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1 between the three-dimensional liver bud and fetal liver cells.
2 rentiation, and maturation in JAK2-deficient fetal liver cells.
3 beta-globin locus control region (LCR) using fetal liver cells.
4 veloped in mice that received CD18-deficient fetal liver cells.
5 r gamma-chain double-mutant mice with Syk-/- fetal liver cells.
6 d) mice, 3) rat bone marrow cells, or 4) rat fetal liver cells.
7 en upon expression of either gp55 in EpoR-/- fetal liver cells.
8 orming unit-erythroid (CFU-E) progenitors in fetal liver cells.
9 show here that gp55-A activates the EpoR in fetal liver cells.
10 xed population of wild-type and heterozygous fetal liver cells.
11 hat stem cells reside among CD4+ CD34++ Lin- fetal liver cells.
12 Kit(W-v) mice were reconstituted with normal fetal liver cells.
13 s of gestation with 1 x 10(6) ACI (RTla) rat fetal liver cells.
14 lerance induction in utero using donorstrain fetal liver cells.
15 at skin and cardiac tissue with donor-strain fetal liver cells.
16 angiopathies by exploring their functions in fetal liver cells.
17 enes genome-wide in embryonic stem cells and fetal liver cells.
18 munodeficient mice in the presence of scurfy fetal liver cells.
19 l hematopoiesis in transduced primary murine fetal liver cells.
20 that received a transplant of Stat5a/b(-/-) fetal liver cells.
21 mice that received a transplant of Cited2-/- fetal liver cells.
22 le concerning liver repopulation by Thy-1(+) fetal liver cells.
23 y stem cell transplantation using Stat5(-/-) fetal liver cells.
24 ying wild-type Sh3bp2 alleles through mutant fetal liver cells.
25 e reconstituted with ADAM17(DeltaZn/DeltaZn) fetal liver cells.
26 s from mouse bone marrow as well as in mouse fetal liver cells.
27 ferentiation in wild-type and JAK2-deficient fetal liver cells.
28 han either ankyrin or beta-spectrin in mouse fetal liver cells.
29 ce generated from normal and TRAF6-deficient fetal liver cells.
30 rorsine-treated liver, transplanted Thy-1(+) fetal liver cells achieved a 4.6%-23.5% repopulation.
37 /-) mice with a mixture of p50(-/-)/p65(-/-) fetal liver cells and Rag-2(-/-) bone marrow cells revea
38 efficiently rescue Gmcsf mutant recipients, fetal liver cells and Sca1(+) lin(-/dim) marrow cells ar
39 on and differentiation of yolk sac cells and fetal liver cells and stimulates directly hematopoietic
40 marrow stem cells would engraft similarly to fetal liver cells and that postnatal administration of c
41 ed expression of HAI-1 and -2 transcripts in fetal liver cells and this induction could be antagonize
42 oviral complementation of STAT5ab(null/null) fetal liver cells and transplantation, persistently acti
43 macrophage-specific markers CD 11b, F4/80 in fetal liver cells, and bone marrow-derived macrophages w
44 14), LPL(+/-) (n = 13), or LPL(+/+) (n = 14) fetal liver cells, and fed the Western diet for 19 weeks
45 mice, thymectomized mice reconstituted with fetal liver cells, and thymus-grafted mice, we provide d
46 with LPL(-/-) (n = 12) or LPL(+/+) (n = 14) fetal liver cells as a source of hematopoietic cells.
47 d expression of all B lineage genes in B220+ fetal liver cells as well as with a block in the transit
51 We have previously shown that MHC-mismatched fetal liver cells can durably engraft in 45% of nondefec
58 id differentiation assay from primary murine fetal liver cells demonstrated that Elf-1 downregulation
59 rsist when Runx1 is conditionally deleted in fetal liver cells, demonstrating that the requirement fo
61 tes with endogenous HOXB6 in day 14.5 murine fetal liver cells during active globin gene expression i
63 globin gene expression in primary erythroid fetal liver cells (eFLCs) after 72 hours in culture, fro
64 leukemic pathology in mice transplanted with fetal liver cells expressing translocated in liposarcoma
65 rprisingly, bcr/abl-expressing C/EBPalpha-/- fetal liver cells failed to induce a myeloid disease in
66 genitor cells, because Vav-iCre Ripk1(fl/fl) fetal liver cells failed to reconstitute hematopoiesis i
68 ted detectable Ram-1 in murine hematopoietic fetal liver cells (FLC) despite resistance of these cell
71 transplantation of C57BL/6 mice with LPL-/- fetal liver cells (FLCs) was used to investigate the phy
72 ture hepatocytes in adult liver (adult HCs), fetal liver cells (FLCs), induced hepatic stem cells (iH
75 he K(b) and D(b) genes were repopulated with fetal liver cells from class I(+) TCR transgenic mice.
78 of membrane-targeted or cytoplasmic Mpl into fetal liver cells from homozygous JAK2 knock-out mice or
80 study, we show that the bone marrow (BM) or fetal liver cells from LTalpha(-/-) or LTbetaR(-/-) mice
81 ally in thymocytes but was normal on B220(+) fetal liver cells from mouse embryos with diminished exp
86 Neither adult bone marrow-derived cells nor fetal liver cells from wild-type or Rag1-/- mice were ab
88 every 8.9 Thy(low)Sca-1(+)lineage(-)Mac-1(+) fetal liver cells gave long-term multilineage reconstitu
89 .7 CD150(+)CD48(-)Sca-1(+)lineage(-)Mac-1(+) fetal liver cells gave long-term multilineage reconstitu
92 ing following HCV infection of primary human fetal liver cell (HFLC) cultures from 18 different donor
93 e demonstrate that primary cultures of human fetal liver cells (HFLC) reliably support infection with
94 an inflammatory cytokine expressed by human fetal liver cells (HFLCs) after infection with cell cult
96 41(lo/-) cells isolated from bone marrow and fetal liver cells, however, activity is enriched in the
97 marrow cells engrafted slightly better than fetal liver cells in allogeneic adult SCID transplant re
98 ion of human fetal thymic tissue and CD34(+) fetal liver cells in nonobese diabetic (NOD)/severe comb
99 topoietic reconstitution with Mafb-deficient fetal liver cells in recipient LDL receptor-deficient hy
100 sible causes, the colony-forming activity of fetal liver cells in vitro was assessed, and hematopoiet
101 oprecipitates with GATA-1 and EKLF in murine fetal liver cells in vivo and is recruited to the far-up
102 olony formation when expressed in (Epo-R)-/- fetal liver cells, indicating that Y464 either cannot se
103 human fetal thymus/liver tissues and CD34(+) fetal liver cells into immunodeficient nonobese diabetic
107 emonstrated by the transplantation of mutant fetal liver cells into lethally irradiated recipients.
108 e present study, we transplanted necdin-null fetal liver cells into lethally irradiated recipients.
109 n fetal thymus and liver tissues and CD34(+) fetal liver cells into nonobese diabetic/severe combined
110 hematopoietic lineage, we transplanted Rb-/- fetal liver cells into sibling mice and assessed the out
111 s" generated by transplantation of KLF4(-/-) fetal livers cells into lethally irradiated wild-type mi
113 The expression of bcr/abl in C/EBPalphapos fetal liver cells led to a chronic myeloid leukemia-like
114 , stem cell factor (SCF), FLT-3L, and murine fetal liver cell line (EL08.1D2), we identified 2 nonove
116 Furthermore, we observe that in PU.1(-/-) fetal liver cells, low levels of the IE GATA-1 isoform i
118 (WT) mice were reconstituted with either WT fetal liver cells or CD18-deficient fetal liver cells, o
119 also interfered with the differentiation of fetal liver cells or fetal thymocytes within deoxyguanos
120 ither WT fetal liver cells or CD18-deficient fetal liver cells, or an equal mixture of both types of
121 eric mice reconstituted with CXCR4-deficient fetal liver cells, plasma cells are mislocalized in the
122 ietic stem cells, a major component in crude fetal liver cell preparations that engraft in other orga
127 ent ratios of fetal and adult cell mixtures, fetal liver cells repopulated 8.2 times better than adul
129 itution of p110gammadelta-/- animals with WT fetal liver cells restored the proportions of all thymoc
131 h PDGF-B(-/-), PDGFR beta(-/-), or wild-type fetal liver cells show complete engraftment (greater tha
132 sed embryonic lethality, and Srsf2-deficient fetal liver cells showed significantly enhanced apoptosi
135 grafted with beta-globin-null (Hbb(th3/th3)) fetal liver cells succumb to ineffective erythropoiesis
136 ell lines and retrovirally transduced murine fetal liver cells suggest that most of these factors and
137 that had received both CD18-deficient and WT fetal liver cells, suggesting that myeloid hyperplasia w
138 r hematopoietic abnormalities in Klotho(-/-) fetal liver cells, suggesting that the effects of klotho
141 novel population of CD3+ and Ter119- day-15 fetal liver cells that support HSC expansion in culture,
142 h mixtures of class I+ and class I-deficient fetal liver cells, the rejection of class I-deficient bo
143 chimeras reconstituted with TRAF6-deficient fetal liver cells to analyze functions of TRAF6 in vivo
144 Bone marrow transplantation of SENP1 KO fetal liver cells to irradiated adult recipients confers
146 acrophage cyclooxygenase-2 were generated by fetal liver cell transplantation and developed significa
152 ptidase IV [DPPIV(+)]) embryonic day (ED) 14 fetal liver cells underwent transplantation into DPPIV(-
153 ents, B-cell development from Pbx1-deficient fetal liver cells was also severely compromised, but not
154 hite cell compartment of SCID mice by mutant fetal liver cells was less complete than that observed w
155 chimeras reconstituted with TRAF6-deficient fetal liver cells, we show that proper DC maturation req
158 ed by the observations that CD4+ CD34++ Lin- fetal liver cells were enriched for CDw90+ (Thy-1), CD11
159 a mixture of class I-deficient and class I+ fetal liver cells were more tolerant to class I-deficien
160 ted with a 50:50 mixture of WT and Rac2(-/-) fetal liver cells were protected from neutrophilia, sugg
162 Class I- mice reconstituted with class I+ fetal liver cells were tolerant of class I-deficient cel
166 were 275-fold higher, compared with unsorted fetal liver cells, when 3 reprogramming factors were tra
167 oth murine erythroleukemia cells, as well as fetal liver cells, whereas an increase in PIAS3 levels i
168 DL-receptor deficient mice transplanted with fetal liver cells wildtype for cyclooxygenase-2, providi
170 lymphocytes (IEL) developed efficiently from fetal liver cells, with a predominance of TCR alphabeta
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