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Experimental Hematology
Volume 35, Issue 12
, Pages 1858-1871
, December 2007
Primitive and committed human hematopoietic progenitor cells interact with primary murine neural cells and are induced to undergo self-renewing cell divisions
References
- . Hematopoietic cells maintain hematopoietic fates upon entering the brain. J Exp Med. 2005;201:1579–1589
- Bone marrow CD34+/B220+ progenitors target the inflamed brain and display in vitro differentiation potential toward microglia. FASEB J. 2006;20:2081–2092
- . Bone marrow transdifferentiation in brain after transplantation: a retrospective study. Lancet. 2004;363:1432–1437
- . Neural cells derived from adult bone marrow and umbilical cord blood. J Neurosci Res. 2002;69:880–893
- . Primordial hematopoietic stem cells generate microglia but not myelin-forming cells in a neural environment. J Neurosci. 2003;23:10724–10731
- From hematopoiesis to neuropoesis: evidence of overlapping genetic programs. Proc Natl Acad Sci U S A. 2001;98:7934–7939
- Hematopoietic progenitors express neural genes. Proc Natl Acad Sci U S A. 2003;100:14926–14931
- Neural crest stem cell maintenance by combinatorial Wnt and BMP signalling. J Cell Biol. 2005;169:309–320
- A role for Wnt signaling in self-renewal of haematopoietic stem cells. Nature. 2003;423:409–414
- . Notch1 activation increases hematopoietic stem cell self-renewal in vivo and favors lymphoid over myeloid lineage outcome. Blood. 2002;99:2369–2378
- . Lineage commitment in human hemopoiesis involves asymmetric cell division of multipotent progenitors and does not appear to be influenced by cytokines. J Cell Physiol. 1993;157:579–586
- Symmetry of initial cell divisions among primitive hematopoietic progenitors is independent of ontogenetic age and regulatory molecules. Blood. 1999;94:2595–2604
- The symmetry of initial divisions of human hematopoietic progenitors is altered only by the cellular microenvironment. Exp Hematol. 2003;31:339–347
- . Divisional history and pluripotency of human hematopoietic stem cells. Ann N Y Acad Sci. 2001;938:72–81discussion 81–82
- . In vitro self-renewal division of hematopoietic stem cells. J Exp Med. 2000;192:1281–1288
- Modulation of in vitro proliferation kinetics and primitive hematopoietic potential of individual human CD34+CD38-/lo cells in G0. Blood. 2005;105:3109–3116
- Primitive human hematopoietic cells give rise to differentially specified daughter cells upon their initial cell division. Blood. 2006;107:2146–2152
- Asymmetric division and lineage commitment at the level of hematopoietic stem cells: interference from differentiation in daughter cell and granddaughter cell pairs. J Exp Med. 2004;199:295–302
- . Disparate differentiation in mouse hematopoietic colonies derived from paired progenitors. Proc Natl Acad Sci U S A. 1984;81:2520–2524
- . Role of β1 and β2 integrins in the adhesion of human CD34hi stem cells to bone marrow stroma. J Clin Invest. 1992;90:358–367
- Molecular pathways in bone marrow homing: dominant role of α4β1 over β2-integrins and selectins. Blood. 2001;98:2403–2411
- Evidence for the role of the integrin VLA-4 in lympho-hemopoiesis. J Exp Med. 1991;173:599–607
- α4 integrins regulate the proliferation/differentiation balance of multilineage hematopoietic progenitors ex vivo. Immunity. 1999;11:555–566
- . Deletion of alpha 4 integrins from adult hematopoietic cells reveals roles in homeostasis, regeneration, and homing. Mol Cell Biol. 2003;23:9349–9360
- Lack of α4 integrin expression in stem cells restricts competitive function and self-renewal capacity. Blood. 2006;107:2959–2967
- Role of VLA-4 and VLA-5 in ex vivo maintenance of human and pig hematopoiesis in human stroma-supported long-term cultures. Exp Hematol. 2005;33:363–370
- Human mesenchymal stromal cells regulate initial self-renewing divisions of hematopoietic progenitor cells by a β1-integrin-dependent mechanism. Stem Cells. 2007;25:798–806
- Molecular evidence for stem cell function of the slow dividing fraction among human hematopoietic progenitor cells by genome wide analysis. Blood. 2004;104:675–686
- . In vitro maintenance of highly purified, transplantable hematopoietic stem cells. Blood. 1997;89:4337–4347
- The murine stromal cell line AFT024 acts specifically on human CD34+38− progenitors to maintain primitive function and immunophenotype in vitro. Exp Hematol. 1998;26:612–619
- Human marrow-derived mesenchymal stem cells (MSCs) express hematopoietic cytokines and support long-term hematopoiesis when differentiated toward stromal and osteogenic lineages. J Hematother Stem Cell Res. 2000;9:841–848
- . Growth of purified astrocytes in a chemically defined medium. Proc Natl Acad Sci U S A. 1981;78:7205–7209
- . A glial progenitor cell that develops in vitro into an astrocyte or an oligodendrocyte depending on culture medium. Nature. 1983;303:390–396
- . Rat hippocampal neurons in low-density culture. In: Banker G, Goslin K editor. Culturing Nerve Cells. 2nd ed.. Cambridge, MA: Massachusetts Institute of Technology; 1998;p. 339–379
- Purification and ex vivo expansion of postnatal human marrow mesodermal progenitor cells. Blood. 2001;98:2615–2625
- Comparative characteristics of mesenchymal stem cells from human bone marrow, adipose tissue, and umbilical cord blood. Exp Hematol. 2005;33:1402–1416
- The heterogeneity of human mesenchymal stem cells preparations-evidence from simultaneous analysis of proteomes and transcriptomes. Exp Hematol. 2006;34:536–548
- Minimal criteria for defining multipotent mesenchymal stromal cells. The International Society for Cellular Therapy position statement. Cytotherapy. 2006;8:315–317
- . Mesenchymal stromal cells. Curr Opin Hematol. 2006;13:419–425
- Multilineage potential of adult human mesenchymal stem cells. Science. 1999;284:143–147
- Osteogenic differentiation of purified, culture-expanded human mesenchymal stem cells in vitro. J Cell Biochem. 1997;64:295–312
- Chondrogenic differentiation of cultured human mesenchymal stem cells from marrow. Tissue Eng. 1998;4:415–428
- Expression of integrins and examination of their adhesive function in normal and leukemic hematopoietic cells. Blood. 1993;112–121
- . Monocytes use either CD11/CD18 or VLA-4 to migrate across human endothelium in vitro. J Immunol. 1994;152:1915–1926
- . Molecular interactions in intermediate-sized filaments revealed by chemical crosslinking. Heteropolymers of vimentin and glial filament and protein in cultured human glioma cells. Eur J Biochem. 1983;132:477–484
- . In vivo quantification of blood flow and wall shear stress in the human abdominal aorta during lower limb exercise. Ann Biomed Eng. 2002;30:402–408
- . Bone marrow stem cells have the ability to populate the entire central nervous system into fully differentiated parenchymal microglia. FASEB J. 2004;18:998–1000
- Neuroectodermal and microglial differentiation of bone marrow stem cell in the mouse spinal cord an sensory ganglia. J Neursci Res. 2002;70:721–733
- CD34+AC133+ cells isolated from cord blood are highly enriched in long-term culture-initiating cells, NOD/SCID-repopulating cells and dendritic progenitors. Stem Cells. 2001;16:387–396
- Selection based on CD133 and high aldehyde dehydrogenase activity isolates long-term reconstituting human hematopoietic stem cells. Blood. 2006;107:2162–2169
- . Stem cells plasticity revisited: CXCR4-positive cells expressing mRNA for early muscle, liver and neural cells “hide out” in the bone marrow. Leukemia. 2004;18:29–40
- Cells enriched in markers of neural tissue-committed stem cells reside in the bone marrow and are mobilized into the peripheral blood following stroke. Leukemia. 2006;20:18–28
- Somatic stem cell marker prominin-1/CD133 is expressed in embryonic stem cell-derived progenitors. Stem Cells. 2005;23:791–804
- Engraftment of sorted/expanded human central nervous system stem cells from fetal brain. J Neurosci Res. 2002;69:976–986
- Prominin-1/CD133, a neural and hematopoietic stem cell marker, is expressed in adult human differentiated cells and certain types of kidney cancer. Cell Tissue Res. 2005;319:15–26
- . Developmental pattern of expression of the alpha chemokine stromal cell-derived factor 1 in the rat central nervous system. Eur J Neurosci. 2001;13:845–856
- A dual role for the SDF-1/CXCR4 chemokine receptor system in adult brain: Isoform-selective regulation of SDF-1 expression modulates CXCR4-dependent neuronal plasticity and cerebral leukocyte recruitment after focal ischemia. J Neurosci. 2002;22:5865–5878
- The neuroblast and angioblast chemotaxic factor SDF-1 (CXCL12) expression is briefly up regulated by reactive astrocytes in brain following neonatal hypoxic-ischemic injury. Neuroscience. 2005;6:63–73
- The chemokine SDF-1 activates the integrins LFA-1, VLA-4, and VLA-5 on immature CD34+ cells: role in transendothelial/stromal migration and engraftment of NOD/SCID mice. Blood. 2000;95:3289–3296
- . Fibronectin is expressed by astrocytes cultured from embryonic and early postnatal rat brain. Exp Cell Res. 1986;163:175–185
- . Astrocyte-associated fibronectin is critical for axonal regeneration in adult white matter. J Neurosci. 2004;24:9282–9290
- . Induction of VCAM-1 and ICAM-1 on human neural cells and mechanisms of mononuclear leukocyte adherence. J Immunol. 1992;148:2717–2723
- High-level expression of functional chemokine receptor CXCR4 on human neural precursor cells. Brain Res Dev Brain Res. 2004;152:159–169
- . The chemokine stromal cell-derived factor-1 regulates the migration of sensory neuron progenitors. J Neurosci. 2005;25:3995–4003
- . CNS glial cells support in vitro survival, division, and differentiation of dissociated olfactory neuronal progenitor cells. Neuron. 1992;8:1191–1204
- . Astroglia induce neurogenesis from adult neural stem cells. Nature. 2002;417:39–44
- Endothelial cells stimulate self-renewal and expand neurogenesis of neural stem cells. Science. 2004;304:1338–1340
- . Soluble factors elaborated by human brain endothelial cells induce the concomitant expansion of purified human BM CD34+CD38− cells and SCID-repopulating cells. Blood. 2005;105:576–583
- . Human stem/progenitor cells from bone marrow promote neurogenesis of endogenous neural stem cells in the hippocampus of mice. Proc Natl Acad Sci U S A. 2005;102:18171–18176
- Mesenchymal stem cells instruct oligodendrogenic fate decision on adult neural stem cells. Stem Cells. 2006;24:2209–2219
- . Cell contact regulates fate choice by cortical stem cells. J Neurosci. 2000;20:3725–3735
- . Interaction between astrocytes and adult subventricular zone precursors simulates neurogenesis. Proc Natl Acad Sci U S A. 1999;96:7526–7536
- . Integrins are markers of human neural stem cells. Stem Cells. 2006;24:2078–2084
- Efficient expansion and gene transduction of mouse neural stem/progenitor cells on recombinant fibronectin. Neuroscience. 2004;124:823–830
- . Regulation of human neural precursor cells by laminin and integrins. J Neurosci Res. 2006;83:845–856
- . Mitotic spindle rotation and mode of cell division in the developing telencephalon. Proc Natl Acad Sci U S A. 2003;100:2890–2895
- . Asymmetric cell division in the Drosophila nervous system. Nat Rev Neurosci. 2001;2:772–779
- Multipotent neural precursors express neural and hematopoietic factors, and enhance ex vivo expansion of cord blood CD34+ cells, colony forming units and NOD/SCID-repopulating cells in contact and noncontact cultures. Leukemia. 2005;19:91–97
- . Erythropoietin and erythropoietin receptors in human CNS neurons, astrocytes, microglia, and oligodendrocytes grown in culture. J Neuropathol Exp Neurol. 2001;60:386–392
- . Neuroectodermal differentiation from mouse multipotent adult progenitor cells. Proc Natl Acad Sci U S A. 2003;100:11854–11860
- . The origin and nature of ramified and amoeboid microglia: a historical review and current concepts. Glia. 1993;7:9–18
PII: S0301-472X(07)00384-0
doi: 10.1016/j.exphem.2007.06.013
© 2007 ISEH - Society for Hematology and Stem Cells. Published by Elsevier Inc. All rights reserved.
« Previous
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Experimental Hematology
Volume 35, Issue 12
, Pages 1858-1871
, December 2007
