-
1
-
-
84955286381
-
Angiocrine functions of organ-specific endothelial cells
-
Rafii S, Butler JM, Ding BS. Angiocrine functions of organ-specific endothelial cells. Nature 2016;529:316-325
-
(2016)
Nature
, vol.529
, pp. 316-325
-
-
Rafii, S.1
Butler, J.M.2
Ding, B.S.3
-
2
-
-
77449121923
-
Endothelial cells are essential for the self-renewal and repopulation of Notch-dependent hematopoietic stem cells
-
Butler JM, Nolan DJ, Vertes EL et al. Endothelial cells are essential for the self-renewal and repopulation of Notch-dependent hematopoietic stem cells. Cell Stem Cell 2010;6: 251-264
-
(2010)
Cell Stem Cell
, vol.6
, pp. 251-264
-
-
Butler, J.M.1
Nolan, D.J.2
Vertes, E.L.3
-
3
-
-
84880948836
-
Molecular signatures of tissue-specific microvascular endothelial cell heterogeneity in organ maintenance and regeneration
-
Nolan DJ, Ginsberg M, Israely E et al. Molecular signatures of tissue-specific microvascular endothelial cell heterogeneity in organ maintenance and regeneration. Dev Cell 2013; 26:204-219
-
(2013)
Dev Cell
, vol.26
, pp. 204-219
-
-
Nolan, D.J.1
Ginsberg, M.2
Israely, E.3
-
4
-
-
84866895023
-
Identification of the hemogenic endothelial progenitor and its direct precursor in human pluripotent stem cell differentiation cultures
-
Choi KD, Vodyanik MA, Togarrati PP et al. Identification of the hemogenic endothelial progenitor and its direct precursor in human pluripotent stem cell differentiation cultures. Cell Reports 2012;2:553-567
-
(2012)
Cell Reports
, vol.2
, pp. 553-567
-
-
Choi, K.D.1
Vodyanik, M.A.2
Togarrati, P.P.3
-
5
-
-
0031932209
-
A common precursor for hematopoietic and endothelial cells
-
Choi K, Kennedy M, Kazarov A et al. A common precursor for hematopoietic and endothelial cells. Development 1998;125:725-732
-
(1998)
Development
, vol.125
, pp. 725-732
-
-
Choi, K.1
Kennedy, M.2
Kazarov, A.3
-
6
-
-
33750439078
-
The journey of developing hematopoietic stem cells
-
Mikkola HK, Orkin SH. The journey of developing hematopoietic stem cells. Development 2006;133:3733-3744
-
(2006)
Development
, vol.133
, pp. 3733-3744
-
-
Mikkola, H.K.1
Orkin, S.H.2
-
7
-
-
84994310890
-
Fetal liver hematopoietic stemcell niches associate with portal vessels
-
Khan JA, Mendelson A, Kunisaki Y et al. Fetal liver hematopoietic stemcell niches associate with portal vessels. Science 2016;351:176-180
-
(2016)
Science
, vol.351
, pp. 176-180
-
-
Khan, J.A.1
Mendelson, A.2
Kunisaki, Y.3
-
8
-
-
0036176843
-
Rescue of hematopoietic stem cells following high-dose radiation injury using ex vivo culture on endothelial monolayers
-
Chute JP, Clark W, Saini A et al. Rescue of hematopoietic stem cells following high-dose radiation injury using ex vivo culture on endothelial monolayers. Mil Med 2002;167(suppl): 74-77
-
(2002)
Mil Med
, vol.167
, pp. 74-77
-
-
Chute, J.P.1
Clark, W.2
Saini, A.3
-
9
-
-
1542267417
-
Ex vivo culture rescues hematopoietic stem cells with long-term repopulating capacity following harvest from lethally irradiated mice
-
Chute JP, Fung J, Muramoto G et al. Ex vivo culture rescues hematopoietic stem cells with long-term repopulating capacity following harvest from lethally irradiated mice. Exp Hematol 2004;32:308-317
-
(2004)
Exp Hematol
, vol.32
, pp. 308-317
-
-
Chute, J.P.1
Fung, J.2
Muramoto, G.3
-
10
-
-
33947265398
-
Transplantation of vascular endothelial cells mediates the hematopoietic recovery and survival of lethally irradiated mice
-
Chute JP, Muramoto GG, Salter AB et al. Transplantation of vascular endothelial cells mediates the hematopoietic recovery and survival of lethally irradiated mice. Blood 2007; 109:2365-2372
-
(2007)
Blood
, vol.109
, pp. 2365-2372
-
-
Chute, J.P.1
Muramoto, G.G.2
Salter, A.B.3
-
11
-
-
0037114623
-
Ex vivo culture with human brain endothelial cells increases the SCID-repopulating capacity of adult human bone marrow
-
Chute JP, Saini AA, Chute DJ et al. Ex vivo culture with human brain endothelial cells increases the SCID-repopulating capacity of adult human bone marrow. Blood 2002;100: 4433-4439
-
(2002)
Blood
, vol.100
, pp. 4433-4439
-
-
Chute, J.P.1
Saini, A.A.2
Chute, D.J.3
-
12
-
-
84874327921
-
Tie2(+) bonemarrowendothelial cells regulate hematopoietic stem cell regeneration following radiation injury
-
Doan PL, Russell JL, Himburg HA et al. Tie2(+) bonemarrowendothelial cells regulate hematopoietic stem cell regeneration following radiation injury. STEM CELLS 2013;31: 327-337
-
(2013)
STEM CELLS
, vol.31
, pp. 327-337
-
-
Doan, P.L.1
Russell, J.L.2
Himburg, H.A.3
-
13
-
-
60849138787
-
Engraftment and reconstitution of hematopoiesis is dependent on VEGFR2-mediated regeneration of sinusoidal endothelial cells
-
Hooper AT, Butler JM, Nolan DJ et al. Engraftment and reconstitution of hematopoiesis is dependent on VEGFR2-mediated regeneration of sinusoidal endothelial cells. Cell Stem Cell 2009;4:263-274
-
(2009)
Cell Stem Cell
, vol.4
, pp. 263-274
-
-
Hooper, A.T.1
Butler, J.M.2
Nolan, D.J.3
-
14
-
-
22144473344
-
Tie2 activation contributes to hemangiogenic regeneration after myelosuppression
-
Kopp HG, Avecilla ST, Hooper AT et al. Tie2 activation contributes to hemangiogenic regeneration after myelosuppression. Blood 2005;106:505-513
-
(2005)
Blood
, vol.106
, pp. 505-513
-
-
Kopp, H.G.1
Avecilla, S.T.2
Hooper, A.T.3
-
15
-
-
84943154962
-
Deep imaging of bone marrow shows nondividing stem cells are mainly perisinusoidal
-
Acar M, Kocherlakota KS, Murphy MM et al. Deep imaging of bone marrow shows nondividing stem cells are mainly perisinusoidal. Nature 2015;526:126-130
-
(2015)
Nature
, vol.526
, pp. 126-130
-
-
Acar, M.1
Kocherlakota, K.S.2
Murphy, M.M.3
-
16
-
-
84886947010
-
Arteriolar niches maintain haematopoietic stem cell quiescence
-
Kunisaki Y, Bruns I, Scheiermann C et al. Arteriolar niches maintain haematopoietic stem cell quiescence. Nature 2013;502:637-643
-
(2013)
Nature
, vol.502
, pp. 637-643
-
-
Kunisaki, Y.1
Bruns, I.2
Scheiermann, C.3
-
17
-
-
84884157062
-
Endothelial Jagged-1 is necessary for homeostatic and regenerative hematopoiesis
-
Poulos MG, Guo P, Kofler N M et al. Endothelial Jagged-1 is necessary for homeostatic and regenerative hematopoiesis. Cell Reports 2013;4:1022-1034
-
(2013)
Cell Reports
, vol.4
, pp. 1022-1034
-
-
Poulos, M.G.1
Guo, P.2
Kofler, N.M.3
-
18
-
-
77950543499
-
Pleiotrophin regulates the expansion and regeneration of hematopoietic stem cells
-
Himburg HA, Muramoto GG, Daher P et al. Pleiotrophin regulates the expansion and regeneration of hematopoietic stem cells. Nat Med 2010;16:475-482
-
(2010)
Nat Med
, vol.16
, pp. 475-482
-
-
Himburg, H.A.1
Muramoto, G.G.2
Daher, P.3
-
19
-
-
33745466139
-
Vascular endothelial cells produce soluble factors that mediate the recovery of human hematopoietic stem cells after radiation injury
-
Muramoto GG, Chen B, Cui X et al. Vascular endothelial cells produce soluble factors that mediate the recovery of human hematopoietic stem cells after radiation injury. Biol Blood Marrow Transplant 2006;12:530-540
-
(2006)
Biol Blood Marrow Transplant
, vol.12
, pp. 530-540
-
-
Muramoto, G.G.1
Chen, B.2
Cui, X.3
-
20
-
-
44849121129
-
Paracrine factors ofmesenchymal stemcells recruit macrophages and endothelial lineage cells and enhance wound healing
-
Chen L, Tredget EE, Wu PY et al. Paracrine factors ofmesenchymal stemcells recruit macrophages and endothelial lineage cells and enhance wound healing. PLoS One 2008;3: e1886
-
(2008)
Plos One
, vol.3
-
-
Chen, L.1
Tredget, E.E.2
Wu, P.Y.3
-
21
-
-
67650227686
-
Robust functional vascular network formation in vivo by cooperation of adipose progenitor and endothelial cells
-
Traktuev DO, Prater DN, Merfeld-Clauss S et al. Robust functional vascular network formation in vivo by cooperation of adipose progenitor and endothelial cells. Circ Res 2009; 104:1410-1420
-
(2009)
Circ Res
, vol.104
, pp. 1410-1420
-
-
Traktuev, D.O.1
Prater, D.N.2
Merfeld-Clauss, S.3
-
22
-
-
37349030439
-
ArthurAet al.Multipotential human adipose-derived stromal stem cells exhibit a perivascular phenotype in vitro and in vivo
-
Zannettino AC, Paton S, ArthurAet al.Multipotential human adipose-derived stromal stem cells exhibit a perivascular phenotype in vitro and in vivo. J Cell Physiol 2008;214:413-421
-
(2008)
J Cell Physiol
, vol.214
, pp. 413-421
-
-
Zannettino, A.C.1
Paton, S.2
-
23
-
-
53549130485
-
White fat progenitor cells reside in the adipose vasculature
-
Tang W, Zeve D, Suh JM et al. White fat progenitor cells reside in the adipose vasculature. Science 2008;322:583-586
-
(2008)
Science
, vol.322
, pp. 583-586
-
-
Tang, W.1
Zeve, D.2
Suh, J.M.3
-
24
-
-
2542626091
-
Endothelial cells stimulate self-renewal and expand neurogenesis of neural stem cells
-
Shen Q, Goderie SK, Jin L et al. Endothelial cells stimulate self-renewal and expand neurogenesis of neural stem cells. Science 2004;304: 1338-1340
-
(2004)
Science
, vol.304
, pp. 1338-1340
-
-
Shen, Q.1
Goderie, S.K.2
Jin, L.3
-
25
-
-
0032796824
-
Endothelial trophic support of neuronal production and recruitment from the adult mammalian subependyma
-
Leventhal C, Rafii S, Rafii D et al. Endothelial trophic support of neuronal production and recruitment from the adult mammalian subependyma. Mol Cell Neurosci 1999;13:450-464
-
(1999)
Mol Cell Neurosci
, vol.13
, pp. 450-464
-
-
Leventhal, C.1
Rafii, S.2
Rafii, D.3
-
26
-
-
33344455016
-
Pigment epitheliumderived factor is a niche signal for neural stem cell renewal
-
Ramírez-Castillejo C, Sánchez-Sánchez F, Andreu-Agulló C et al. Pigment epitheliumderived factor is a niche signal for neural stem cell renewal. Nat Neurosci 2006;9:331-339
-
(2006)
Nat Neurosci
, vol.9
, pp. 331-339
-
-
Ramírez-Castillejo, C.1
Sánchez-Sánchez, F.2
Reu-Agulló, C.3
-
27
-
-
84939490816
-
Selfrenewing diploid Axin2(+) cells fuel homeostatic renewal of the liver
-
Wang B, Zhao L, Fish M et al. Selfrenewing diploid Axin2(+) cells fuel homeostatic renewal of the liver. Nature 2015;524:180-185
-
(2015)
Nature
, vol.524
, pp. 180-185
-
-
Wang, B.1
Zhao, L.2
Fish, M.3
-
28
-
-
80155137529
-
Endothelial-derived angiocrine signals induce and sustain regenerative lung alveolarization
-
Ding BS, Nolan DJ, Guo P et al. Endothelial-derived angiocrine signals induce and sustain regenerative lung alveolarization. Cell 2011;147:539-553
-
(2011)
Cell
, vol.147
, pp. 539-553
-
-
Ding, B.S.1
Nolan, D.J.2
Guo, P.3
-
29
-
-
84939542069
-
Endothelial MMP14 is required for endothelial-dependent growth support of human airway basal cells
-
Ding BS, Gomi K, Rafii S et al. Endothelial MMP14 is required for endothelial-dependent growth support of human airway basal cells. J Cell Sci 2015;128:2983-2988
-
(2015)
J Cell Sci
, vol.128
, pp. 2983-2988
-
-
Ding, B.S.1
Gomi, K.2
Rafii, S.3
-
30
-
-
0029147761
-
Mouse embryonic hematopoiesis
-
Dzierzak E, Medvinsky A. Mouse embryonic hematopoiesis. Trends Genet 1995;11: 359-366
-
(1995)
Trends Genet
, vol.11
, pp. 359-366
-
-
Dzierzak, E.1
Medvinsky, A.2
-
31
-
-
0026334679
-
Embryonic angiogenesis factors
-
Risau W. Embryonic angiogenesis factors. Pharmacol Ther 1991;51:371-376
-
(1991)
Pharmacol Ther
, vol.51
, pp. 371-376
-
-
Risau, W.1
-
32
-
-
0016785660
-
On the origin of haemopoietic stem cells in the avian embryo: An experimental approach
-
Dieterlen-Lievre F. On the origin of haemopoietic stem cells in the avian embryo: An experimental approach. J Embryol Exp Morphol 1975;33:607-619
-
(1975)
J Embryol Exp Morphol
, vol.33
, pp. 607-619
-
-
Dieterlen-Lievre, F.1
-
33
-
-
0030595341
-
Definitive hematopoiesis is autonomously initiated by the AGM region
-
Medvinsky A, Dzierzak E. Definitive hematopoiesis is autonomously initiated by the AGM region. Cell 1996;86:897-906
-
(1996)
Cell
, vol.86
, pp. 897-906
-
-
Medvinsky, A.1
Dzierzak, E.2
-
34
-
-
0028842147
-
Emergence of multipotent hemopoietic cells in the yolk sac and paraaortic splanchnopleura in mouse embryos, beginning at 8.5 days postcoitus
-
Godin I, Dieterlen-Lièvre F, Cumano A. Emergence of multipotent hemopoietic cells in the yolk sac and paraaortic splanchnopleura in mouse embryos, beginning at 8.5 days postcoitus. Proc Natl Acad Sci USA 1995;92:773-777
-
(1995)
Proc Natl Acad Sci USA
, vol.92
, pp. 773-777
-
-
Godin, I.1
Dieterlen-Lièvre, F.2
Cumano, A.3
-
35
-
-
84855487703
-
Highly potent human hematopoietic stem cells first emerge in the intraembryonic aorta-gonadmesonephros region
-
Ivanovs A, Rybtsov S, Welch L et al. Highly potent human hematopoietic stem cells first emerge in the intraembryonic aorta-gonadmesonephros region. J Exp Med 2011;208: 2417-2427
-
(2011)
J Exp Med
, vol.208
, pp. 2417-2427
-
-
Ivanovs, A.1
Rybtsov, S.2
Welch, L.3
-
36
-
-
0030917152
-
In vivo repopulating hematopoietic stem cells are present in the murine yolk sac at day 9.0 postcoitus
-
Yoder MC, Hiatt K, Mukherjee P. In vivo repopulating hematopoietic stem cells are present in the murine yolk sac at day 9.0 postcoitus. Proc Natl Acad Sci USA 1997;94:6776-6780
-
(1997)
Proc Natl Acad Sci USA
, vol.94
, pp. 6776-6780
-
-
Yoder, M.C.1
Hiatt, K.2
Mukherjee, P.3
-
37
-
-
79955150089
-
Embryonic origin of the adult hematopoietic system: Advances and questions
-
Medvinsky A, Rybtsov S, Taoudi S. Embryonic origin of the adult hematopoietic system: Advances and questions. Development 2011; 138:1017-1031
-
(2011)
Development
, vol.138
, pp. 1017-1031
-
-
Medvinsky, A.1
Rybtsov, S.2
Taoudi, S.3
-
38
-
-
14644416569
-
The placenta is a niche for hematopoietic stem cells
-
Gekas C, Dieterlen-Liévre F, Orkin SH et al. The placenta is a niche for hematopoietic stem cells. Dev Cell 2005;8:365-375
-
(2005)
Dev Cell
, vol.8
, pp. 365-375
-
-
Gekas, C.1
Dieterlen-Liévre, F.2
Orkin, S.H.3
-
39
-
-
56549101520
-
Fate tracing reveals the endothelial origin of hematopoietic stem cells
-
Zovein AC, Hofmann JJ, Lynch M et al. Fate tracing reveals the endothelial origin of hematopoietic stem cells. Cell Stem Cell 2008;3: 625-636
-
(2008)
Cell Stem Cell
, vol.3
, pp. 625-636
-
-
Zovein, A.C.1
Hofmann, J.J.2
Lynch, M.3
-
40
-
-
77949895151
-
Haematopoietic stem cells derive directly from aortic endothelium during development
-
Bertrand JY, Chi NC, Santoso B et al. Haematopoietic stem cells derive directly from aortic endothelium during development. Nature 2010;464:108-111
-
(2010)
Nature
, vol.464
, pp. 108-111
-
-
Bertrand, J.Y.1
Chi, N.C.2
Santoso, B.3
-
41
-
-
60149102751
-
Continuous single-cell imaging of blood generation from haemogenic endothelium
-
Eilken HM, Nishikawa S, Schroeder T. Continuous single-cell imaging of blood generation from haemogenic endothelium. Nature 2009;457:896-900
-
(2009)
Nature
, vol.457
, pp. 896-900
-
-
Eilken, H.M.1
Nishikawa, S.2
Schroeder, T.3
-
42
-
-
60149100010
-
Runx1 is required for the endothelial to haematopoietic cell transition but not thereafter
-
Chen MJ, Yokomizo T, Zeigler BM et al. Runx1 is required for the endothelial to haematopoietic cell transition but not thereafter. Nature 2009;457:887-891
-
(2009)
Nature
, vol.457
, pp. 887-891
-
-
Chen, M.J.1
Yokomizo, T.2
Zeigler, B.M.3
-
43
-
-
0029006696
-
Failure of blood-island formation and vasculogenesis in Flk-1-deficient mice
-
Shalaby F, Rossant J, Yamaguchi TP et al. Failure of blood-island formation and vasculogenesis in Flk-1-deficient mice. Nature 1995; 376:62-66
-
(1995)
Nature
, vol.376
, pp. 62-66
-
-
Shalaby, F.1
Rossant, J.2
Yamaguchi, T.P.3
-
44
-
-
0014241685
-
Hemopoietic colony studies. V. Effect of hemopoietic organ stroma on differentiation of pluripotent stem cells
-
Wolf NS, Trentin JJ. Hemopoietic colony studies. V. Effect of hemopoietic organ stroma on differentiation of pluripotent stem cells. J Exp Med 1968;127:205-214
-
(1968)
J Exp Med
, vol.127
, pp. 205-214
-
-
Wolf, N.S.1
Trentin, J.J.2
-
45
-
-
0018102359
-
The relationship between the spleen colony-forming cell and the haemopoietic stem cell
-
Schofield R. The relationship between the spleen colony-forming cell and the haemopoietic stem cell. Blood Cells 1978;4:7-25
-
(1978)
Blood Cells
, vol.4
, pp. 7-25
-
-
Schofield, R.1
-
46
-
-
0000062301
-
Cytological demonstration of the clonal nature of spleen colonies derived from transplanted mouse marrow cells
-
Becker AJ, McCulloch EA, Till JE. Cytological demonstration of the clonal nature of spleen colonies derived from transplanted mouse marrow cells. Nature 1963;197:452-454
-
(1963)
Nature
, vol.197
, pp. 452-454
-
-
Becker, A.J.1
McCulloch, E.A.2
Till, J.E.3
-
47
-
-
84905756677
-
Hematopoietic stem cell niche maintenance during homeostasis and regeneration
-
Mendelson A, Frenette PS. Hematopoietic stem cell niche maintenance during homeostasis and regeneration. Nat Med 2014;20: 833-846
-
(2014)
Nat Med
, vol.20
, pp. 833-846
-
-
Mendelson, A.1
Frenette, P.S.2
-
48
-
-
84892610064
-
The bone marrow niche for haematopoietic stem cells
-
Morrison SJ, Scadden DT. The bone marrow niche for haematopoietic stem cells. Nature 2014;505:327-334
-
(2014)
Nature
, vol.505
, pp. 327-334
-
-
Morrison, S.J.1
Scadden, D.T.2
-
49
-
-
67650504733
-
Bone-marrow adipocytes as negative regulators of the haematopoietic microenvironment
-
Naveiras O, Nardi V, Wenzel PL et al. Bone-marrow adipocytes as negative regulators of the haematopoietic microenvironment. Nature 2009;460:259-263
-
(2009)
Nature
, vol.460
, pp. 259-263
-
-
Naveiras, O.1
Nardi, V.2
Wenzel, P.L.3
-
50
-
-
84893810137
-
Re-entry into quiescence protects hematopoietic stem cells from the killing effect of chronic exposure to type I interferons
-
Pietras EM, Lakshminarasimhan R, Techner JM et al. Re-entry into quiescence protects hematopoietic stem cells from the killing effect of chronic exposure to type I interferons. J Exp Med 2014;211:245-262
-
(2014)
J Exp Med
, vol.211
, pp. 245-262
-
-
Pietras, E.M.1
Lakshminarasimhan, R.2
Techner, J.M.3
-
51
-
-
80055113763
-
Osteoclasts are dispensable for hematopoietic stem cell maintenance and mobilization
-
Miyamoto K, Yoshida S, Kawasumi M et al. Osteoclasts are dispensable for hematopoietic stem cell maintenance and mobilization. J Exp Med 2011;208:2175-2181
-
(2011)
J Exp Med
, vol.208
, pp. 2175-2181
-
-
Miyamoto, K.1
Yoshida, S.2
Kawasumi, M.3
-
52
-
-
33744983304
-
Osteoclasts degrade endosteal components and promote mobilization of hematopoietic progenitor cells
-
Kollet O, Dar A, Shivtiel S et al. Osteoclasts degrade endosteal components and promote mobilization of hematopoietic progenitor cells. Nat Med 2006;12:657-664
-
(2006)
Nat Med
, vol.12
, pp. 657-664
-
-
Kollet, O.1
Dar, A.2
Shivtiel, S.3
-
53
-
-
84897882037
-
Coupling of angiogenesis and osteogenesis by a specific vessel subtype in bone
-
Kusumbe AP, Ramasamy SK, Adams RH. Coupling of angiogenesis and osteogenesis by a specific vessel subtype in bone. Nature 2014;507:323-328
-
(2014)
Nature
, vol.507
, pp. 323-328
-
-
Kusumbe, A.P.1
Ramasamy, S.K.2
Adams, R.H.3
-
54
-
-
0001635731
-
The normal vascular anatomy of the femoral head in adult man
-
Trueta J, Harrison MH. The normal vascular anatomy of the femoral head in adult man. J Bone Joint Surg Br 1953;35:442-461
-
(1953)
J Bone Joint Surg Br
, vol.35
, pp. 442-461
-
-
Trueta, J.1
Harrison, M.H.2
-
56
-
-
84856147560
-
Endothelial and perivascular cells maintain haematopoietic stem cells
-
Ding L, Saunders TL, Enikolopov G et al. Endothelial and perivascular cells maintain haematopoietic stem cells. Nature 2012;481: 457-462
-
(2012)
Nature
, vol.481
, pp. 457-462
-
-
Ding, L.1
Saunders, T.L.2
Enikolopov, G.3
-
57
-
-
84875000886
-
Haematopoietic stem cells and early lymphoid progenitors occupy distinct bone marrow niches
-
Ding L, Morrison SJ. Haematopoietic stem cells and early lymphoid progenitors occupy distinct bone marrow niches. Nature 2013;495:231-235
-
(2013)
Nature
, vol.495
, pp. 231-235
-
-
Ding, L.1
Morrison, S.J.2
-
59
-
-
21244463426
-
SLAM family receptors distinguish hematopoietic stem and progenitor cells and reveal endothelial niches for stem cells
-
Kiel MJ, Yilmaz OH, Iwashita T et al. SLAM family receptors distinguish hematopoietic stem and progenitor cells and reveal endothelial niches for stem cells. Cell 2005;121:1109-1121
-
(2005)
Cell
, vol.121
, pp. 1109-1121
-
-
Kiel, M.J.1
Yilmaz, O.H.2
Iwashita, T.3
-
60
-
-
0028534860
-
The long-term repopulating subset of hematopoietic stem cells is deterministic and isolatable by phenotype
-
Morrison SJ, Weissman IL. The long-term repopulating subset of hematopoietic stem cells is deterministic and isolatable by phenotype. Immunity 1994;1:661-673
-
(1994)
Immunity
, vol.1
, pp. 661-673
-
-
Morrison, S.J.1
Weissman, I.L.2
-
61
-
-
33645730667
-
Reactive oxygen species act through p38 MAPK to limit the lifespan of hematopoietic stem cells
-
Ito K, Hirao A, Arai F et al. Reactive oxygen species act through p38 MAPK to limit the lifespan of hematopoietic stem cells. Nat Med 2006;12:446-451
-
(2006)
Nat Med
, vol.12
, pp. 446-451
-
-
Ito, K.1
Hirao, A.2
Arai, F.3
-
62
-
-
34249882777
-
Foxo3a is essential for maintenance of the hematopoietic stem cell pool
-
Miyamoto K, Araki KY, Naka K et al. Foxo3a is essential for maintenance of the hematopoietic stem cell pool. Cell Stem Cell 2007;1:101-112
-
(2007)
Cell Stem Cell
, vol.1
, pp. 101-112
-
-
Miyamoto, K.1
Araki, K.Y.2
Naka, K.3
-
63
-
-
78751565017
-
Enhanced c-Met activity promotes G-CSF-induced mobilization of hematopoietic progenitor cells viaROS signaling
-
Tesio M, Golan K, Corso S et al. Enhanced c-Met activity promotes G-CSF-induced mobilization of hematopoietic progenitor cells viaROS signaling. Blood 2011;117:419-428
-
(2011)
Blood
, vol.117
, pp. 419-428
-
-
Tesio, M.1
Golan, K.2
Corso, S.3
-
64
-
-
84863338623
-
S1P promotes murine progenitor cell egress and mobilization via S1P1-mediated ROS signaling and SDF-1 release
-
Golan K, Vagima Y, Ludin A et al. S1P promotes murine progenitor cell egress and mobilization via S1P1-mediated ROS signaling and SDF-1 release. Blood 2012;119:2478-2488
-
(2012)
Blood
, vol.119
, pp. 2478-2488
-
-
Golan, K.1
Vagima, Y.2
Ludin, A.3
-
65
-
-
84877575509
-
Quantitative imaging of haematopoietic stem and progenitor cell localization and hypoxic status in the bone marrow microenvironment
-
Nombela-Arrieta C, Pivarnik G, Winkel B et al. Quantitative imaging of haematopoietic stem and progenitor cell localization and hypoxic status in the bone marrow microenvironment. Nat Cell Biol 2013;15:533-543
-
(2013)
Nat Cell Biol
, vol.15
, pp. 533-543
-
-
Nombela-Arrieta, C.1
Pivarnik, G.2
Winkel, B.3
-
66
-
-
84964533485
-
Distinct bone marrow blood vessels differentially regulate haematopoiesis
-
Itkin T, Gur-Cohen S, Spencer JA et al. Distinct bone marrow blood vessels differentially regulate haematopoiesis. Nature 2016;532: 323-328
-
(2016)
Nature
, vol.532
, pp. 323-328
-
-
Itkin, T.1
Gur-Cohen, S.2
Spencer, J.A.3
-
67
-
-
0043020616
-
Mobilization of hematopoietic stem cells during homeostasis and after cytokine exposure
-
Abkowitz JL, Robinson AE, Kale S et al. Mobilization of hematopoietic stem cells during homeostasis and after cytokine exposure. Blood 2003;102:1249-1253
-
(2003)
Blood
, vol.102
, pp. 1249-1253
-
-
Abkowitz, J.L.1
Robinson, A.E.2
Kale, S.3
-
68
-
-
58149260269
-
Liveanimal tracking of individual haematopoietic stem/progenitor cells in their niche
-
Lo Celso C, Fleming HE, Wu JW et al. Liveanimal tracking of individual haematopoietic stem/progenitor cells in their niche. Nature 2009;457:92-96
-
(2009)
Nature
, vol.457
, pp. 92-96
-
-
Lo Celso, C.1
Fleming, H.E.2
Wu, J.W.3
-
69
-
-
20544439303
-
In vivo imaging of specialized bone marrow endothelial microdomains for tumour engraftment
-
Sipkins DA, Wei X, Wu JW et al. In vivo imaging of specialized bone marrow endothelial microdomains for tumour engraftment. Nature 2005;435:969-973
-
(2005)
Nature
, vol.435
, pp. 969-973
-
-
Sipkins, D.A.1
Wei, X.2
Wu, J.W.3
-
70
-
-
58149250287
-
Detection of functional haematopoietic stem cell niche using real-time imaging
-
Xie Y, Yin T, Wiegraebe W et al. Detection of functional haematopoietic stem cell niche using real-time imaging. Nature 2009;457:97-101
-
(2009)
Nature
, vol.457
, pp. 97-101
-
-
Xie, Y.1
Yin, T.2
Wiegraebe, W.3
-
71
-
-
0017694555
-
Conditions controlling the proliferation of haemopoietic stem cells in vitro
-
Dexter TM, Allen TD, Lajtha LG. Conditions controlling the proliferation of haemopoietic stem cells in vitro. J Cell Physiol 1977; 91:335-344
-
(1977)
J Cell Physiol
, vol.91
, pp. 335-344
-
-
Dexter, T.M.1
Allen, T.D.2
Lajtha, L.G.3
-
72
-
-
0016822122
-
The relative spatial distributions of CFUs and CFUc in the normal mouse femur
-
Lord BI, Testa NG, Hendry JH. The relative spatial distributions of CFUs and CFUc in the normal mouse femur. Blood 1975;46:65-72
-
(1975)
Blood
, vol.46
, pp. 65-72
-
-
Lord, B.I.1
Testa, N.G.2
Hendry, J.H.3
-
73
-
-
0028274877
-
Human osteoblasts support hematopoiesis through the productionof granulocyte colony-stimulating factor
-
Taichman RS, Emerson SG. Human osteoblasts support hematopoiesis through the productionof granulocyte colony-stimulating factor. J Exp Med 1994;179:1677-1682
-
(1994)
J Exp Med
, vol.179
, pp. 1677-1682
-
-
Taichman, R.S.1
Emerson, S.G.2
-
74
-
-
0242268524
-
Osteoblastic cells regulate the haematopoietic stem cell niche
-
Calvi LM, Adams GB, Weibrecht K W et al. Osteoblastic cells regulate the haematopoietic stem cell niche. Nature 2003;425:841-846
-
(2003)
Nature
, vol.425
, pp. 841-846
-
-
Calvi, L.M.1
Adams, G.B.2
Weibrecht, K.W.3
-
75
-
-
0242363225
-
Identification of the haematopoietic stem cell niche and control of the niche size
-
Zhang J, Niu C, Ye L et al. Identification of the haematopoietic stem cell niche and control of the niche size. Nature 2003;425:836-841
-
(2003)
Nature
, vol.425
, pp. 836-841
-
-
Zhang, J.1
Niu, C.2
Ye, L.3
-
76
-
-
0035871882
-
Spatial localization of transplanted hemopoietic stem cells: Inferences for the localization of stem cell niches
-
Nilsson SK, Johnston HM, Coverdale JA. Spatial localization of transplanted hemopoietic stem cells: Inferences for the localization of stem cell niches. Blood 2001;97:2293-2299
-
(2001)
Blood
, vol.97
, pp. 2293-2299
-
-
Nilsson, S.K.1
Johnston, H.M.2
Coverdale, J.A.3
-
77
-
-
8644219660
-
C-Myc controls the balance between hematopoietic stem cell self-renewal and differentiation
-
Wilson A, Murphy MJ, Oskarsson T et al. c-Myc controls the balance between hematopoietic stem cell self-renewal and differentiation. Genes Dev 2004;18:2747-2763
-
(2004)
Genes Dev
, vol.18
, pp. 2747-2763
-
-
Wilson, A.1
Murphy, M.J.2
Oskarsson, T.3
-
78
-
-
58749104518
-
Endochondral ossification is required for haematopoietic stem-cell niche formation
-
Chan CK, Chen CC, Luppen CA et al. Endochondral ossification is required for haematopoietic stem-cell niche formation. Nature 2009;457:490-494
-
(2009)
Nature
, vol.457
, pp. 490-494
-
-
Chan, C.K.1
Chen, C.C.2
Luppen, C.A.3
-
79
-
-
84881095160
-
Clonal precursor of bone, cartilage, and hematopoietic niche stromal cells
-
Chan CK, Lindau P, Jiang W et al. Clonal precursor of bone, cartilage, and hematopoietic niche stromal cells. Proc Natl Acad SciUSA 2013; 110:12643-12648
-
(2013)
Proc Natl Acad Sciusa
, vol.110
, pp. 12643-12648
-
-
Chan, C.K.1
Lindau, P.2
Jiang, W.3
-
80
-
-
36748999351
-
Thrombopoietin/MPL signaling regulates hematopoietic stem cell quiescence and interaction with the osteoblastic niche
-
Yoshihara H, Arai F, Hosokawa K et al. Thrombopoietin/MPL signaling regulates hematopoietic stem cell quiescence and interaction with the osteoblastic niche. Cell Stem Cell 2007;1:685-697
-
(2007)
Cell Stem Cell
, vol.1
, pp. 685-697
-
-
Yoshihara, H.1
Arai, F.2
Hosokawa, K.3
-
81
-
-
84919873175
-
Development of the fetal bone marrow niche and regulation of HSC quiescence and homing ability by emerging osteolineage cells
-
Coskun S, Chao H, Vasavada H et al. Development of the fetal bone marrow niche and regulation of HSC quiescence and homing ability by emerging osteolineage cells. Cell Reports 2014;9:581-590
-
(2014)
Cell Reports
, vol.9
, pp. 581-590
-
-
Coskun, S.1
Chao, H.2
Vasavada, H.3
-
82
-
-
33845445939
-
Maintenance of the hematopoietic stem cell pool by CXCL12-CXCR4 chemokine signaling in bone marrow stromal cell niches
-
Sugiyama T, Kohara H, Noda M et al. Maintenance of the hematopoietic stem cell pool by CXCL12-CXCR4 chemokine signaling in bone marrow stromal cell niches. Immunity 2006;25:977-988
-
(2006)
Immunity
, vol.25
, pp. 977-988
-
-
Sugiyama, T.1
Kohara, H.2
Noda, M.3
-
83
-
-
34547670604
-
Lack of evidence that hematopoietic stem cells depend on N-cadherin-mediated adhesion to osteoblasts for their maintenance
-
Kiel MJ, Radice GL, Morrison SJ. Lack of evidence that hematopoietic stem cells depend on N-cadherin-mediated adhesion to osteoblasts for their maintenance. Cell Stem Cell 2007;1:204-217
-
(2007)
Cell Stem Cell
, vol.1
, pp. 204-217
-
-
Kiel, M.J.1
Radice, G.L.2
Morrison, S.J.3
-
84
-
-
1942457308
-
Hematopoiesis is severely altered in mice with an induced osteoblast deficiency
-
Visnjic D, Kalajzic Z, Rowe DW et al. Hematopoiesis is severely altered in mice with an induced osteoblast deficiency. Blood 2004; 103:3258-3264
-
(2004)
Blood
, vol.103
, pp. 3258-3264
-
-
Visnjic, D.1
Kalajzic, Z.2
Rowe, D.W.3
-
85
-
-
34247332650
-
Osteoblasts support B-lymphocyte commitment and differentiation from hematopoietic stem cells
-
Zhu J, Garrett R, Jung Y et al. Osteoblasts support B-lymphocyte commitment and differentiation from hematopoietic stem cells. Blood 2007;109:3706-3712
-
(2007)
Blood
, vol.109
, pp. 3706-3712
-
-
Zhu, J.1
Garrett, R.2
Jung, Y.3
-
86
-
-
38949140223
-
Strontium can increase some osteoblasts without increasing hematopoietic stem cells
-
Lymperi S, Horwood N, Marley S et al. Strontium can increase some osteoblasts without increasing hematopoietic stem cells. Blood 2008;111:1173-1181
-
(2008)
Blood
, vol.111
, pp. 1173-1181
-
-
Lymperi, S.1
Horwood, N.2
Marley, S.3
-
87
-
-
84874997081
-
CXCL12 in early mesenchymal progenitors is required for haematopoietic stem-cell maintenance
-
Greenbaum A, Hsu YM, Day RB et al. CXCL12 in early mesenchymal progenitors is required for haematopoietic stem-cell maintenance. Nature 2013;495:227-230
-
(2013)
Nature
, vol.495
, pp. 227-230
-
-
Greenbaum, A.1
Hsu, Y.M.2
Day, R.B.3
-
88
-
-
0011891138
-
Structural, cytologic and autoradiographic (H3-thymidine) changes in the bonemarrowfollowing total body irradiation
-
Fliedner TM, Bond VP, Cronkite EP. Structural, cytologic and autoradiographic (H3-thymidine) changes in the bonemarrowfollowing total body irradiation. Am J Pathol 1961;38:599-623
-
(1961)
Am J Pathol
, vol.38
, pp. 599-623
-
-
Fliedner, T.M.1
Bond, V.P.2
Cronkite, E.P.3
-
89
-
-
0030063729
-
Presence of hematopoietic stem cells in the adult liver
-
Taniguchi H, Toyoshima T, Fukao K et al. Presence of hematopoietic stem cells in the adult liver. Nat Med 1996;2:198-203
-
(1996)
Nat Med
, vol.2
, pp. 198-203
-
-
Taniguchi, H.1
Toyoshima, T.2
Fukao, K.3
-
90
-
-
0015310567
-
Origin and recovery of colony-forming units in locally curetted bone marrow of mice
-
Knospe WH, Gregory SA, Husseini SG et al. Origin and recovery of colony-forming units in locally curetted bone marrow of mice. Blood 1972;39:331-340
-
(1972)
Blood
, vol.39
, pp. 331-340
-
-
Knospe, W.H.1
Gregory, S.A.2
Husseini, S.G.3
-
91
-
-
28844476756
-
Bonemarrowdysfunction inmicelackingthecytokinereceptorgp130 in endothelial cells
-
Yao L, Yokota T, Xia L et al. Bonemarrowdysfunction inmicelackingthecytokinereceptorgp130 in endothelial cells. Blood 2005;106:4093-4101
-
(2005)
Blood
, vol.106
, pp. 4093-4101
-
-
Yao, L.1
Yokota, T.2
Xia, L.3
-
92
-
-
33749043471
-
Molecular profile and partial functional analysis of novel endothelial cell-derived growth factors that regulate hematopoiesis
-
Chute JP, Muramoto GG, Dressman HK et al. Molecular profile and partial functional analysis of novel endothelial cell-derived growth factors that regulate hematopoiesis. STEM CELLS 2006;24:1315-1327
-
(2006)
STEM CELLS
, vol.24
, pp. 1315-1327
-
-
Chute, J.P.1
Muramoto, G.G.2
Dressman, H.K.3
-
93
-
-
10044223409
-
Hematopoietic stem cell repopulating ability can be maintained in vitro by some primary endothelial cells
-
Li W, Johnson SA, Shelley WC et al. Hematopoietic stem cell repopulating ability can be maintained in vitro by some primary endothelial cells. Exp Hematol 2004;32:1226-1237
-
(2004)
Exp Hematol
, vol.32
, pp. 1226-1237
-
-
Li, W.1
Johnson, S.A.2
Shelley, W.C.3
-
94
-
-
61849092556
-
Endothelial progenitor cell infusion induces hematopoietic stem cell reconstitution in vivo
-
Salter AB, Meadows SK, Muramoto GG et al. Endothelial progenitor cell infusion induces hematopoietic stem cell reconstitution in vivo. Blood 2009;113:2104-2107
-
(2009)
Blood
, vol.113
, pp. 2104-2107
-
-
Salter, A.B.1
Meadows, S.K.2
Muramoto, G.G.3
-
95
-
-
36248990810
-
The role of the donor in the repair of the marrow vascular niche following hematopoietic stem cell transplant
-
Slayton WB, Li XM, Butler J et al. The role of the donor in the repair of the marrow vascular niche following hematopoietic stem cell transplant. STEM CELLS 2007;25:2945-2955
-
(2007)
STEM CELLS
, vol.25
, pp. 2945-2955
-
-
Slayton, W.B.1
Li, X.M.2
Butler, J.3
-
96
-
-
78149280740
-
Angiocrine factors from Akt-activated endothelial cells balance self-renewal and differentiation of haematopoietic stem cells
-
Kobayashi H, Butler JM, O’Donnell R et al. Angiocrine factors from Akt-activated endothelial cells balance self-renewal and differentiation of haematopoietic stem cells. Nat Cell Biol 2010;12:1046-1056
-
(2010)
Nat Cell Biol
, vol.12
, pp. 1046-1056
-
-
Kobayashi, H.1
Butler, J.M.2
O’Donnell, R.3
-
97
-
-
84948390166
-
A perisinusoidal niche for extramedullary haematopoiesis in the spleen
-
Inra CN, Zhou BO, Acar M et al. A perisinusoidal niche for extramedullary haematopoiesis in the spleen. Nature 2015; 527:466-471
-
(2015)
Nature
, vol.527
, pp. 466-471
-
-
Inra, C.N.1
Zhou, B.O.2
Acar, M.3
-
98
-
-
11244252126
-
Soluble factors elaborated by humanbrain endothelial cells induce the concomitant expansion of purified human BM CD34+CD38-cells and SCIDrepopulating cells
-
Chute JP, Muramoto GG, Fung J et al. Soluble factors elaborated by humanbrain endothelial cells induce the concomitant expansion of purified human BM CD34+CD38-cells and SCIDrepopulating cells. Blood 2005;105:576-583
-
(2005)
Blood
, vol.105
, pp. 576-583
-
-
Chute, J.P.1
Muramoto, G.G.2
Fung, J.3
-
99
-
-
84868107930
-
Pleiotrophin regulates the retention and self-renewal of hematopoietic stem cells in the bone marrow vascular niche
-
Himburg HA, Harris JR, Ito T et al. Pleiotrophin regulates the retention and self-renewal of hematopoietic stem cells in the bone marrow vascular niche. Cell Reports 2012; 2:964-975
-
(2012)
Cell Reports
, vol.2
, pp. 964-975
-
-
Himburg, H.A.1
Harris, J.R.2
Ito, T.3
-
100
-
-
84908636760
-
Pleiotrophin mediates hematopoietic regeneration via activation of RAS
-
Himburg HA, Yan X, Doan PL et al. Pleiotrophin mediates hematopoietic regeneration via activation of RAS. J Clin Invest 2014;124: 4753-4758
-
(2014)
J Clin Invest
, vol.124
, pp. 4753-4758
-
-
Himburg, H.A.1
Yan, X.2
Doan, P.L.3
-
101
-
-
84875228640
-
Epidermal growth factor regulates hematopoietic regeneration after radiation injury
-
Doan PL, Himburg HA, Helms K et al. Epidermal growth factor regulates hematopoietic regeneration after radiation injury. Nat Med 2013;19:295-304
-
(2013)
Nat Med
, vol.19
, pp. 295-304
-
-
Doan, P.L.1
Himburg, H.A.2
Helms, K.3
-
102
-
-
41449089457
-
Canonical notch signaling is dispensable for the maintenance of adult hematopoietic stem cells
-
Maillard I, Koch U, Dumortier A et al. Canonical notch signaling is dispensable for the maintenance of adult hematopoietic stem cells. Cell Stem Cell 2008;2:356-366
-
(2008)
Cell Stem Cell
, vol.2
, pp. 356-366
-
-
Maillard, I.1
Koch, U.2
Dumortier, A.3
-
103
-
-
77955646193
-
Mesenchymal and haematopoietic stem cells form a unique bone marrow niche
-
Méndez-Ferrer S, Michurina TV, Ferraro F et al. Mesenchymal and haematopoietic stem cells form a unique bone marrow niche. Nature 2010;466:829-834
-
(2010)
Nature
, vol.466
, pp. 829-834
-
-
Méndez-Ferrer, S.1
Michurina, T.V.2
Ferraro, F.3
-
104
-
-
84863229757
-
Endogenous bone marrow MSCs are dynamic, faterestricted participants in bone maintenance and regeneration
-
Park D, Spencer JA, Koh BI et al. Endogenous bone marrow MSCs are dynamic, faterestricted participants in bone maintenance and regeneration. Cell Stem Cell 2012;10: 259-272
-
(2012)
Cell Stem Cell
, vol.10
, pp. 259-272
-
-
Park, D.1
Spencer, J.A.2
Koh, B.I.3
-
105
-
-
84900301554
-
Vasculature-associated cells expressing nestin in developing bones encompass early cells in the osteoblast and endothelial lineage
-
Ono N, Ono W, Mizoguchi T et al. Vasculature-associated cells expressing nestin in developing bones encompass early cells in the osteoblast and endothelial lineage. Dev Cell 2014;29:330-339
-
(2014)
Dev Cell
, vol.29
, pp. 330-339
-
-
Ono, N.1
Ono, W.2
Mizoguchi, T.3
-
106
-
-
70449701931
-
Prospective identification, isolation, and systemic transplantation of multipotent mesenchymal stem cells in murine bone marrow
-
Morikawa S, Mabuchi Y, Kubota Y et al. Prospective identification, isolation, and systemic transplantation of multipotent mesenchymal stem cells in murine bone marrow. J Exp Med 2009;206:2483-2496
-
(2009)
J Exp Med
, vol.206
, pp. 2483-2496
-
-
Morikawa, S.1
Mabuchi, Y.2
Kubota, Y.3
-
107
-
-
84880652108
-
PDGFRa and CD51 mark human nestin+ sphere-forming mesenchymal stem cells capable of hematopoietic progenitor cell expansion
-
Pinho S, Lacombe J, Hanoun M et al. PDGFRa and CD51 mark human nestin+ sphere-forming mesenchymal stem cells capable of hematopoietic progenitor cell expansion. J Exp Med 2013;210:1351-1367
-
(2013)
J Exp Med
, vol.210
, pp. 1351-1367
-
-
Pinho, S.1
Lacombe, J.2
Hanoun, M.3
-
108
-
-
84880656055
-
Immune targeting of fibroblast activation protein triggers recognition of multipotent bone marrow stromal cells and cachexia
-
Tran E, Chinnasamy D, Yu Z et al. Immune targeting of fibroblast activation protein triggers recognition of multipotent bone marrow stromal cells and cachexia. J Exp Med 2013;210:1125-1135
-
(2013)
J Exp Med
, vol.210
, pp. 1125-1135
-
-
Tran, E.1
Chinnasamy, D.2
Yu, Z.3
-
109
-
-
84880687861
-
Depletion of stromal cells expressing fibroblast activation protein-a from skeletal muscle and bone marrow results in cachexia and anemia
-
Roberts EW, Deonarine A, Jones JO et al. Depletion of stromal cells expressing fibroblast activation protein-a from skeletal muscle and bone marrow results in cachexia and anemia. J Exp Med 2013;210:1137-1151
-
(2013)
J Exp Med
, vol.210
, pp. 1137-1151
-
-
Roberts, E.W.1
Deonarine, A.2
Jones, J.O.3
-
110
-
-
84949631400
-
Perivascular deletion of murine Rac reverses the ratio of marrow arterioles and sinusoid vessels and alters hematopoiesis in vivo
-
Ciuculescu MF, Park SY, Canty K et al. Perivascular deletion of murine Rac reverses the ratio of marrow arterioles and sinusoid vessels and alters hematopoiesis in vivo. Blood 2015;125:3105-3113
-
(2015)
Blood
, vol.125
, pp. 3105-3113
-
-
Ciuculescu, M.F.1
Park, S.Y.2
Canty, K.3
-
111
-
-
84909608192
-
Inhibiting stromal cell heparan sulfate synthesis improves stem cell mobilization and enables engraftment without cytotoxic conditioning
-
Saez B, Ferraro F, Yusuf RZ et al. Inhibiting stromal cell heparan sulfate synthesis improves stem cell mobilization and enables engraftment without cytotoxic conditioning. Blood 2014;124:2937-2947
-
(2014)
Blood
, vol.124
, pp. 2937-2947
-
-
Saez, B.1
Ferraro, F.2
Yusuf, R.Z.3
-
112
-
-
84920461717
-
Protein tyrosine phosphatase-s regulates hematopoietic stem cell-repopulating capacity
-
Quarmyne M, Doan PL, Himburg HA et al. Protein tyrosine phosphatase-s regulates hematopoietic stem cell-repopulating capacity. J Clin Invest 2015;125:177-182
-
(2015)
J Clin Invest
, vol.125
, pp. 177-182
-
-
Quarmyne, M.1
Doan, P.L.2
Himburg, H.A.3
-
113
-
-
58049203043
-
Wnt-related molecules and signaling pathway equilibrium in hematopoiesis
-
Malhotra S, Kincade PW. Wnt-related molecules and signaling pathway equilibrium in hematopoiesis. Cell Stem Cell 2009;4:27-36
-
(2009)
Cell Stem Cell
, vol.4
, pp. 27-36
-
-
Malhotra, S.1
Kincade, P.W.2
-
114
-
-
80053907201
-
Canonical wnt signaling regulates hematopoiesis in a dosage-dependent fashion
-
Luis TC, Naber BA, Roozen PP et al. Canonical wnt signaling regulates hematopoiesis in a dosage-dependent fashion. Cell Stem Cell 2011;9:345-356
-
(2011)
Cell Stem Cell
, vol.9
, pp. 345-356
-
-
Luis, T.C.1
Naber, B.A.2
Roozen, P.P.3
-
115
-
-
3242669145
-
Tie2/angiopoietin-1 signaling regulates hematopoietic stem cell quiescence in the bone marrow niche
-
Arai F, Hirao A, Ohmura M et al. Tie2/angiopoietin-1 signaling regulates hematopoietic stem cell quiescence in the bone marrow niche. Cell 2004;118:149-161
-
(2004)
Cell
, vol.118
, pp. 149-161
-
-
Arai, F.1
Hirao, A.2
Ohmura, M.3
-
116
-
-
84961292224
-
Hematopoietic stem and progenitor cells regulate the regeneration of their niche by secreting angiopoietin-1
-
Zhou BO, Ding L, Morrison SJ. Hematopoietic stem and progenitor cells regulate the regeneration of their niche by secreting angiopoietin-1. eLife 2015;4:e05521
-
(2015)
Elife
, vol.4
-
-
Zhou, B.O.1
Ding, L.2
Morrison, S.J.3
-
117
-
-
34250331610
-
A microenvironment-induced myeloproliferative syndrome caused by retinoic acid receptor gamma deficiency
-
Walkley CR, Olsen GH, Dworkin S et al. A microenvironment-induced myeloproliferative syndrome caused by retinoic acid receptor gamma deficiency. Cell 2007;129: 1097-1110
-
(2007)
Cell
, vol.129
, pp. 1097-1110
-
-
Walkley, C.R.1
Olsen, G.H.2
Dworkin, S.3
-
118
-
-
77950862042
-
Bone progenitor dysfunction induces myelodysplasia and secondary leukaemia
-
Raaijmakers MH, Mukherjee S, Guo S et al. Bone progenitor dysfunction induces myelodysplasia and secondary leukaemia. Nature 2010;464:852-857
-
(2010)
Nature
, vol.464
, pp. 852-857
-
-
Raaijmakers, M.H.1
Mukherjee, S.2
Guo, S.3
-
119
-
-
84893917461
-
Leukaemogenesis induced by an activating b-catenin mutation in osteoblasts
-
Kode A, Manavalan JS, Mosialou I et al. Leukaemogenesis induced by an activating b-catenin mutation in osteoblasts. Nature 2014;506:240-244
-
(2014)
Nature
, vol.506
, pp. 240-244
-
-
Kode, A.1
Manavalan, J.S.2
Mosialou, I.3
-
120
-
-
84951569690
-
Coordinate regulation of residual bone marrow function by paracrine trafficking of AML exosomes
-
Huan J, Hornick NI, Goloviznina NA et al. Coordinate regulation of residual bone marrow function by paracrine trafficking of AML exosomes. Leukemia 2015;29:2285-2295
-
(2015)
Leukemia
, vol.29
, pp. 2285-2295
-
-
Huan, J.1
Hornick, N.I.2
Goloviznina, N.A.3
-
121
-
-
84872534918
-
RNA trafficking by acute myelogenous leukemia exosomes
-
Huan J, Hornick NI, Shurtleff MJ et al. RNA trafficking by acute myelogenous leukemia exosomes. Cancer Res 2013;73:918-929
-
(2013)
Cancer Res
, vol.73
, pp. 918-929
-
-
Huan, J.1
Hornick, N.I.2
Shurtleff, M.J.3
-
122
-
-
54349084535
-
Pulmonary extramedullary hematopoiesis in patients with myelofibrosis undergoing allogeneic stem cell transplantation
-
Chunduri S, Gaitonde S, Ciurea SO et al. Pulmonary extramedullary hematopoiesis in patients with myelofibrosis undergoing allogeneic stem cell transplantation. Haematologica 2008;93:1593-1595
-
(2008)
Haematologica
, vol.93
, pp. 1593-1595
-
-
Chunduri, S.1
Gaitonde, S.2
Ciurea, S.O.3
-
123
-
-
0141705389
-
Nonhepatosplenic extramedullary hematopoiesis: Associated diseases, pathology, clinical course, and treatment
-
Koch CA, Li CY, Mesa RA et al. Nonhepatosplenic extramedullary hematopoiesis: Associated diseases, pathology, clinical course, and treatment. Mayo Clin Proc 2003; 78:1223-1233
-
(2003)
Mayo Clin Proc
, vol.78
, pp. 1223-1233
-
-
Koch, C.A.1
Li, C.Y.2
Mesa, R.A.3
-
124
-
-
84864647787
-
Stromal-derived factor-1 and its receptor, CXCR4, are constitutively expressed by mouseliver sinusoidal endothelial cells: Implications for the regulation of hematopoietic cell migration to the liver during extramedullary hematopoiesis
-
Mendt M, Cardier JE. Stromal-derived factor-1 and its receptor, CXCR4, are constitutively expressed by mouseliver sinusoidal endothelial cells: Implications for the regulation of hematopoietic cell migration to the liver during extramedullary hematopoiesis. Stem Cells Dev 2012;21:2142-2151
-
(2012)
Stem Cells Dev
, vol.21
, pp. 2142-2151
-
-
Mendt, M.1
Cardier, J.E.2
-
125
-
-
77949606079
-
Liver sinusoidal endothelial cells promote B lymphopoiesis from primitive hematopoietic cells
-
Wittig O, Paez-Cortez J, Cardier JE. Liver sinusoidal endothelial cells promote B lymphopoiesis from primitive hematopoietic cells. Stem Cells Dev 2010;19:341-350
-
(2010)
Stem Cells Dev
, vol.19
, pp. 341-350
-
-
Wittig, O.1
Paez-Cortez, J.2
Cardier, J.E.3
-
126
-
-
78149285919
-
Inductive angiocrine signals from sinusoidal endothelium are required for liver regeneration
-
Ding BS, Nolan DJ, Butler J M et al. Inductive angiocrine signals from sinusoidal endothelium are required for liver regeneration. Nature 2010;468:310-315
-
(2010)
Nature
, vol.468
, pp. 310-315
-
-
Ding, B.S.1
Nolan, D.J.2
Butler, J.M.3
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