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Stem Cells of Adult Organisms in Biology and Medicine

   | Oct 15, 2014

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[1] AASEN T, RAYA A, BARRARO MJ et al. Efficient and rapid generation of induced pluripotent stem cells from human keratinocytes. Nature Biotechnol 2008; 26: 1276-1284.10.1038/nbt.150318931654Open DOISearch in Google Scholar

[2] ALBERTS B, BRAY D, HOPKIN K et al. Essential Cell Biology, 2005 PWN.Search in Google Scholar

[3] AL-HAJJ M, CLARKE MF. Self-renewal and solid tumor stem cells. Oncogene 2004; 23: 7274-7282.10.1038/sj.onc.120794715378087Search in Google Scholar

[4] ALLAN DS, KEENEY M, HOWSON-JAN K et al. Number of viable CD34+ cells reinfused predicts engrafment in autologous hemopoietic stem cell transplantation. Bone Marrow Transplant 2002; 29: 967-972.10.1038/sj.bmt.170357512098064Open DOISearch in Google Scholar

[5] BARKER N, van ES JH, KUIPERS J et al. Identification of stem cells in small intestine and colon by marker gene Lgr5. Nature 2007; 449: 1003-1007.10.1038/nature0619617934449Search in Google Scholar

[6] BLAUPLAIN C, LOWRY WE, GEOGHEGAN A et al. Self-renewal, multipotency and the existence of two cell populations within an epithelial stem cell niche. Cell 2004;118: 635-648.10.1016/j.cell.2004.08.01215339667Search in Google Scholar

[7] BRAMBRINK T, FOREMAN R, WELSTEAD GG et al. Sequential expression of pluripotency markers during direct reprogramming of mouse somatic cells. Cell Stem Cell 2008; 2: 151-159.10.1016/j.stem.2008.01.00418371436227662718371436Open DOISearch in Google Scholar

[8] CADIGAN KM, NUSSE R. Wnt signaling: a common theme in animal development. Genes Dev 1997; 11: 3286-3305.10.1101/gad.11.24.328694070239407023Open DOISearch in Google Scholar

[9] CHENG JH, SHE H, HAN Y-P et al. Wnt antagonism inhibits hepatic stellate cell activation and liver fibrosis. Am J Physiol Gastrointest 2008; 294: G39-G49.10.1152/ajpgi.00263.200718006602Search in Google Scholar

[10] CIEMERYCH MA. Embryonic stem cells - searching for the pluripotency. Post Biol Komorki 2008; 35: 183-205.Search in Google Scholar

[11] COLLINS AT, BERRY PA, HYDE C et al. Prospective identification of tumorogenic prostate cancer stem cells. Cancer Res 2005; 65: 10946-10951.10.1158/0008-5472.CAN-05-201816322242Open DOISearch in Google Scholar

[12] [DALERBA P, DYLLA SJ, PARK IK et al. Phenotypic characterization of human colorectal cancer stem cells. Proc Natl Acad Sci US 2007; 104: 10158-10163.10.1073/pnas.0703478104189121517548814Open DOISearch in Google Scholar

[13] DELORME B, RINGE J, PONTIKOGLOU C et al. Specific lineage-priming of bone marrow mesenchymal stem cells provides the molecular framework for their plasticity. Stem Cells 2009; 27: 1142-1151.1941844410.1002/stem.34Search in Google Scholar

[14] FANG D, NGUYEN TK, LEISHEAR K et al. A tumorigenic subpopulation with stem cell properties in melanomas. Cancer Res 2005; 65: 9328-9337.10.1158/0008-5472.CAN-05-134316230395Open DOISearch in Google Scholar

[15] FEURING-BUSKE M [10], HOGGE DE. Hoechst 33342 efflux identifies a subpopulation of cytogenetically normal CD34+CD38- progenitor cells from patients with acute myeloid leukemia. Blood 2001; 97: 3882-3889.10.1182/blood.V97.12.3882Search in Google Scholar

[16] FLOMENBERG N, DEVINE SM, DIPERSIO JF et al. The use of AMD3100 plus G-CSF for autologous hemopoietic progenitor cell mobilization is superior to G-CSF alone. Blood 2005; 106: 1867-1874.10.1182/blood-2005-02-0468Search in Google Scholar

[17] FURNE JK, SPRINGFIELD JR, HO SB, LEVITT MD. Simplification of the end-alveolar carbon monoxide technique to assess erythrocyte survival. J Lab Clin Med 2003; 142: 52-57.10.1016/S0022-2143(03)00086-6Search in Google Scholar

[18] GIBBS CP, KUKEKOV VG, REITH JD et al. Stem-like cells in bone sarcomas: implications for tumorigenesis. Neoplasia 2005; 7: 967-976.10.1593/neo.0539416331882150202316331882Open DOISearch in Google Scholar

[19] GLANGRECO A, GROOT KR, JANES SM. Lung cancer and lung stem cells. Strange bedfellows? Am J Respir Crit Care Med 2007; 175: 547-553.10.1164/rccm.200607-984PP17158280Search in Google Scholar

[20] HANNA J, MARKONLAKI S, SCHOERDRET P et al. Direct reprogramming of terminally differentiated mature B lymphocytes to pluripotency. Cell 2008; 133: 250-261.10.1016/j.cell.2008.03.028261524918423197Search in Google Scholar

[21] HAYASHI O, KATSUBE Y, HIROSE M et al. Comparison of osteogenic ability of rat mesenchymal stem cells from bone marrow, periosteum and adipose tissue. Calcif Tissue Int 2008; 82: 238-247.10.1007/s00223-008-9112-y1830588618305886Open DOISearch in Google Scholar

[22] HESS DA, BONDE J, CRAFT TC et al. Human progenitor cells rapidly mobilized by AMD3100 repopulate NOD/SCID mice with increased frequency in comparison to cells from the same donor mobilized by G-CSF. Biol Blood Marrow Transpl 2007; 13: 398-411.10.1016/j.bbmt.2006.12.445186854417382247Open DOISearch in Google Scholar

[23] HIRSCHMANN-JAX C, FOSTER AE, WULF GG et al. A distinct “side population” of cells with high drug efflux capacity in human tumor cells. Proc Natl Acad Sci US 2004; 101: 14228-14233.10.1073/pnas.0400067101Search in Google Scholar

[24] HOPE KJ, JIN L, DICK JE. Acute myeloid leukemia originates from a hierarchy of leukemic stem cell classes that differ in self-renewal capacity. Nature Immunol 2004; 5: 738-743.10.1038/ni1080Open DOISearch in Google Scholar

[25] JEDRZEJCZAK WW. Proposition of polish nomenclature in experimental hematology. in Ultrastructure and function of cell, ed. Kawiak J, Osuchowska Z, Przełęcka A, vol.3, PWN, Warsaw 1989.Search in Google Scholar

[26] JOANNIDES A, GAUGHWIN P, SCHWIENING C et al. Efficient generation of neural precursors from adult human skin: astrocytes promote neurogenesis from skin-derived stem cells. Lancet 2004; 364: 172-178.10.1016/S0140-6736(04)16630-0Search in Google Scholar

[27] JORDAN CT, GUZMAN ML, NOBLE M. Cancer stem cells. N Engl J Med. 2006; 355: 1253-1261. 10.1056/NEJMra06180816990388Search in Google Scholar

[28] KAWALEC M, SKORSKI T, KAWIAK J. Successful chemoimmunotherapy of murine L1210 lymphatic leukemia with cyclophosphamide and mafosfamide-treated leukemia cells. Invest New Drugs 1988; 6: 169-172.10.1007/BF001753933192382Search in Google Scholar

[29] KENNEDY LJ, Jr, WEISSMAN IL. Dual origin of intimal cells in cardiac-allograft arteriosclerosis. New Engl J Med 1971; 285: 884-887.10.1056/NEJM1971101428516034939537Search in Google Scholar

[30] KIM JB, ZAEHRES H, WU G et al. Pluripotent stem cells induced from adult neural stem cells by reprogramming with two factors. Nature 2008; 454: 646-650.10.1038/nature0706118594515Search in Google Scholar

[31] KONDO T, SETOGUCHI T, TAGA T. Persistence of small subpopulation of cancer stem-like cells in the C6 glioma cell line. Proc Natl Acad Sci US 2004; 101: 781-786.10.1073/pnas.030761810032175814711994Search in Google Scholar

[32] KUCIA M, HALASA M, WYSOCZYNSKI M et al. Morphological and molecular characterization of novel population of CXCR4+SSEA-4+Oct-4+ very small embryonic-like cells purified from human cord blood - preliminary report. Leukemia 2007; 21: 297-303.10.1038/sj.leu.240447017136117Search in Google Scholar

[33] KUCIA M, RECA R, CAMPBELL FR et al. A population of very small embryonic-like (VSEL) CXCR4+SSEA-1+Oct-4+ stem cells identified in adult bone marrow. Leukemia 2006; 20: 857-869.10.1038/sj.leu.240417116498386Search in Google Scholar

[34] LAPIDOT T, SIRARD C, VORMOOR J et al. A cell initiating human acute myeloid leukemia after transplantation into SCID mice. Nature 1994; 367: 645-648.10.1038/367645a07509044Search in Google Scholar

[35] LEVESQUE JP, HENDY J, TAKARNATSU Y et al. Disruption of the CXCR4/CXCL12 chemotactic interaction during hematopoietic stem cell mobilization induced by G-CSF or cyclofosfamide. J Clin Invest 2003; 111: 187-196.10.1172/JCI1599415186012531874Search in Google Scholar

[36] LILES WC, RODGER E, BROXMEYER HE et al. Augumented mobilization and collection of CD34+ hemopoietic cells from normal human volunteers stimulated with G-CSF by single-dose administration of AMD3100, a CXCR4 antagonist. Transfusion 2005; 45: 295-300.10.1111/j.1537-2995.2005.04222.x15752146Search in Google Scholar

[37] LOGAN CY, NUSSE R. The Wnt signaling pathway in development and disease. Ann Rev Cell Dev Biol 2004; 20: 781-810.10.1146/annurev.cellbio.20.010403.11312615473860Open DOISearch in Google Scholar

[38] LOH YH, AGRAVAL S, PARK IH et al. Generation of induced pluripotent stem cells from human blood. Blood 2009; 113: 5476-5479.10.1182/blood-2009-02-204800268904819299331Search in Google Scholar

[39] LOU H, DEAN M. Targeted therapy for cancer stem cells: the patched pathway and ABC transporters. Oncogene 2007; 26: 1357-1360.1732292210.1038/sj.onc.121020017322922Search in Google Scholar

[40] MEISSNER A, WERING M, JAENISCH R. Direct reprogramming of genetically unmodified fibroblasts into pluripotent stem cells. Nature Biotechnol 2007; 25: 1177-1181.10.1038/nbt133517724450Open DOISearch in Google Scholar

[41] MEYER KC, KLATTE JE, DINH HV et al. Evidence that the bulge region is a site of relative immune privilege in human hair follicles. Br J Dermatol 2008; 159: 1077-1085.10.1111/j.1365-2133.2008.08818.x18795933Search in Google Scholar

[42] NOWACKA-ZAWISZA M, KRAJEWSKA WM. The role of BCRA1, BCRA2 and RAD51 proteins in the maintenance of genome stability. Post Biol Komorki 2009; 36: 679-694.Search in Google Scholar

[43] O’BRIEN CA, POLLET A, GALLINGER S, DICK JE. A human colon cancer cell capable of initiating tumor growth in immunodeficient mice. Nature 2007; 445: 106-110.10.1038/nature0537217122772Search in Google Scholar

[44] O’CONNOR MD, KARDEL MD, IOSFINA I et al. Alkaline phosphatase-positive colony formation is a sensitive, specific, and quantitative indicator of undifferentiated human embryonic stem cells. Stem Cells 2008; 26: 1109-1116.10.1634/stemcells.2007-080118276800Open DOISearch in Google Scholar

[45] OHYAMA M. Advances in the study of stem cell-enriched hair follicle bulge cells: a review featuring characterization and isolation of human bulge cells. Dermatology 2007; 214: 342-351.10.1159/00010088917460410Search in Google Scholar

[46] OKITA K, ICHISAKA T, YAMANAKA S. Generation of germline-competent induced pluripotent stem cells. Nature 2007; 448: 313-317.10.1038/nature0593417554338Search in Google Scholar

[47] PATRAWALA L, CALHOUN T, SCHNEIDER-BROUSSARD R et al. Highly purified CD44 prostate cancer cells from xenograft human tumors are enriched in tumorigenic and metastatic progenitor cells. Oncogene 2006; 25: 1696-1708.10.1038/sj.onc.120932716449977Open DOISearch in Google Scholar

[48] PATTHEY C, EDLUND T, GUNHAGA L. Wnt-regulated temporal control of BMP exposure directs the choice between neural plate border and epidermal fate. Development 2009; 136: 73-83.10.1242/dev.02589019060333Search in Google Scholar

[49] RATAJCZAK MZ, ZUBA-SURMA EK, MACHALINSKI B et al. Very small embryonic-like (VSEL) stem cells: purification from adult organs, characterization and biological significance. Stem Cell Rev 2008; 4: 89-99.1845907310.1007/s12015-008-9018-018459073Search in Google Scholar

[50] REYA T, CLEVERS H. Wnt signalling in stem cells and cancer. Nature 2005; 434: 843-850.10.1038/nature0331915829953Search in Google Scholar

[51] RICCI-VITIANI L, LOMBARDI DG, PILOZZI E et al. Identification and expression of human coloncancer- initiating cells. Nature 2007; 445: 111-115. 10.1038/nature0538417122771Search in Google Scholar

[52] ROBEY RW, STEADMAN K, POLGAR O et al. Pheophorbide a is a specific probe for ABCG2 function and inhibition. Cancer Res 2004; 64: 1242-1246.10.1158/0008-5472.CAN-03-3298Open DOISearch in Google Scholar

[53] ROBEY RW, TO KK, POLGAR O et al. ABCG2: a perspective. Adv Drug Deliv Rev 2009; 61: 3-13.10.1016/j.addr.2008.11.003310508819135109Open DOISearch in Google Scholar

[54] ROSSANT J. Stem cells and early lineage development. Cell 2008; 132: 527-531.10.1016/j.cell.2008.01.03918295568Search in Google Scholar

[55] SHI Q, RAFII S, HONG-DEWU M et al. Evidence for circulating bone marrow-derived endothelial cells. Blood 1998; 92: 362-367.10.1182/blood.V92.2.362Search in Google Scholar

[56] SILVA J, BARRANDON O, NICHOLS J et al. (2008) Promotion of reprogramming to ground state pluripotency by signal inhibition. PLoS Biol 6: e253.10.1371/journal.pbio.0060253257042418942890Open DOISearch in Google Scholar

[57] SINGH SK, HAWKINS C, CLARKE ID et al. Identification of human brain tumor initiating cells. Nature 2004; 432: 396-40110.1038/nature0312815549107Search in Google Scholar

[58] SWERTS K, DEMOLERLOOSE B, DHOOGE C et al. Prognostic significance of multidrug resistance-related proteins in childhood acute lymphoblastic leukemia. Eur J Cancer 2006; 42: 295-309.1632483310.1016/j.ejca.2005.09.01716324833Search in Google Scholar

[59] TALENS-VISCONTI R, BONORA A, JOVER R et al. Hepatogenic differentiation of human mesenchymal stem cells from adipose tissue in comparison with bone marrow mesenchymal cells. World J Gastroenterol 2006; 12: 5834-5845.10.3748/wjg.v12.i36.5834410066517007050Search in Google Scholar

[60] TANG C, ANG BT, PERVAIZ S. Cancer stem cell: target for anti-cancer therapy. FASEB J 2007; 21: 3777-3785.10.1096/fj.07-8560rev1762507117625071Open DOISearch in Google Scholar

[61] THOMSON JA, ITZKOVITZ-ELDOR J, SHAPIRO SS et al. Embryonic stem cell lines derived from human blastocysts. Science 1998; 282: 1145-1147.10.1126/science.282.5391.11459804556Search in Google Scholar

[62] VINDIGNI V, MICHELOTTO L, LANCEROTTO L et al. Isolation method for a stem cell population with neural potential from skin and adipose tissue. Neurol Res 2009; publ ahad PMID1524673010.1179/174313209X45920019660183Search in Google Scholar

[63] WOJAKOWSKI W, TENDERA M, MICHALOWSKA A et al. Mobilization of CD34/CXCR4+, CD34/CD117+, c-met+ stem cells and mononuclear cells expressing early cardiac muscle and endothelial markers into peripheral blood in patients with acute myocardial infarction. Circulation 2004; 110: 3213-3220.10.1161/01.CIR.0000147609.39780.0215533859Search in Google Scholar

[64] WRIGHT DE, WAGERS AJ, GULATI AP et al. Physiological migration of hemopoietic stem and progenitor cells. Science 2001; 294: 1933-1936.10.1126/science.106408111729320Search in Google Scholar

[65] WYSOCZYNSKI M, RECA R, RATAJCZAK J et al. Incorporation of CXCR4 into membrane lipid rafts primes doming-related responses of hematopoietic stem/progenitor cells to an SDF-1 gradient. Blood 2005; 105: 40-48.10.1182/blood-2004-04-143015328152Search in Google Scholar

[66] YILMAZ OH, VALDEZ R, THEISEN BK et al. Pten dependence distinguishes hemopoietic stem cells from leukemia-initiating cells. Nature 2006; 441: 475-48210.1038/nature0470316598206Search in Google Scholar

[67] ZUBA-SURMA EK, KUCIA M, ABDEL-LATIF A et al. Morphological characterization of very small embryonic-like stem cells (VSELs) by ImageStream system analysis. J Cell Mol Med 2008; 12: 292-303.10.1111/j.1582-4934.2007.00154.x382349018031297Search in Google Scholar

[68] ZUBA-SURMA EK, WU W, RATAJCZAK J et al. Very small embryonic-like stem cells in adult tissues - potential implications for aging. Mech Ageing Dev 2009; 130: 58-66. 10.1016/j.mad.2008.02.003316481118377952Search in Google Scholar

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