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1  were also present in downstream myeloid and erythroid progenitor cells.
2  definitive erythropoiesis and maturation of erythroid progenitor cells.
3 elopmental potential of normal and malignant erythroid progenitor cells.
4 mias are caused by a defect intrinsic to the erythroid progenitor cells.
5 otein activated by erythropoietin in primary erythroid progenitor cells.
6 n in both K562 cells and primary human adult erythroid progenitor cells.
7 liferation, and differentiation of mammalian erythroid progenitor cells.
8 enomic-scale description of gene activity in erythroid progenitor cells.
9 metarubricytes and other less differentiated erythroid progenitor cells.
10 nd -P in fetal liver and bone marrow-derived erythroid progenitor cells.
11 nd repressed their transcription in immature erythroid progenitor cells.
12 mulates proliferation and differentiation of erythroid progenitor cells.
13 be mediated by direct interaction of Tpo and erythroid progenitor cells.
14 liferation, differentiation, and survival of erythroid progenitor cells.
15 virus B19 shows remarkable tropism for human erythroid progenitor cells.
16 arly steps in the differentiation of myeloid-erythroid progenitor cells.
17  during B19V infection of permissive CD36(+) erythroid progenitor cells.
18 tress response in K562 cell line and primary erythroid progenitor cells.
19 modimers signal to promote the maturation of erythroid progenitor cells.
20 19V) infection is highly restricted to human erythroid progenitor cells.
21 n of p21 and consequent cell cycle arrest in erythroid progenitor cells.
22 ins to promote the Epo-independent growth of erythroid progenitor cells.
23 or (SCF) stimulation in cultured human adult erythroid progenitor cells.
24 bin gene expression in primary CD71-positive erythroid progenitor cells.
25 tosis significantly during B19V infection of erythroid progenitor cells.
26  with RNA from wild-type and Eklf(-/-) early erythroid progenitor cells.
27  EKLF-dependent DNase I sensitivity in early erythroid progenitor cells.
28  while reducing the numbers of megakaryocyte-erythroid progenitor cells.
29 erminal proliferation and differentiation of erythroid progenitor cells.
30 globin genes during differentiation of adult erythroid progenitor cells.
31  B19 (B19V) has an extreme tropism for human erythroid progenitor cells.
32 -binding protein family that is expressed in erythroid progenitor cells.
33 nt for Epo-induced maturation of fetal liver erythroid progenitor cells.
34 vival, proliferation, and differentiation of erythroid progenitor cells.
35 the initial polyclonal expansion of infected erythroid progenitor cells.
36 vival, proliferation, and differentiation of erythroid progenitor cells.
37 control region and globin genes in ovary and erythroid progenitor cells.
38 nonuclear cells and that it was cytotoxic to erythroid progenitor cells.
39 ogenic human parvovirus B19 is restricted to erythroid progenitor cells.
40 red for B19V replication in ex vivo-expanded erythroid progenitor cells after initial virus entry and
41                     Northern analysis of the erythroid progenitor cells again showed that beta2 but n
42     Expression of these receptors in primary erythroid progenitor cells also demonstrated a functiona
43 hosphatase (PTP) activity in highly purified erythroid progenitor cells and found that the total PTP
44 onomous B19V replication is limited to human erythroid progenitor cells and in a small number of eryt
45 nted in a significant subset of normal adult erythroid progenitor cells and may also be necessary for
46 covered that DYRK3 is expressed primarily in erythroid progenitor cells and modulates late erythropoi
47 eq to study the interactome of EKLF in mouse erythroid progenitor cells and more differentiated eryth
48                         In accord with this, erythroid progenitor cells and reticulocytes were substa
49                       DYRK3 is restricted to erythroid progenitor cells and testes.
50 or both proliferation and differentiation of erythroid progenitor cells and that the constraints on d
51 he antiapoptotic action of erythropoietin on erythroid progenitor cells and to be necessary for heme
52 inhibit proliferation and differentiation of erythroid progenitor cells and to produce apoptosis of e
53 with an anti-SK4 antibody, showed that human erythroid progenitor cells and, importantly, mature huma
54 zed in decreased amounts in the cytoplasm of erythroid progenitor cells, and appears to be susceptibl
55 9 therefore blocks proliferation of immature erythroid progenitor cells, and dexamethasone activates
56 SCF alone induced extensive proliferation of erythroid progenitor cells, and had a stronger synergist
57 erythropoietin and stem cell factor in human erythroid progenitor cells, and increased GSK3 activity,
58 rotein Bcl-x(L) is essential for survival of erythroid progenitor cells, and it increases substantial
59 e, we report that, in ex vivo-expanded human erythroid progenitor cells, B19V infection induces a bro
60  that EPO induces extensive proliferation of erythroid progenitor cells, but has no effect on the pro
61                                 Infection of erythroid progenitor cells by Friend spleen focus-formin
62 estoration of the cytosol oxidative state of erythroid progenitor cells by the pro-oxidant Paraquat r
63 cytosis) is a rare proliferative disorder of erythroid progenitor cells, characterized by elevated er
64 t form based on hyperplastic bone marrow and erythroid progenitor cell culture; these cases may subse
65 sed purified and synchronously growing human erythroid progenitor cells cultured for 7-14 days.
66 trate that the 11 kDa protein contributes to erythroid progenitor cell death during B19V infection.
67                   To test this hypothesis in erythroid progenitor cells derived from adult tissues, a
68 rom purified and synchronously growing human erythroid progenitor cells, differentiating from erythro
69  of purified and synchronously growing human erythroid progenitor cells, differentiating from erythro
70 y protein induction during early human adult erythroid progenitor cell differentiation concomitant wi
71                                           PV erythroid progenitor cells display hypersensitivity to s
72 were cloned from human bone marrow and human erythroid progenitor cells: EEG-1L containing a 4350-nuc
73 eveloped an ex vivo-generated TP composed of erythroid progenitor cells (EPCs) and precursors cells.
74                                              Erythroid progenitor cells (EPCs) are deficient in mice
75 dvances in generating large numbers of human erythroid progenitor cells (EPCs) ex vivo from hematopoi
76 l role of erythropoietin (Epo) signaling, in erythroid progenitor cells (EPCs) expanded ex vivo from
77 19V) infection has a unique tropism to human erythroid progenitor cells (EPCs) in human bone marrow a
78 2 kinase complexes propagates signals within erythroid progenitor cells (EPCs) that are essential for
79 ythrotropic and preferentially replicates in erythroid progenitor cells (EPCs).
80                                           In erythroid progenitor cells, Epo stimulates induction of
81 eplication, however, is almost restricted to erythroid progenitor cells (ErPCs).
82 ion at physiological levels was confirmed in erythroid progenitor cells expanded ex vivo, and this EE
83                                              Erythroid progenitor cell expansion depends upon co-sign
84 ed, and B19V replication in ex vivo-expanded erythroid progenitor cells exposed to Epo (CD36(+)/Epo(+
85                   In contrast, primary human erythroid progenitor cells express high levels of both P
86              In developmentally synchronized erythroid progenitor cells, expression peaked sharply fo
87                         Friend virus infects erythroid progenitor cells, followed by an initial polyc
88 and excessive erythrocytosis is suggested by erythroid progenitor cells from a patient that exhibits
89 demonstrated in hematopoietic stem cells and erythroid progenitor cells from a patient with IVS2-745/
90  group, in which ex vivo production of human erythroid progenitor cells from CB was promoted by chrom
91 escence-activated cell sorting, the earliest erythroid progenitor cells from developing embryos for i
92 f Sf-Stk confers Friend virus sensitivity to erythroid progenitor cells from Fv2(rr) mice.
93 ion using ex vivo differentiation of CD34(+) erythroid progenitor cells from peripheral blood of heal
94                              The majority of erythroid progenitor cells furthermore stained positivel
95 mma on SCF, EP, and IGF-I receptors of human erythroid progenitor cells has not been defined.
96 nduction during the rapid expansion of adult erythroid progenitor cells have not been fully elucidate
97                                    In normal erythroid progenitor cells, HCP may act to prevent prema
98 cks the proliferation and differentiation of erythroid progenitor cells in cultured human CD34(+) cel
99 /Gab2 complex mediates the growth of primary erythroid progenitor cells in response to Friend virus.O
100  Friend erythroleukemia and the expansion of erythroid progenitor cells in response to infection can
101 1 serves as the earliest marker of primitive erythroid progenitor cells in the embryonic day 7 (E7.0)
102 y, we investigated the levels of myeloid and erythroid progenitor cells in TPO-or c-mpl-deficient mic
103  in transfection of primary ex vivo-expanded erythroid progenitor cells, in comparison with apoptosis
104 s PlGF, and its enforced expression in human erythroid progenitor cells induces PlGF mRNA.
105 ocalized NS1 at the protein level in primary erythroid progenitor cells infected with B19V; and inhib
106 ols the proliferation and differentiation of erythroid progenitor cells into red blood cells.
107             The differentiation of committed erythroid progenitor cells involves other transcription
108 n production is reduced and proliferation of erythroid progenitor cells is also impaired; this anaemi
109   Erythropoietin (EPO), a major regulator of erythroid progenitor cells, is essential for the surviva
110 rs the growth and differentiation program of erythroid progenitor cells, leading to malignant leukemi
111 vating the erythropoietin receptor (EPOR) in erythroid progenitor cells, leading to proliferation and
112 on in the proliferation of an SCF-responsive erythroid progenitor cell line and in the activation of
113     Utilizing an embryonic stem cell-derived erythroid progenitor cell line from mice deficient in GA
114 ted kinases (ERKs) in HCD-57 cells, a murine erythroid progenitor cell line that requires EPO for sur
115 ere, we report the establishment of a murine erythroid progenitor cell line, iEBHX1S-4, developmental
116                                              Erythroid progenitor cell lines have been derived from c
117                                        Human erythroid progenitor cells lines have been produced from
118 y that SATB1 family protein expressed in the erythroid progenitor cells may have a role in globin gen
119  increase 3-fold during maturation of murine erythroid progenitor cells, may help explain simultaneou
120 or (CMP) cells, as well as in megakaryocytic/erythroid progenitor cells (MEPs).
121       Suppression of bone marrow myeloid and erythroid progenitor cells occurs after infection with a
122 ovirus B19 (B19V) infection is restricted to erythroid progenitor cells of the human bone marrow.
123             Further in vitro analysis of the erythroid progenitor cells of this affected child reveal
124 ot be detected in RNA isolated from purified erythroid progenitor cells or from erythroid cells under
125 ockdown (KD) of PRMT1 by RNA interference in erythroid progenitor cells prevents histone acetylation,
126 actor (SCF) are essential growth factors for erythroid progenitor cell proliferation and differentiat
127 apacity to synergize with c-Kit in promoting erythroid progenitor cell proliferation.
128 he erythropoietin receptor on the surface of erythroid progenitor cells, promoting the differentiatio
129 pression of these microRNAs in primary human erythroid progenitor cells results in elevated fetal and
130                              Loss of SOD2 in erythroid progenitor cells results in enhanced protein o
131 latelet c-mpl expression, in vitro assays of erythroid progenitor cells, serum erythropoietin levels,
132 gonists in stimulating self-renewal of early erythroid progenitor cells suggests that the clinically
133 S proteins, and suggest that, in contrast to erythroid progenitor cells that employ Gab1 in PI3K sign
134  vitro culture system to expand human stress erythroid progenitor cells that express analogous cell-s
135 tipotent progenitor cells, and megakaryocyte-erythroid progenitor cells that is required under hemato
136 d an accumulation of nuclear p53 staining in erythroid progenitor cells that was not present in contr
137 nd identify a population of CD31+ short-term erythroid progenitors cells that confer protection from
138 ata1/GATA1 transcription in murine and human erythroid progenitor cells through an evolutionarily con
139 g erythroid tropism and drastically destroys erythroid progenitor cells, thus leading to most of the
140 ndition characterized by hypersensitivity of erythroid progenitor cells to EPO and low serum EPO (S-E
141 rythropoietin (EP) is required by late-stage erythroid progenitor cells to prevent apoptosis.
142 s by binding to its cell surface receptor on erythroid progenitor cells to stimulate erythrocyte prod
143 obin promoter directs v-Ha-ras expression in erythroid progenitor cells, ultimately leading to leukem
144 promoter elements were isolated from ELM-I-1 erythroid progenitor cells upon erythropoietin (epo) tre
145  is an important regulator of iron update in erythroid progenitor cells via its control of Tfr1 trans
146 this fetal protein and growth, donated human erythroid progenitor cells were cultured in the presence
147 fferentiate precursor cells into myeloid and erythroid progenitor cells were not affected by HIV-1 in
148                            Genes specific to erythroid progenitor cells were up-regulated by dexameth
149 s were markedly decreased in Eklf(-/-) early erythroid progenitor cells, which showed a delay in the
150 example, Myc stimulates the proliferation of erythroid progenitor cells, while the USF proteins and T
151 ed both K562 erythroleukemic cells and human erythroid progenitor cells with S-nitrosocysteine (CysNO
152 lentiviral short hairpin RNA transduction of erythroid progenitor cells, with global surface proteomi

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