« Previous
Next »
Experimental Hematology
Volume 34, Issue 11
, Pages 1505-1516
, November 2006
Stromal cell lines from the aorta-gonado-mesonephros region are potent supporters of murine and human hematopoiesis
References
- . The hematopoietic microenvironment. Clin Hematol. 1979;8:469
- . Ontogeny of the hematopoietic system: yolk sac origin of in vivo and in vitro colony forming cells in the developing mouse embryo. Br J Haematol. 1970;18:279–296
- . Definitive hematopoiesis is autonomously initiated by the AGM region. Cell. 1986;86:897–906
- . Role of stem cell migration in initiation of mouse foetal liver haematopoiesis. Nature. 1975;258:726–728
- . The relative spatial distributions of CFUs and CFUc in the normal mouse femur. Blood. 1975;46:65–72
- . Differentiation and proliferation of hematopoietic stem cells. Blood. 1993;81:2844–2853
- . Clonal and systemic analysis of long-term hematopoiesis in the mouse. Genes Dev. 1990;4:220–232
- . A murine stromal cell line allows the proliferation of very primitive human CD34++/CD38− progenitor cells in long-term cultures and semisolid assays. Blood. 1993;81:2916–2924
- . In vitro maintenance of highly purified, transplantable hematopoietic stem cells. Blood. 1997;89:4337–4347
- . Functional heterogeneity of the hematopoietic microenvironment: rare stromal elements maintain long-term repopulating stem cells. Blood. 1996;87:4082–4090
- . Murine yolk sac entoderm- and mesoderm-derived cell lines support in vitro growth and differentiation of hematopoietic cells. Blood. 1994;83:2436–2443
- . Murine embryonic yolk sac cells promote in vitro proliferation of bone-marrow high proliferative potential colony-forming cells. Blood. 1995;86:1322–1330
- Stimulation of mouse and human primitive hematopoiesis by murine embryonic aorta-gonad-mesonephros–derived stromal cell lines. Blood. 1998;92:2032–2040
- Stromal cell lines from mouse aorta-gonads-mesonephros subregions are potent supporters of hematopoietic stem cell activity. Blood. 2002;99:1183–1189
- Embryonal subregion-derived stromal cell lines from novel temperature-sensitive SV40 T antigen transgenic mice support hematopoiesis. J Cell Sci. 2002;115:2099–2108
- . Generation of lymphohematopoietic cells from embryonic stem cells in culture. Science. 1994;265:1098–1101
- . Hematopoietic development of human embryonic stem cells in culture. Methods Mol Med. 2004;105:425–436
- . Human embryonic stem cell derived CD34+ cells: efficient production in the coculture with OP9 stromal cells and analysis of lymphohematopoietic potential. Blood. 2005;105:617–626
- The vascular smooth muscle differentiation of murine stroma: a sequential model. Exp Hematol. 1999;27:1782–1795
- Comparative study of stromal cell lines derived from embryonic, fetal and postnatal mouse blood-forming tissues. Exp Hematol. 2002;30:1202–1220
- Plasma elevation of stromal cell–derived factor 1 induces mobilization of mature and immature hematopoietic progenitor and stem cells. Blood. 1997;97:3354–3360
- Reproducible establishment of hemopoietic supportive stroma cell lines from murine bone marrow. Exp Hematol. 1989;17:145–153
- Elevated telomerase activity, minimal telomere loss in cord blood long-term cultures with extensive stem cell replication. Blood. 2004;103:4440–4448
- Engraftment in nonobese diabetic severe combined immunodeficient mice of human CD34+ cord blood cells after ex vivo expansion: evidence for the amplification and self-renewal of repopulating stem cells. Blood. 1999;93:3736–3749
- Highly efficient transduction of the green fluorescent protein gene in human umbilical cord blood stem cells capable of cobblestone formation in long-term cultures and multilineage engraftment of immunodeficient mice. Blood. 1998;92:4013–4022
- . Differential expression of insulin-like growth factor binding proteins in murine hematopoietic stromal cell lines. Mol Cell Endocrinol. 1996;120:59–66
- . Conditions controlling the proliferation of hematopoietic cells in vitro. J Cell Physiol. 1976;91:335
- . The hematopoietic microenvironment. Crit Rev Oncol Hematol. 1991;11:65–84
- . Cellular interactions. Blood. 1988;72:373–385
- . Compartmentalization of a hematopoietic growth factor (GM-CSF) by glycosaminoglycans in the bone marrow microenvironment. Nature. 1987;326:403–405
- . Heparan sulphate bound growth factors: A mechanism for stromal cell mediated hematopoiesis. Nature. 1988;332:376–378
- . Clonal analysis of primary marrow stroma: functional homogeneity in support of lymphoid and myeloid cell lines and identification of positive and negative regulators. Exp Hematol. 1994;22:910–918
- . Stromal cells from murine embryonic aorta-gonad-mesonephros region, liver and gut mesentery expand human umbilical cord blood–derived CAFC week 6 in extended long-term cultures. Leukemia. 2002;16:1782–1790
- . Mouse hematopoietic stem cell antigen Sca-1 is a member of the Ly-6 antigen family. Proc Natl Acad Sci U S A. 1989;86:4634–4638
- . Mouse bone marrow stromal cell line MC3T3-G2/PA6 with hematopoietic-supporting activity expresses high levels of stem cell antigen Sca-1. Exp Hematol. 1997;25:972–979
- Multi-organ, multi-lineage engraftment by a single bone-marrow derived stem cell. Cell. 2001;105:369–377
- . The integrin very late antigen-4 is expressed in human smooth muscle cell. Involvement of α4 and vascular cell adhesion molecule-1 during smooth muscle differentiation. Circ Res. 1997;80:159–169
- . Vascular cell adhesion molecule 1–positive reticular cells express interleukin-7 and stem cell factor in the bone marrow. Blood. 1995;86:2661–2671
- . The chemokine receptor CXCR-4 is expressed on CD34+ hematopoietic progenitors and leukemic cells and mediates transendothelial migration induced by stromal cell–derived factor 1. Blood. 1998;91:4523–4530
- . Hematopoietic-promoting activity of the murine stromal cell line MS-5 is not related to the expression of the major hematopoietic cytokines. Cell Physiol. 1995;163:295–304
- . Renin-angiotensin system expression in rat bone marrow haematopoietic and stromal cells. Br J Haematol. 2004;126:120–126
- . Effect of angiotensin II on hematopoietic progenitor cell proliferation. Stem Cells. 2000;18:287–294
- Functional receptor for C3a anaphylatoxin is expressed by normal hematopoietic stem/progenitor cells, and C3a enhances their homing-related responses to SDF-1. Blood. 2003;101:3784–3793
- . Anemia and impaired stress-induced erythropoiesis in acoeruloplasminemic mice. Blood Cells Mol Dis. 2004;33:346–355
- . The first 3 days of B-cell development in the mouse embryo. Blood. 2002;100:4074–4081
- Ohmura K, Kawamoto H, Fujimoto S, Ozaki S, Nakao K, Katsura Y. Emergence of t, B and myeloid lineage-committed as well as multipotent hematopoietic progenitors in the aorta-gonad-mesonephros region of day 10 fetuses of the mouse. J Immunol. 1999;163:4788–4795.
- Osteoprotegerin, a crucial regulator of bone metabolism, also regulates B cell development and function. J Immunol. 2001;166:1482–1491
- . Aberrant expression of insulin-like growth factor-2 (IGF-2) in Philadelphia chromosome negative chronic myeloproliferative disorders. Leuk Res. 2004;28:1145–1151
PII: S0301-472X(06)00401-2
doi: 10.1016/j.exphem.2006.06.013
© 2006 International Society for Experimental Hematology. Published by Elsevier Inc. All rights reserved.
« Previous
Next »
Experimental Hematology
Volume 34, Issue 11
, Pages 1505-1516
, November 2006
