chromatin Domain Activation during Hematopoietic Differentiation.
- S.-I. Kim, S. J. Bultman, H. Jing, G. A. Blobel, and E. H. Bresnick (2007)
Mol. Cell. Biol.
27, 4551-4565
| Abstract »
| Full Text »
| PDF »
- Functional characterization of GATA3 mutations causing the hypoparathyroidism-deafness-renal (HDR) dysplasia syndrome: insight into mechanisms of DNA binding by the GATA3 transcription factor.
- A. Ali, P. T. Christie, I. V. Grigorieva, B. Harding, H. Van Esch, S. F. Ahmed, M. Bitner-Glindzicz, E. Blind, C. Bloch, P. Christin, et al. (2007)
Hum. Mol. Genet.
16, 265-275
| Abstract »
| Full Text »
| PDF »
- Conservation, Convergence, and Divergence of Light-Responsive, Circadian-Regulated, and Tissue-Specific Expression Patterns during Evolution of the Arabidopsis GATA Gene Family.
- I. W. Manfield, P. F. Devlin, C.-H. Jen, D. R. Westhead, and P. M. Gilmartin (2007)
Plant Physiology
143, 941-958
| Abstract »
| Full Text »
| PDF »
- Acetylation of GATA-1 is required for chromatin occupancy.
- J. M. Lamonica, C. R. Vakoc, and G. A. Blobel (2006)
Blood
108, 3736-3738
| Abstract »
| Full Text »
| PDF »
- Identification of Three Novel Mutations in the GATA3 Gene Responsible for Familial Hypoparathyroidism and Deafness in the Chinese Population.
- W.-Y. Chiu, H.-W. Chen, H.-W. Chao, L.-T. Yann, and K.-S. Tsai (2006)
J. Clin. Endocrinol. Metab.
91, 4587-4592
| Abstract »
| Full Text »
| PDF »
- Critical YxKxHxxxRP Motif in the C-Terminal Region of GATA3 for Its DNA Binding and Function.
- R. Shinnakasu, M. Yamashita, K. Shinoda, Y. Endo, H. Hosokawa, A. Hasegawa, S. Ikemizu, and T. Nakayama (2006)
J. Immunol.
177, 5801-5810
| Abstract »
| Full Text »
| PDF »
- Molecular Analysis of the Interaction between the Hematopoietic Master Transcription Factors GATA-1 and PU.1.
- C. W. Liew, K. D. Rand, R. J. Y. Simpson, W. W. Yung, R. E. Mansfield, M. Crossley, M. Proetorius-Ibba, C. Nerlov, F. M. Poulsen, and J. P. Mackay (2006)
J. Biol. Chem.
281, 28296-28306
| Abstract »
| Full Text »
| PDF »
- Erythropoietin stimulates phosphorylation and activation of GATA-1 via the PI3-kinase/AKT signaling pathway.
- W. Zhao, C. Kitidis, M. D. Fleming, H. F. Lodish, and S. Ghaffari (2006)
Blood
107, 907-915
| Abstract »
| Full Text »
| PDF »
- Transcription Factor Families Have Much Higher Expansion Rates in Plants than in Animals.
- S.-H. Shiu, M.-C. Shih, and W.-H. Li (2005)
Plant Physiology
139, 18-26
| Abstract »
| Full Text »
| PDF »
- The THAP domain of THAP1 is a large C2CH module with zinc-dependent sequence-specific DNA-binding activity.
- T. Clouaire, M. Roussigne, V. Ecochard, C. Mathe, F. Amalric, and J.-P. Girard (2005)
PNAS
102, 6907-6912
| Abstract »
| Full Text »
| PDF »
- GATA1 Function, a Paradigm for Transcription Factors in Hematopoiesis.
- R. Ferreira, K. Ohneda, M. Yamamoto, and S. Philipsen (2005)
Mol. Cell. Biol.
25, 1215-1227
| Full Text »
| PDF »
- Zinc fingers as protein recognition motifs: Structural basis for the GATA-1/Friend of GATA interaction.
- C. K. Liew, R. J. Y. Simpson, A. H. Y. Kwan, L. A. Crofts, F. E. Loughlin, J. M. Matthews, M. Crossley, and J. P. Mackay (2005)
PNAS
102, 583-588
| Abstract »
| Full Text »
| PDF »
- Cross Talk between Retinoic Acid Signaling and Transcription Factor GATA-2.
- S. Tsuzuki, K. Kitajima, T. Nakano, A. Glasow, A. Zelent, and T. Enver (2004)
Mol. Cell. Biol.
24, 6824-6836
| Abstract »
| Full Text »
| PDF »
- GATA transcription factors in the developing and adult heart.
- S. Pikkarainen, H. Tokola, R. Kerkela, and H. Ruskoaho (2004)
Cardiovasc Res
63, 196-207
| Abstract »
| Full Text »
| PDF »
- The GATA Family of Transcription Factors in Arabidopsis and Rice.
- J. C. Reyes, M. I. Muro-Pastor, and F. J. Florencio (2004)
Plant Physiology
134, 1718-1732
| Abstract »
| Full Text »
| PDF »
- The Schizosaccharomyces pombe Corepressor Tup11 Interacts with the Iron-responsive Transcription Factor Fep1.
- S. Znaidi, B. Pelletier, Y. Mukai, and S. Labbe (2004)
J. Biol. Chem.
279, 9462-9474
| Abstract »
| Full Text »
| PDF »
- Structure of the archaeal translation initiation factor aIF2{beta} from Methanobacterium thermoautotrophicum: Implications for translation initiation.
- P. Gutierrez, M. J. Osborne, N. Siddiqui, J.-F. Trempe, C. Arrowsmith, and K. Gehring (2004)
Protein Sci.
13, 659-667
| Abstract »
| Full Text »
| PDF »
- Solution Structure of the Dimeric Zinc Binding Domain of the Chaperone ClpX.
- L. W. Donaldson, U. Wojtyra, and W. A. Houry (2003)
J. Biol. Chem.
278, 48991-48996
| Abstract »
| Full Text »
| PDF »
- The Role of GATA in Mammalian Reproduction.
- H. A. LaVoie (2003)
Experimental Biology and Medicine
228, 1282-1290
| Abstract »
| Full Text »
| PDF »
- Determinants of GATA-1 Binding to DNA: THE ROLE OF NON-FINGER RESIDUES.
- R. Ghirlando and C. D. Trainor (2003)
J. Biol. Chem.
278, 45620-45628
| Abstract »
| Full Text »
| PDF »
- The Evolutionary Duplication and Probable Demise of an Endodermal GATA Factor in Caenorhabditis elegans.
- T. Fukushige, B. Goszczynski, H. Tian, and J. D. McGhee (2003)
Genetics
165, 575-588
| Abstract »
| Full Text »
| PDF »
- Domains of Gln3p Interacting with Karyopherins, Ure2p, and the Target of Rapamycin Protein.
- J. Carvalho and X. F. S. Zheng (2003)
J. Biol. Chem.
278, 16878-16886
| Abstract »
| Full Text »
| PDF »
- Deletion of the GATA Domain of TRPS1 Causes an Absence of Facial Hair and Provides New Insights into the Bone Disorder in Inherited Tricho-Rhino-Phalangeal Syndromes.
- T. H. Malik, D. von Stechow, R. T. Bronson, and R. A. Shivdasani (2002)
Mol. Cell. Biol.
22, 8592-8600
| Abstract »
| Full Text »
| PDF »
- Specificity of Mnt 'master residue' obtained from in vivo and in vitro selections.
- F. S. Silbaq, S. E. Ruttenberg, and G. D. Stormo (2002)
Nucleic Acids Res.
30, 5539-5548
| Abstract »
| Full Text »
| PDF »
- A nonsense mutation in zebrafish gata1 causes the bloodless phenotype in vlad tepes.
- S. E. Lyons, N. D. Lawson, L. Lei, P. E. Bennett, B. M. Weinstein, and P. P. Liu (2002)
PNAS
99, 5454-5459
| Abstract »
| Full Text »
| PDF »
- GATA-4 interacts distinctively with negative and positive regulatory elements in the Fgf-3 promoter.
- A. Murakami, S. Ishida, and C. Dickson (2002)
Nucleic Acids Res.
30, 1056-1064
| Abstract »
| Full Text »
| PDF »
- Identification and Functional Characterization of the p66/p68 Components of the MeCP1 Complex.
- Q. Feng, R. Cao, L. Xia, H. Erdjument-Bromage, P. Tempst, and Y. Zhang (2002)
Mol. Cell. Biol.
22, 536-546
| Abstract »
| Full Text »
| PDF »
- Different substitutions at residue D218 of the X-linked transcription factor GATA1 lead to altered clinical severity of macrothrombocytopenia and anemia and are associated with variable skewed X inactivation.
- K. Freson, G. Matthijs, C. Thys, P. Marien, M. F. Hoylaerts, J. Vermylen, and C. Van Geet (2002)
Hum. Mol. Genet.
11, 147-152
| Abstract »
| Full Text »
| PDF »
- Modulation of Endogenous GATA-4 Activity Reveals Its Dual Contribution to Mullerian Inhibiting Substance Gene Transcription in Sertoli Cells.
- J. J. Tremblay, N. M. Robert, and R. S. Viger (2001)
Mol. Endocrinol.
15, 1636-1650
| Abstract »
| Full Text »
| PDF »
- Circadian Clock-Specific Roles for the Light Response Protein WHITE COLLAR-2.
- M. A. Collett, J. C. Dunlap, and J. J. Loros (2001)
Mol. Cell. Biol.
21, 2619-2628
| Abstract »
| Full Text »
- Treble clef finger--a functionally diverse zinc-binding structural motif.
- N. V. Grishin (2001)
Nucleic Acids Res.
29, 1703-1714
| Abstract »
| Full Text »
| PDF »
- A Novel GATA Factor Transcriptionally Represses Yolk Protein Precursor Genes in the Mosquito Aedes aegypti via Interaction with the CtBP Corepressor.
- D. Martín, M.-D. Piulachs, and A. S. Raikhel (2001)
Mol. Cell. Biol.
21, 164-174
| Abstract »
| Full Text »
- Hd1, a Major Photoperiod Sensitivity Quantitative Trait Locus in Rice, Is Closely Related to the Arabidopsis Flowering Time Gene CONSTANS.
- M. Yano, Y. Katayose, M. Ashikari, U. Yamanouchi, L. Monna, T. Fuse, T. Baba, K. Yamamoto, Y. Umehara, Y. Nagamura, et al. (2000)
PLANT CELL
12, 2473-2484
| Abstract »
| Full Text »
- Action of the Caenorhabditis elegans GATA factor END-1 in Xenopus suggests that similar mechanisms initiate endoderm development in ecdysozoa and vertebrates.
- S. A. Shoichet, T. H. Malik, J. H. Rothman, and R. A. Shivdasani (2000)
PNAS
97, 4076-4081
| Abstract »
| Full Text »
| PDF »
- Overlapping Positive and Negative GATA Factor Binding Sites Mediate Inducible DAL7 Gene Expression in Saccharomyces cerevisiae.
- R. Rai, J. R. Daugherty, T. S. Cunningham, and T. G. Cooper (1999)
J. Biol. Chem.
274, 28026-28034
| Abstract »
| Full Text »
| PDF »
- Analysis of the NuRD subunits reveals a histone deacetylase core complex and a connection with DNA methylation.
- Y. Zhang, H.-H. Ng, H. Erdjument-Bromage, P. Tempst, A. Bird, and D. Reinberg (1999)
Genes & Dev.
13, 1924-1935
| Abstract »
| Full Text »
- CREB-Binding Protein Acetylates Hematopoietic Transcription Factor GATA-1 at Functionally Important Sites.
- H.-L. Hung, J. Lau, A. Y. Kim, M. J. Weiss, and G. A. Blobel (1999)
Mol. Cell. Biol.
19, 3496-3505
| Abstract »
| Full Text »
| PDF »
- The Caenorhabditis elegans genes egl-27 and egr-1 are similar to MTA1, a member of a chromatin regulatory complex, and are redundantly required for embryonic patterning.
- F Solari, A Bateman, and J Ahringer (1999)
Development
126, 2483-2494
| Abstract »
| PDF »
- Involvement of the N-finger in the Self-association of GATA-1.
- J. P. Mackay, K. Kowalski, A. H. Fox, R. Czolij, G. F. King, and M. Crossley (1998)
J. Biol. Chem.
273, 30560-30567
| Abstract »
| Full Text »
| PDF »
- The Saccharomyces cerevisiae GATA Factors Dal80p and Deh1p Can Form Homo- and Heterodimeric Complexes.
- V. V. Svetlov and T. G. Cooper (1998)
J. Bacteriol.
180, 5682-5688
| Abstract »
| Full Text »
- The Insulin-like Growth Factor (IGF)Binding Protein 1 Binding Epitope on IGF-I Probed by Heteronuclear NMR Spectroscopy and Mutational Analysis.
- M. Jansson, G. Andersson, M. Uhlen, B. Nilsson, and J. Kordel (1998)
J. Biol. Chem.
273, 24701-24707
| Abstract »
| Full Text »
| PDF »
- Structure of Cysteine- and Glycine-rich Protein CRP2. BACKBONE DYNAMICS REVEAL MOTIONAL FREEDOM AND INDEPENDENT SPATIAL ORIENTATION OF THE LIM DOMAINS.
- R. Konrat, B. Krautler, R. Weiskirchen, and K. Bister (1998)
J. Biol. Chem.
273, 23233-23240
| Abstract »
| Full Text »
| PDF »
- Mutational Analysis of AREA, a Transcriptional Activator Mediating Nitrogen Metabolite Repression in Aspergillus nidulans and a Member of the "Streetwise" GATA Family of Transcription Factors.
- R. A. Wilson and H. N. Arst Jr. (1998)
Microbiol. Mol. Biol. Rev.
62, 586-596
| Abstract »
| Full Text »
| PDF »
- Interaction between Major Nitrogen Regulatory Protein NIT2 and Pathway-Specific Regulatory Factor NIT4 Is Required for Their Synergistic Activation of Gene Expression in Neurospora crassa.
- B. Feng and G. A. Marzluf (1998)
Mol. Cell. Biol.
18, 3983-3990
| Abstract »
| Full Text »
- GATA transcription factors as potentiators of gut endoderm differentiation.
- P Bossard and K. Zaret (1998)
Development
125, 4909-4917
| Abstract »
| PDF »
- The Establishment of Active Chromatin Domains.
- A. BELL, J. BOYES, J. CHUNG, M. PIKAART, M.-N. PRIOLEAU, F. RECILLAS, N. SAITOH, and G. FELSENFELD (1998)
Cold Spring Harb Symp Quant Biol
63, 509-514
| Abstract »
| PDF »
- NMR Spectroscopic Studies of the DNA-binding Domain of the Monomer-binding Nuclear Orphan Receptor, Human Estrogen Related Receptor-2. THE CARBOXYL-TERMINAL EXTENSION TO THE ZINC-FINGER REGION IS UNSTRUCTURED IN THE FREE FORM OF THE PROTEIN.
- D. S. Sem, D. R. Casimiro, S. A. Kliewer, J. Provencal, R. M. Evans, and P. E. Wright (1997)
J. Biol. Chem.
272, 18038-18043
| Abstract »
| Full Text »
| PDF »
- The second finger of Urbs1 is required for iron-mediated repression of sid1 in Ustilago maydis.
- Z. An, Q. Zhao, J. McEvoy, W. M. Yuan, J. L. Markley, and S. A. Leong (1997)
PNAS
94, 5882-5887
| Abstract »
| Full Text »
| PDF »
- Solution Structure of the Carboxyl-terminal LIM Domain from Quail Cysteine-rich Protein CRP2.
- R. Konrat, R. Weiskirchen, B. Krautler, and K. Bister (1997)
J. Biol. Chem.
272, 12001-12007
| Abstract »
| Full Text »
| PDF »
- Transcripts for Functionally Distinct Isoforms of Chicken GATA-5 Are Differentially Expressed from Alternative First Exons.
- C. MacNeill, B. Ayres, A. C. Laverriere, and J. B.E. Burch (1997)
J. Biol. Chem.
272, 8396-8401
| Abstract »
| Full Text »
| PDF »
- GATA-4 Activates Transcription Via Two Novel Domains That Are Conserved within the GATA-4/5/6 Subfamily.
- E. E. Morrisey, H. S. Ip, Z. Tang, and M. S. Parmacek (1997)
J. Biol. Chem.
272, 8515-8524
| Abstract »
| Full Text »
| PDF »
- alpha -Helical Protein Assembly Motifs.
- W. D. Kohn, C. T. Mant, and R. S. Hodges (1997)
J. Biol. Chem.
272, 2583-2586
| Full Text »
| PDF »
- A molecular aspect of hematopoiesis and endoderm development common to vertebrates and Drosophila.
- K. Rehorn, H Thelen, A. Michelson, and R Reuter (1996)
Development
122, 4023-4031
| Abstract »
| PDF »
- Expression of a Drosophila GATA Transcription Factor in Multiple Tissues in the Developing Embryos.
- W.-H. Lin, L.-H. Huang, J.-Y. Yeh, Jör. Hoheisel, H. Lehrach, Y. H. Sun, and S.-F. Tsai (1995)
J. Biol. Chem.
270, 25150-25158
| Abstract »
| Full Text »
| PDF »
- Low Affinity Binding of Phorbol Esters to Protein Kinase C and Its Recombinant Cysteine-rich Region in the Absence of Phospholipids.
- M. G. Kazanietz, J. J. Barchi Jr., J. G. Omichinski, and P. M. Blumberg (1995)
J. Biol. Chem.
270, 14679-14684
| Abstract »
| Full Text »
| PDF »
- cAMP-dependent Protein Kinase Is Necessary for Increased NF-E2[IMAGE]DNA Complex Formation during Erythroleukemia Cell Differentiation.
- A. D. Garingo, M. Suhasini, N. C. Andrews, and R. B. Pilz (1995)
J. Biol. Chem.
270, 9169-9177
| Abstract »
| Full Text »
| PDF »
- Crystal structure of a p53 tumor suppressor-DNA complex: understanding tumorigenic mutations.
- Y Cho, S Gorina, P. Jeffrey, and N. Pavletich (1994)
Science
265, 346-355
| Abstract »
| PDF »
- High-resolution structure of the oligomerization domain of p53 by multidimensional NMR.
- G. Clore, J. Omichinski, K Sakaguchi, N Zambrano, H Sakamoto, E Appella, and A. Gronenborn (1994)
Science
265, 386-391
| Abstract »
| PDF »
- GATA Zinc Finger Interactions Modulate DNA Binding and Transactivation.
- C. D. Trainor, R. Ghirlando, and M. A. Simpson (2000)
J. Biol. Chem.
275, 28157-28166
| Abstract »
| Full Text »
| PDF »
- GATA-1 Bends DNA in a Site-independent Fashion.
- R. Ghirlando and C. D. Trainor (2000)
J. Biol. Chem.
275, 28152-28156
| Abstract »
| Full Text »
| PDF »
- A Novel Human Striated Muscle RING Zinc Finger Protein, SMRZ, Interacts with SMT3b via Its RING Domain.
- K.-S. Dai and C.-C. Liew (2001)
J. Biol. Chem.
276, 23992-23999
| Abstract »
| Full Text »
| PDF »
- Gln3p Nuclear Localization and Interaction with Ure2p in Saccharomyces cerevisiae.
- A. A. Kulkarni, A. T. Abul-Hamd, R. Rai, H. El Berry, and T. G. Cooper (2001)
J. Biol. Chem.
276, 32136-32144
| Abstract »
| Full Text »
| PDF »
- The N-terminal Zinc Finger of the Erythroid Transcription Factor GATA-1 Binds GATC Motifs in DNA.
- A. Newton, J. Mackay, and M. Crossley (2001)
J. Biol. Chem.
276, 35794-35801
| Abstract »
| Full Text »
| PDF »
- A metallothionein containing a zinc finger within a four-metal cluster protects a bacterium from zinc toxicity.
- C. A. Blindauer, M. D. Harrison, J. A. Parkinson, A. K. Robinson, J. S. Cavet, N. J. Robinson, and P. J. Sadler (2001)
PNAS
98, 9593-9598
| Abstract »
| Full Text »
| PDF »
|
|