-
1
-
-
0025977563
-
Erythroid differentiation in chimaeric mice blocked by a targeted mutation in the gene for transcription factor GATA-1
-
Pevny L., et al. Erythroid differentiation in chimaeric mice blocked by a targeted mutation in the gene for transcription factor GATA-1. Nature 1991, 349:257-260.
-
(1991)
Nature
, vol.349
, pp. 257-260
-
-
Pevny, L.1
-
2
-
-
18544364934
-
Tie2Cre-mediated gene ablation defines the stem-cell leukemia gene (SCL/tal1)-dependent window during hematopoietic stem-cell development
-
Schlaeger T.M., et al. Tie2Cre-mediated gene ablation defines the stem-cell leukemia gene (SCL/tal1)-dependent window during hematopoietic stem-cell development. Blood 2005, 105:3871-3874.
-
(2005)
Blood
, vol.105
, pp. 3871-3874
-
-
Schlaeger, T.M.1
-
3
-
-
0029121271
-
Absence of yolk sac hematopoiesis from mice with a targeted disruption of the scl gene
-
Robb L., et al. Absence of yolk sac hematopoiesis from mice with a targeted disruption of the scl gene. Proc. Natl. Acad. Sci. U.S.A. 1995, 92:7075-7079.
-
(1995)
Proc. Natl. Acad. Sci. U.S.A.
, vol.92
, pp. 7075-7079
-
-
Robb, L.1
-
4
-
-
0030581174
-
The T cell leukemia oncoprotein SCL/tal-1 is essential for development of all hematopoietic lineages
-
Porcher C., et al. The T cell leukemia oncoprotein SCL/tal-1 is essential for development of all hematopoietic lineages. Cell 1996, 86:47-57.
-
(1996)
Cell
, vol.86
, pp. 47-57
-
-
Porcher, C.1
-
5
-
-
0029010790
-
Defective haematopoiesis in fetal liver resulting from inactivation of the EKLF gene
-
Nuez B., et al. Defective haematopoiesis in fetal liver resulting from inactivation of the EKLF gene. Nature 1995, 375:316-318.
-
(1995)
Nature
, vol.375
, pp. 316-318
-
-
Nuez, B.1
-
6
-
-
0028990264
-
Lethal beta-thalassaemia in mice lacking the erythroid CACCC-transcription factor EKLF
-
Perkins A.C., et al. Lethal beta-thalassaemia in mice lacking the erythroid CACCC-transcription factor EKLF. Nature 1995, 375:318-322.
-
(1995)
Nature
, vol.375
, pp. 318-322
-
-
Perkins, A.C.1
-
7
-
-
77955131763
-
Genome-wide identification of TAL1's functional targets: insights into its mechanisms of action in primary erythroid cells
-
Kassouf M.T., et al. Genome-wide identification of TAL1's functional targets: insights into its mechanisms of action in primary erythroid cells. Genome Res. 2010, 20:1064-1083.
-
(2010)
Genome Res.
, vol.20
, pp. 1064-1083
-
-
Kassouf, M.T.1
-
8
-
-
77955155544
-
A global role for KLF1 in erythropoiesis revealed by ChIP-seq in primary erythroid cells
-
Tallack M.R., et al. A global role for KLF1 in erythropoiesis revealed by ChIP-seq in primary erythroid cells. Genome Res. 2010, 20:1052-1063.
-
(2010)
Genome Res.
, vol.20
, pp. 1052-1063
-
-
Tallack, M.R.1
-
9
-
-
70449696134
-
Erythroid GATA1 function revealed by genome-wide analysis of transcription factor occupancy, histone modifications, and mRNA expression
-
Cheng Y., et al. Erythroid GATA1 function revealed by genome-wide analysis of transcription factor occupancy, histone modifications, and mRNA expression. Genome Res. 2009, 19:2172-2184.
-
(2009)
Genome Res.
, vol.19
, pp. 2172-2184
-
-
Cheng, Y.1
-
10
-
-
84870543736
-
Novel roles for KLF1 in erythropoiesis revealed by mRNA-seq
-
Tallack M.R., et al. Novel roles for KLF1 in erythropoiesis revealed by mRNA-seq. Genome Res. 2012, 22:2385-2398.
-
(2012)
Genome Res.
, vol.22
, pp. 2385-2398
-
-
Tallack, M.R.1
-
11
-
-
33645743530
-
A global role for EKLF in definitive and primitive erythropoiesis
-
Hodge D., et al. A global role for EKLF in definitive and primitive erythropoiesis. Blood 2006, 107:3359-3370.
-
(2006)
Blood
, vol.107
, pp. 3359-3370
-
-
Hodge, D.1
-
12
-
-
80053516108
-
Dynamics of the epigenetic landscape during erythroid differentiation after GATA1 restoration
-
Wu W., et al. Dynamics of the epigenetic landscape during erythroid differentiation after GATA1 restoration. Genome Res. 2011, 21:1659-1671.
-
(2011)
Genome Res.
, vol.21
, pp. 1659-1671
-
-
Wu, W.1
-
13
-
-
70449675049
-
Discovering hematopoietic mechanisms through genome-wide analysis of GATA factor chromatin occupancy
-
Fujiwara T., et al. Discovering hematopoietic mechanisms through genome-wide analysis of GATA factor chromatin occupancy. Mol. Cell 2009, 36:667-681.
-
(2009)
Mol. Cell
, vol.36
, pp. 667-681
-
-
Fujiwara, T.1
-
14
-
-
70449638281
-
Insights into GATA-1-mediated gene activation versus repression via genome-wide chromatin occupancy analysis
-
Yu M., et al. Insights into GATA-1-mediated gene activation versus repression via genome-wide chromatin occupancy analysis. Mol. Cell 2009, 36:682-695.
-
(2009)
Mol. Cell
, vol.36
, pp. 682-695
-
-
Yu, M.1
-
15
-
-
84877296422
-
GATA-1 genome-wide occupancy associates with distinct epigenetic profiles in mouse fetal liver erythropoiesis
-
Papadopoulos G.L., et al. GATA-1 genome-wide occupancy associates with distinct epigenetic profiles in mouse fetal liver erythropoiesis. Nucleic Acids Res. 2013, 41:4938-4948.
-
(2013)
Nucleic Acids Res.
, vol.41
, pp. 4938-4948
-
-
Papadopoulos, G.L.1
-
16
-
-
84863264788
-
A core erythroid transcriptional network is repressed by a master regulator of myelo-lymphoid differentiation
-
Wontakal S.N., et al. A core erythroid transcriptional network is repressed by a master regulator of myelo-lymphoid differentiation. Proc. Natl. Acad. Sci. U.S.A. 2012, 109:3832-3837.
-
(2012)
Proc. Natl. Acad. Sci. U.S.A.
, vol.109
, pp. 3832-3837
-
-
Wontakal, S.N.1
-
17
-
-
55449130784
-
Molecular hallmarks of endogenous chromatin complexes containing master regulators of hematopoiesis
-
Wozniak R.J., et al. Molecular hallmarks of endogenous chromatin complexes containing master regulators of hematopoiesis. Mol. Cell. Biol. 2008, 28:6681-6694.
-
(2008)
Mol. Cell. Biol.
, vol.28
, pp. 6681-6694
-
-
Wozniak, R.J.1
-
18
-
-
64049118936
-
SCL and associated proteins distinguish active from repressive GATA transcription factor complexes
-
Tripic T., et al. SCL and associated proteins distinguish active from repressive GATA transcription factor complexes. Blood 2009, 113:2191-2201.
-
(2009)
Blood
, vol.113
, pp. 2191-2201
-
-
Tripic, T.1
-
19
-
-
0030999645
-
The LIM-only protein Lmo2 is a bridging molecule assembling an erythroid, DNA-binding complex which includes the TAL1, E47, GATA-1 and Ldb1/NLI proteins
-
Wadman I.A., et al. The LIM-only protein Lmo2 is a bridging molecule assembling an erythroid, DNA-binding complex which includes the TAL1, E47, GATA-1 and Ldb1/NLI proteins. EMBO J. 1997, 16:3145-3157.
-
(1997)
EMBO J.
, vol.16
, pp. 3145-3157
-
-
Wadman, I.A.1
-
20
-
-
0037327126
-
Functional ablation of the mouse Ldb1 gene results in severe patterning defects during gastrulation
-
Mukhopadhyay M., et al. Functional ablation of the mouse Ldb1 gene results in severe patterning defects during gastrulation. Development 2003, 130:495-505.
-
(2003)
Development
, vol.130
, pp. 495-505
-
-
Mukhopadhyay, M.1
-
21
-
-
78649441087
-
A requirement for Lim domain binding protein 1 in erythropoiesis
-
Li L., et al. A requirement for Lim domain binding protein 1 in erythropoiesis. J. Exp. Med. 2010, 207:2543-2550.
-
(2010)
J. Exp. Med.
, vol.207
, pp. 2543-2550
-
-
Li, L.1
-
22
-
-
0032584104
-
The T cell leukemia LIM protein Lmo2 is necessary for adult mouse hematopoiesis
-
Yamada Y., et al. The T cell leukemia LIM protein Lmo2 is necessary for adult mouse hematopoiesis. Proc. Natl. Acad. Sci. U.S.A. 1998, 95:3890-3895.
-
(1998)
Proc. Natl. Acad. Sci. U.S.A.
, vol.95
, pp. 3890-3895
-
-
Yamada, Y.1
-
23
-
-
0028278325
-
The oncogenic cysteine-rich LIM domain protein rbtn2 is essential for erythroid development
-
Warren A.J., et al. The oncogenic cysteine-rich LIM domain protein rbtn2 is essential for erythroid development. Cell 1994, 78:45-57.
-
(1994)
Cell
, vol.78
, pp. 45-57
-
-
Warren, A.J.1
-
24
-
-
76149089221
-
The genome-wide dynamics of the binding of Ldb1 complexes during erythroid differentiation
-
Soler E., et al. The genome-wide dynamics of the binding of Ldb1 complexes during erythroid differentiation. Genes Dev. 2010, 24:277-289.
-
(2010)
Genes Dev.
, vol.24
, pp. 277-289
-
-
Soler, E.1
-
25
-
-
84880832596
-
Ldb1-nucleated transcription complexes function as primary mediators of global erythroid gene activation
-
Li L., et al. Ldb1-nucleated transcription complexes function as primary mediators of global erythroid gene activation. Blood 2013, 121:4575-4585.
-
(2013)
Blood
, vol.121
, pp. 4575-4585
-
-
Li, L.1
-
26
-
-
0036923833
-
Looping and interaction between hypersensitive sites in the active beta-globin locus
-
Tolhuis B., et al. Looping and interaction between hypersensitive sites in the active beta-globin locus. Mol. Cell 2002, 10:1453-1465.
-
(2002)
Mol. Cell
, vol.10
, pp. 1453-1465
-
-
Tolhuis, B.1
-
27
-
-
5444255213
-
The active spatial organization of the beta-globin locus requires the transcription factor EKLF
-
Drissen R., et al. The active spatial organization of the beta-globin locus requires the transcription factor EKLF. Genes Dev. 2004, 18:2485-2490.
-
(2004)
Genes Dev.
, vol.18
, pp. 2485-2490
-
-
Drissen, R.1
-
28
-
-
13244272059
-
Proximity among distant regulatory elements at the beta-globin locus requires GATA-1 and FOG-1
-
Vakoc C.R., et al. Proximity among distant regulatory elements at the beta-globin locus requires GATA-1 and FOG-1. Mol. Cell 2005, 17:453-462.
-
(2005)
Mol. Cell
, vol.17
, pp. 453-462
-
-
Vakoc, C.R.1
-
29
-
-
0347093483
-
LIM-domain-binding protein 1: a multifunctional cofactor that interacts with diverse proteins
-
Matthews J.M., Visvader J.E. LIM-domain-binding protein 1: a multifunctional cofactor that interacts with diverse proteins. EMBO Rep. 2003, 4:1132-1137.
-
(2003)
EMBO Rep.
, vol.4
, pp. 1132-1137
-
-
Matthews, J.M.1
Visvader, J.E.2
-
30
-
-
77953082257
-
LIM domain binding proteins 1 and 2 have different oligomeric states
-
Cross A.J., et al. LIM domain binding proteins 1 and 2 have different oligomeric states. J. Mol. Biol. 2010, 399:133-144.
-
(2010)
J. Mol. Biol.
, vol.399
, pp. 133-144
-
-
Cross, A.J.1
-
31
-
-
36749056884
-
A positive role for NLI/Ldb1 in long-range beta-globin locus control region function
-
Song S.H., et al. A positive role for NLI/Ldb1 in long-range beta-globin locus control region function. Mol. Cell 2007, 28:810-822.
-
(2007)
Mol. Cell
, vol.28
, pp. 810-822
-
-
Song, S.H.1
-
32
-
-
84861964135
-
Controlling long-range genomic interactions at a native locus by targeted tethering of a looping factor
-
Deng W., et al. Controlling long-range genomic interactions at a native locus by targeted tethering of a looping factor. Cell 2012, 149:1233-1244.
-
(2012)
Cell
, vol.149
, pp. 1233-1244
-
-
Deng, W.1
-
33
-
-
77957694828
-
Multiple functions of Ldb1 required for beta-globin activation during erythroid differentiation
-
Song S.H., et al. Multiple functions of Ldb1 required for beta-globin activation during erythroid differentiation. Blood 2010, 116:2356-2364.
-
(2010)
Blood
, vol.116
, pp. 2356-2364
-
-
Song, S.H.1
-
34
-
-
84857051019
-
Dynamic long-range chromatin interactions control Myb proto-oncogene transcription during erythroid development
-
Stadhouders R., et al. Dynamic long-range chromatin interactions control Myb proto-oncogene transcription during erythroid development. EMBO J. 2012, 31:986-999.
-
(2012)
EMBO J.
, vol.31
, pp. 986-999
-
-
Stadhouders, R.1
-
35
-
-
20344364878
-
The erythroid phenotype of EKLF-null mice: defects in hemoglobin metabolism and membrane stability
-
Drissen R., et al. The erythroid phenotype of EKLF-null mice: defects in hemoglobin metabolism and membrane stability. Mol. Cell. Biol. 2005, 25:5205-5214.
-
(2005)
Mol. Cell. Biol.
, vol.25
, pp. 5205-5214
-
-
Drissen, R.1
-
36
-
-
33646675621
-
Major erythrocyte membrane protein genes in EKLF-deficient mice
-
Nilson D.G., et al. Major erythrocyte membrane protein genes in EKLF-deficient mice. Exp. Hematol. 2006, 34:705-712.
-
(2006)
Exp. Hematol.
, vol.34
, pp. 705-712
-
-
Nilson, D.G.1
-
37
-
-
80053559720
-
Genome-wide ChIP-Seq reveals a dramatic shift in the binding of the transcription factor erythroid Kruppel-like factor during erythrocyte differentiation
-
Pilon A.M., et al. Genome-wide ChIP-Seq reveals a dramatic shift in the binding of the transcription factor erythroid Kruppel-like factor during erythrocyte differentiation. Blood 2011, 118:e139-e148.
-
(2011)
Blood
, vol.118
-
-
Pilon, A.M.1
-
38
-
-
0032486401
-
Multiple proteins binding to a GATA-E box-GATA motif regulate the erythroid Kruppel-like factor (EKLF) gene
-
Anderson K.P., et al. Multiple proteins binding to a GATA-E box-GATA motif regulate the erythroid Kruppel-like factor (EKLF) gene. J. Biol. Chem. 1998, 273:14347-14354.
-
(1998)
J. Biol. Chem.
, vol.273
, pp. 14347-14354
-
-
Anderson, K.P.1
-
39
-
-
0028352312
-
Regulation of the erythroid Kruppel-like factor (EKLF) gene promoter by the erythroid transcription factor GATA-1
-
Crossley M., et al. Regulation of the erythroid Kruppel-like factor (EKLF) gene promoter by the erythroid transcription factor GATA-1. J. Biol. Chem. 1994, 269:15440-15444.
-
(1994)
J. Biol. Chem.
, vol.269
, pp. 15440-15444
-
-
Crossley, M.1
-
40
-
-
73349090560
-
Preferential associations between co-regulated genes reveal a transcriptional interactome in erythroid cells
-
Schoenfelder S., et al. Preferential associations between co-regulated genes reveal a transcriptional interactome in erythroid cells. Nat. Genet. 2010, 42:53-61.
-
(2010)
Nat. Genet.
, vol.42
, pp. 53-61
-
-
Schoenfelder, S.1
-
41
-
-
0142027814
-
Structure and function of the feed-forward loop network motif
-
Mangan S., Alon U. Structure and function of the feed-forward loop network motif. Proc. Natl. Acad. Sci. U.S.A. 2003, 100:11980-11985.
-
(2003)
Proc. Natl. Acad. Sci. U.S.A.
, vol.100
, pp. 11980-11985
-
-
Mangan, S.1
Alon, U.2
-
42
-
-
33646140805
-
Chromatin-binding in vivo of the erythroid kruppel-like factor, EKLF, in the murine globin loci
-
Shyu Y.C., et al. Chromatin-binding in vivo of the erythroid kruppel-like factor, EKLF, in the murine globin loci. Cell Res. 2006, 16:347-355.
-
(2006)
Cell Res.
, vol.16
, pp. 347-355
-
-
Shyu, Y.C.1
-
43
-
-
34247272882
-
Long-range chromosomal interactions regulate the timing of the transition between poised and active gene expression
-
Vernimmen D., et al. Long-range chromosomal interactions regulate the timing of the transition between poised and active gene expression. EMBO J. 2007, 26:2041-2051.
-
(2007)
EMBO J.
, vol.26
, pp. 2041-2051
-
-
Vernimmen, D.1
-
44
-
-
22744436722
-
FOG-1 recruits the NuRD repressor complex to mediate transcriptional repression by GATA-1
-
Hong W., et al. FOG-1 recruits the NuRD repressor complex to mediate transcriptional repression by GATA-1. EMBO J. 2005, 24:2367-2378.
-
(2005)
EMBO J.
, vol.24
, pp. 2367-2378
-
-
Hong, W.1
-
45
-
-
80052284219
-
Structural basis of simultaneous recruitment of the transcriptional regulators LMO2 and FOG1/ZFPM1 by the transcription factor GATA1
-
Wilkinson-White L., et al. Structural basis of simultaneous recruitment of the transcriptional regulators LMO2 and FOG1/ZFPM1 by the transcription factor GATA1. Proc. Natl. Acad. Sci. U.S.A. 2011, 108:14443-14448.
-
(2011)
Proc. Natl. Acad. Sci. U.S.A.
, vol.108
, pp. 14443-14448
-
-
Wilkinson-White, L.1
-
46
-
-
27944475459
-
ETO-2 associates with SCL in erythroid cells and megakaryocytes and provides repressor functions in erythropoiesis
-
Schuh A.H., et al. ETO-2 associates with SCL in erythroid cells and megakaryocytes and provides repressor functions in erythropoiesis. Mol. Cell. Biol. 2005, 25:10235-10250.
-
(2005)
Mol. Cell. Biol.
, vol.25
, pp. 10235-10250
-
-
Schuh, A.H.1
-
47
-
-
33846159467
-
Novel binding partners of Ldb1 are required for haematopoietic development
-
Meier N., et al. Novel binding partners of Ldb1 are required for haematopoietic development. Development 2006, 133:4913-4923.
-
(2006)
Development
, vol.133
, pp. 4913-4923
-
-
Meier, N.1
-
48
-
-
31444450865
-
ETO2 coordinates cellular proliferation and differentiation during erythropoiesis
-
Goardon N., et al. ETO2 coordinates cellular proliferation and differentiation during erythropoiesis. EMBO J. 2006, 25:357-366.
-
(2006)
EMBO J.
, vol.25
, pp. 357-366
-
-
Goardon, N.1
-
49
-
-
0036467868
-
The zinc-finger proto-oncogene Gfi-1b is essential for development of the erythroid and megakaryocytic lineages
-
Saleque S., et al. The zinc-finger proto-oncogene Gfi-1b is essential for development of the erythroid and megakaryocytic lineages. Genes Dev. 2002, 16:301-306.
-
(2002)
Genes Dev.
, vol.16
, pp. 301-306
-
-
Saleque, S.1
-
50
-
-
78751625306
-
Nuclear adaptor Ldb1 regulates a transcriptional program essential for the maintenance of hematopoietic stem cells
-
Li L., et al. Nuclear adaptor Ldb1 regulates a transcriptional program essential for the maintenance of hematopoietic stem cells. Nat. Immunol. 2011, 12:129-136.
-
(2011)
Nat. Immunol.
, vol.12
, pp. 129-136
-
-
Li, L.1
-
51
-
-
5444223724
-
GATA-2 plays two functionally distinct roles during the ontogeny of hematopoietic stem cells
-
Ling K.W., et al. GATA-2 plays two functionally distinct roles during the ontogeny of hematopoietic stem cells. J. Exp. Med. 2004, 200:871-882.
-
(2004)
J. Exp. Med.
, vol.200
, pp. 871-882
-
-
Ling, K.W.1
-
52
-
-
77957783607
-
GATA switches as developmental drivers
-
Bresnick E.H., et al. GATA switches as developmental drivers. J. Biol. Chem. 2010, 285:31087-31093.
-
(2010)
J. Biol. Chem.
, vol.285
, pp. 31087-31093
-
-
Bresnick, E.H.1
-
53
-
-
84879447932
-
Genome-wide analysis shows that Ldb1 controls essential hematopoietic genes/pathways in mouse early development and reveals novel players in hematopoiesis
-
Mylona A., et al. Genome-wide analysis shows that Ldb1 controls essential hematopoietic genes/pathways in mouse early development and reveals novel players in hematopoiesis. Blood 2013, 121:2902-2913.
-
(2013)
Blood
, vol.121
, pp. 2902-2913
-
-
Mylona, A.1
-
54
-
-
0037472895
-
Haematopoietic stem cells retain long-term repopulating activity and multipotency in the absence of stem-cell leukaemia SCL/tal-1 gene
-
Mikkola H.K., et al. Haematopoietic stem cells retain long-term repopulating activity and multipotency in the absence of stem-cell leukaemia SCL/tal-1 gene. Nature 2003, 421:547-551.
-
(2003)
Nature
, vol.421
, pp. 547-551
-
-
Mikkola, H.K.1
-
55
-
-
36348997190
-
Aberrant mast-cell differentiation in mice lacking the stem-cell leukemia gene
-
Salmon J.M., et al. Aberrant mast-cell differentiation in mice lacking the stem-cell leukemia gene. Blood 2007, 110:3573-3581.
-
(2007)
Blood
, vol.110
, pp. 3573-3581
-
-
Salmon, J.M.1
-
56
-
-
41149131250
-
Antagonism of FOG-1 and GATA factors in fate choice for the mast cell lineage
-
Cantor A.B., et al. Antagonism of FOG-1 and GATA factors in fate choice for the mast cell lineage. J. Exp. Med. 2008, 205:611-624.
-
(2008)
J. Exp. Med.
, vol.205
, pp. 611-624
-
-
Cantor, A.B.1
-
57
-
-
0037415557
-
GATA-1 as a regulator of mast cell differentiation revealed by the phenotype of the GATA-1low mouse mutant
-
Migliaccio A.R., et al. GATA-1 as a regulator of mast cell differentiation revealed by the phenotype of the GATA-1low mouse mutant. J. Exp. Med. 2003, 197:281-296.
-
(2003)
J. Exp. Med.
, vol.197
, pp. 281-296
-
-
Migliaccio, A.R.1
-
58
-
-
0037071383
-
Transcriptional regulation of erythropoiesis: an affair involving multiple partners
-
Cantor A.B., Orkin S.H. Transcriptional regulation of erythropoiesis: an affair involving multiple partners. Oncogene 2002, 21:3368-3376.
-
(2002)
Oncogene
, vol.21
, pp. 3368-3376
-
-
Cantor, A.B.1
Orkin, S.H.2
-
59
-
-
0034623079
-
GATA zinc finger interactions modulate DNA binding and transactivation
-
Trainor C.D., et al. GATA zinc finger interactions modulate DNA binding and transactivation. J. Biol. Chem. 2000, 275:28157-28166.
-
(2000)
J. Biol. Chem.
, vol.275
, pp. 28157-28166
-
-
Trainor, C.D.1
-
60
-
-
72149086961
-
Controlling hematopoiesis through sumoylation-dependent regulation of a GATA factor
-
Lee H.Y., et al. Controlling hematopoiesis through sumoylation-dependent regulation of a GATA factor. Mol. Cell 2009, 36:984-995.
-
(2009)
Mol. Cell
, vol.36
, pp. 984-995
-
-
Lee, H.Y.1
-
62
-
-
0029926485
-
Arrested development of embryonic red cell precursors in mouse embryos lacking transcription factor GATA-1
-
Fujiwara Y., et al. Arrested development of embryonic red cell precursors in mouse embryos lacking transcription factor GATA-1. Proc. Natl. Acad. Sci. U.S.A. 1996, 93:12355-12358.
-
(1996)
Proc. Natl. Acad. Sci. U.S.A.
, vol.93
, pp. 12355-12358
-
-
Fujiwara, Y.1
-
63
-
-
0026754708
-
SCL and related hemopoietic helix-loop-helix transcription factors
-
Green A.R., Begley C.G. SCL and related hemopoietic helix-loop-helix transcription factors. Int. J. Cell Cloning 1992, 10:269-276.
-
(1992)
Int. J. Cell Cloning
, vol.10
, pp. 269-276
-
-
Green, A.R.1
Begley, C.G.2
-
64
-
-
58949098459
-
Adult hematopoietic stem and progenitor cells require either Lyl1 or Scl for survival
-
Souroullas G.P., et al. Adult hematopoietic stem and progenitor cells require either Lyl1 or Scl for survival. Cell Stem Cell 2009, 4:180-186.
-
(2009)
Cell Stem Cell
, vol.4
, pp. 180-186
-
-
Souroullas, G.P.1
-
65
-
-
0037417892
-
The critical regulator of embryonic hematopoiesis, SCL, is vital in the adult for megakaryopoiesis, erythropoiesis, and lineage choice in CFU-S12
-
Hall M.A., et al. The critical regulator of embryonic hematopoiesis, SCL, is vital in the adult for megakaryopoiesis, erythropoiesis, and lineage choice in CFU-S12. Proc. Natl. Acad. Sci. U.S.A. 2003, 100:992-997.
-
(2003)
Proc. Natl. Acad. Sci. U.S.A.
, vol.100
, pp. 992-997
-
-
Hall, M.A.1
-
66
-
-
80052153840
-
The multifunctional role of EKLF/KLF1 during erythropoiesis
-
Siatecka M., Bieker J.J. The multifunctional role of EKLF/KLF1 during erythropoiesis. Blood 2011, 118:2044-2054.
-
(2011)
Blood
, vol.118
, pp. 2044-2054
-
-
Siatecka, M.1
Bieker, J.J.2
-
67
-
-
78149481592
-
Mammalian Kruppel-like factors in health and diseases
-
McConnell B.B., Yang V.W. Mammalian Kruppel-like factors in health and diseases. Physiol. Rev. 2010, 90:1337-1381.
-
(2010)
Physiol. Rev.
, vol.90
, pp. 1337-1381
-
-
McConnell, B.B.1
Yang, V.W.2
-
68
-
-
37049035381
-
Novel role for EKLF in megakaryocyte lineage commitment
-
Frontelo P., et al. Novel role for EKLF in megakaryocyte lineage commitment. Blood 2007, 110:3871-3880.
-
(2007)
Blood
, vol.110
, pp. 3871-3880
-
-
Frontelo, P.1
-
69
-
-
73949133624
-
Megakaryocyte-erythroid lineage promiscuity in EKLF null mouse blood
-
Tallack M.R., Perkins A.C. Megakaryocyte-erythroid lineage promiscuity in EKLF null mouse blood. Haematologica 2010, 95:144-147.
-
(2010)
Haematologica
, vol.95
, pp. 144-147
-
-
Tallack, M.R.1
Perkins, A.C.2
-
70
-
-
50949090908
-
EKLF restricts megakaryocytic differentiation at the benefit of erythrocytic differentiation
-
Bouilloux F., et al. EKLF restricts megakaryocytic differentiation at the benefit of erythrocytic differentiation. Blood 2008, 112:576-584.
-
(2008)
Blood
, vol.112
, pp. 576-584
-
-
Bouilloux, F.1
-
71
-
-
39749171110
-
Assembly of the oncogenic DNA-binding complex LMO2-Ldb1-TAL1-E12
-
Ryan D.P., et al. Assembly of the oncogenic DNA-binding complex LMO2-Ldb1-TAL1-E12. Proteins 2008, 70:1461-1474.
-
(2008)
Proteins
, vol.70
, pp. 1461-1474
-
-
Ryan, D.P.1
-
72
-
-
79952009920
-
KLF1 directly coordinates almost all aspects of terminal erythroid differentiation
-
Tallack M.R., Perkins A.C. KLF1 directly coordinates almost all aspects of terminal erythroid differentiation. IUBMB Life 2010, 62:886-890.
-
(2010)
IUBMB Life
, vol.62
, pp. 886-890
-
-
Tallack, M.R.1
Perkins, A.C.2
-
73
-
-
84858673741
-
The role of the GATA2 transcription factor in normal and malignant hematopoiesis
-
Vicente C., et al. The role of the GATA2 transcription factor in normal and malignant hematopoiesis. Crit. Rev. Oncol. Hematol. 2012, 82:1-17.
-
(2012)
Crit. Rev. Oncol. Hematol.
, vol.82
, pp. 1-17
-
-
Vicente, C.1
-
74
-
-
0942266030
-
Functional overlap of GATA-1 and GATA-2 in primitive hematopoietic development
-
Fujiwara Y., et al. Functional overlap of GATA-1 and GATA-2 in primitive hematopoietic development. Blood 2004, 103:583-585.
-
(2004)
Blood
, vol.103
, pp. 583-585
-
-
Fujiwara, Y.1
-
75
-
-
0041806587
-
GATA-1-dependent transcriptional repression of GATA-2 via disruption of positive autoregulation and domain-wide chromatin remodeling
-
Grass J.A., et al. GATA-1-dependent transcriptional repression of GATA-2 via disruption of positive autoregulation and domain-wide chromatin remodeling. Proc. Natl. Acad. Sci. U.S.A. 2003, 100:8811-8816.
-
(2003)
Proc. Natl. Acad. Sci. U.S.A.
, vol.100
, pp. 8811-8816
-
-
Grass, J.A.1
|