Regulation of Hematopoiesis and Osteogenesis by Blood Vessel-Derived Signals.
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[1] C. Rosen,et al. Bone marrow adipocytes , 2017, Adipocyte.
[2] M. Ewalt,et al. Selective quantitation of microvessel density reveals sinusoidal expansion in myelodysplastic syndromes , 2016, Leukemia & lymphoma.
[3] Charles P. Lin,et al. Distinct bone marrow blood vessels differentially regulate hematopoiesis , 2016, Nature.
[4] C. Betsholtz,et al. Age-dependent modulation of vascular niches for haematopoietic stem cells , 2016, Nature.
[5] B. Fanburg,et al. Alpha‐Catulin Co‐Localizes With Vimentin Intermediate Filaments and Functions in Pulmonary Vascular Endothelial Cell Migration via ROCK , 2016, Journal of cellular physiology.
[6] S. Watt,et al. Junctional Adhesion Molecule‐A Is Highly Expressed on Human Hematopoietic Repopulating Cells and Associates with the Key Hematopoietic Chemokine Receptor CXCR4 , 2016, Stem Cells.
[7] S. Rafii,et al. Angiocrine functions of organ-specific endothelial cells , 2016, Nature.
[8] Irving L. Weissman,et al. Hoxb5 marks long-term haematopoietic stem cells revealing a homogenous perivascular niche , 2016, Nature.
[9] I. Amit,et al. Transcriptional Heterogeneity and Lineage Commitment in Myeloid Progenitors , 2015, Cell.
[10] D. Scadden,et al. Not All Created Equal: Lineage Hard-Wiring in the Production of Blood , 2015, Cell.
[11] F. Sotgia,et al. Metastasis and Oxidative Stress: Are Antioxidants a Metabolic Driver of Progression? , 2015, Cell metabolism.
[12] C. Esmon,et al. PAR1 signaling regulates the retention and recruitment of EPCR-expressing bone marrow hematopoietic stem cells , 2015, Nature Medicine.
[13] P. Carmeliet,et al. Angiogenesis Revisited: An Overlooked Role of Endothelial Cell Metabolism in Vessel Sprouting , 2015, Microcirculation.
[14] R. Deberardinis,et al. Oxidative stress inhibits distant metastasis by human melanoma cells , 2015, Nature.
[15] Zhiyu Zhao,et al. Deep imaging of bone marrow shows non-dividing stem cells are mainly perisinusoidal , 2015, Nature.
[16] W. Schaper,et al. Nitric Oxide Increases Arterial Endotheial Permeability through Mediating VE-Cadherin Expression during Arteriogenesis , 2015, PloS one.
[17] R. Nusse,et al. Self-renewing diploid Axin2+ cells fuel homeostatic renewal of the liver , 2015, Nature.
[18] W. Alexander,et al. Brief Report: Factors Released by Megakaryocytes Thrombin Cleave Osteopontin to Negatively Regulate Hematopoietic Stem Cells , 2015, Stem cells.
[19] Fabian J. Theis,et al. Combined Single-Cell Functional and Gene Expression Analysis Resolves Heterogeneity within Stem Cell Populations , 2015, Cell stem cell.
[20] S. Morrison,et al. Hematopoietic stem and progenitor cells regulate the regeneration of their niche by secreting Angiopoietin-1 , 2015, eLife.
[21] W. Grayson. Faculty Opinions recommendation of PDGF-BB secreted by preosteoclasts induces angiogenesis during coupling with osteogenesis. , 2015 .
[22] R. Adams,et al. Regulation of tissue morphogenesis by endothelial cell-derived signals. , 2015, Trends in cell biology.
[23] E. Forsberg,et al. ROBO4-Mediated Vascular Integrity Regulates the Directionality of Hematopoietic Stem Cell Trafficking , 2015, Stem cell reports.
[24] Jocelyn T. Compton,et al. Gremlin 1 Identifies a Skeletal Stem Cell with Bone, Cartilage, and Reticular Stromal Potential , 2015, Cell.
[25] T. Suda,et al. Megakaryocytes are essential for HSC quiescence through the production of thrombopoietin. , 2014, Biochemical and biophysical research communications.
[26] P. Carmeliet,et al. Fibroblast growth factor signaling affects vascular outgrowth and is required for the maintenance of blood vessel integrity. , 2014, Chemistry & biology.
[27] H. Kronenberg,et al. A Subset of Chondrogenic Cells Provides Early Mesenchymal Progenitors in Growing Bones , 2014, Nature Cell Biology.
[28] Xi C. He,et al. Megakaryocytes maintain homeostatic quiescence and promote post-injury regeneration of hematopoietic stem cells , 2014, Nature Medicine.
[29] K. Kaufmann,et al. Reactive oxygen species regulate hematopoietic stem cell self-renewal, migration and development, as well as their bone marrow microenvironment. , 2014, Antioxidants & redox signaling.
[30] Koji Kobayashi,et al. Stromal Cell–Derived Factor-1&agr;/C-X-C Chemokine Receptor Type 4 Axis Promotes Endothelial Cell Barrier Integrity via Phosphoinositide 3-Kinase and Rac1 Activation , 2014, Arteriosclerosis, thrombosis, and vascular biology.
[31] R. Andriantsitohaina,et al. Recent Insights in the Paracrine Modulation of Cardiomyocyte Contractility by Cardiac Endothelial Cells , 2014, BioMed research international.
[32] R. Adams,et al. Coupling of angiogenesis and osteogenesis by a specific vessel subtype in bone , 2014, Nature.
[33] R. Adams,et al. Endothelial Notch activity promotes angiogenesis and osteogenesis in bone , 2014, Nature.
[34] Sergei A. Vinogradov,et al. Direct measurement of local oxygen concentration in the bone marrow of live animals , 2014, Nature.
[35] Susanne Bartels,et al. Endothelial Cell-Derived Angiopoietin-2 Controls Liver Regeneration as a Spatiotemporal Rheostat , 2014, Science.
[36] S. Morrison,et al. The bone marrow niche for haematopoietic stem cells , 2014, Nature.
[37] Michael Simons,et al. Divergent angiocrine signals from vascular niche balance liver regeneration and fibrosis , 2013, Nature.
[38] A. Bergman,et al. Arteriolar niches maintain haematopoietic stem cell quiescence , 2013, Nature.
[39] Yihai Cao. Angiogenesis and vascular functions in modulation of obesity, adipose metabolism, and insulin sensitivity. , 2013, Cell metabolism.
[40] C. Di Cresce,et al. Regional localization within the bone marrow influences the functional capacity of human HSCs. , 2013, Cell stem cell.
[41] P. Carmeliet,et al. Role of PFKFB3-Driven Glycolysis in Vessel Sprouting , 2013, Cell.
[42] Olivier Elemento,et al. Molecular signatures of tissue-specific microvascular endothelial cell heterogeneity in organ maintenance and regeneration. , 2013, Developmental cell.
[43] S. Forbes,et al. Liver Regeneration and Fibrosis , 2013 .
[44] K. Kaufmann,et al. Fibroblast growth factor signaling promotes physiological bone remodeling and stem cell self-renewal , 2013, Current opinion in hematology.
[45] D. Huylebroeck,et al. Robustness in angiogenesis: notch and BMP shaping waves. , 2013, Trends in genetics : TIG.
[46] M. Suematsu,et al. Regulation of glycolysis by Pdk functions as a metabolic checkpoint for cell cycle quiescence in hematopoietic stem cells. , 2013, Cell stem cell.
[47] A. Mildner,et al. Monocytes-macrophages that express α-smooth muscle actin preserve primitive hematopoietic cells in the bone marrow , 2012, Nature Immunology.
[48] R. Baron,et al. Intracellular VEGF regulates the balance between osteoblast and adipocyte differentiation. , 2012, The Journal of clinical investigation.
[49] Xi C. He,et al. FGF signaling facilitates postinjury recovery of mouse hematopoietic system. , 2012, Blood.
[50] G. Enikolopov,et al. FGF-2 expands murine hematopoietic stem and progenitor cells via proliferation of stromal cells, c-Kit activation, and CXCL12 down-regulation. , 2012, Blood.
[51] Xi C. He,et al. Noncanonical Wnt Signaling Maintains Hematopoietic Stem Cells in the Niche , 2012, Cell.
[52] José A Fernández,et al. Pharmacological targeting of the thrombomodulin–protein C pathway mitigates radiation toxicity , 2012, Nature Medicine.
[53] M. Ratajczak,et al. S1P promotes murine progenitor cell egress and mobilization via S1P1-mediated ROS signaling and SDF-1 release. , 2012, Blood.
[54] C. Ge,et al. Physical and functional interactions between Runx2 and HIF‐1α induce vascular endothelial growth factor gene expression , 2011, Journal of cellular biochemistry.
[55] K. Hankenson,et al. Integration of BMP, Wnt, and notch signaling pathways in osteoblast differentiation , 2011, Journal of cellular biochemistry.
[56] A. Iwama,et al. Nonmyelinating Schwann Cells Maintain Hematopoietic Stem Cell Hibernation in the Bone Marrow Niche , 2011, Cell.
[57] F. Peyrin,et al. Intermittent PTH(1–84) is osteoanabolic but not osteoangiogenic and relocates bone marrow blood vessels closer to bone‐forming sites , 2011, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[58] J. O’Donnell,et al. The endothelial cell protein C receptor: cell surface conductor of cytoprotective coagulation factor signaling , 2011, Cellular and Molecular Life Sciences.
[59] Holger Gerhardt,et al. Basic and Therapeutic Aspects of Angiogenesis , 2011, Cell.
[60] E. Buss,et al. Rapid mobilization of hematopoietic progenitors by AMD3100 and catecholamines is mediated by CXCR4-dependent SDF-1 release from bone marrow stromal cells , 2011, Leukemia.
[61] K. Manova,et al. Deletion of Adam10 in endothelial cells leads to defects in organ-specific vascular structures. , 2011, Blood.
[62] E. Laurenti,et al. Enhanced c-Met activity promotes G-CSF-induced mobilization of hematopoietic progenitor cells via ROS signaling. , 2011, Blood.
[63] J. Ciriza,et al. Robo4 cooperates with CXCR4 to specify hematopoietic stem cell localization to bone marrow niches. , 2011, Cell stem cell.
[64] B. Williams,et al. Phenotypically identical hemopoietic stem cells isolated from different regions of bone marrow have different biologic potential. , 2010, Blood.
[65] C. Clarkin,et al. On bone-forming cells and blood vessels in bone development. , 2010, Cell metabolism.
[66] Geert Carmeliet,et al. Osteoblast precursors, but not mature osteoblasts, move into developing and fractured bones along with invading blood vessels. , 2010, Developmental cell.
[67] Samit R. Joshi,et al. Aging of the innate immune system. , 2010, Current opinion in immunology.
[68] T. Suda,et al. Endothelial protein C receptor-expressing hematopoietic stem cells reside in the perisinusoidal niche in fetal liver. , 2010, Blood.
[69] Shahin Rafii,et al. Instructive role of the vascular niche in promoting tumour growth and tissue repair by angiocrine factors , 2010, Nature Reviews Cancer.
[70] M. Bornhäuser,et al. Notch signaling enhances osteogenic differentiation while inhibiting adipogenesis in primary human bone marrow stromal cells. , 2009, Experimental hematology.
[71] Allen D. Delaney,et al. Prospective isolation and molecular characterization of hematopoietic stem cells with durable self-renewal potential. , 2009, Blood.
[72] Marcus Fruttiger,et al. The Notch Ligands Dll4 and Jagged1 Have Opposing Effects on Angiogenesis , 2009, Cell.
[73] James M. Harris,et al. Hematopoietic Stem Cell Development Is Dependent on Blood Flow , 2009, Cell.
[74] G. Daley,et al. Bone marrow adipocytes as negative regulators of the hematopoietic microenvironment , 2009, Nature.
[75] Zev Rosenwaks,et al. Engraftment and reconstitution of hematopoiesis is dependent on VEGFR2-mediated regeneration of sinusoidal endothelial cells. , 2009, Cell stem cell.
[76] Aaron Schindeler,et al. Bone remodeling during fracture repair: The cellular picture. , 2008, Seminars in cell & developmental biology.
[77] P. Carmeliet,et al. The FGF system has a key role in regulating vascular integrity. , 2008, The Journal of clinical investigation.
[78] J. García-Verdugo,et al. A specialized vascular niche for adult neural stem cells. , 2008, Cell stem cell.
[79] B. Roysam,et al. Adult SVZ stem cells lie in a vascular niche: a quantitative analysis of niche cell-cell interactions. , 2008, Cell stem cell.
[80] Daniel Lucas,et al. Haematopoietic stem cell release is regulated by circadian oscillations , 2008, Nature.
[81] Brendan H. Lee,et al. Dimorphic effects of Notch signaling in bone homeostasis , 2008, Nature Medicine.
[82] G. Enikolopov,et al. Neuronal Nitric Oxide Synthase Contributes to the Regulation of Hematopoiesis , 2008, Molecular medicine.
[83] Tatsuya Kobayashi,et al. Notch signaling maintains bone marrow mesenchymal progenitors by suppressing osteoblast differentiation , 2008, Nature Medicine.
[84] B. Zlokovic. The Blood-Brain Barrier in Health and Chronic Neurodegenerative Disorders , 2008, Neuron.
[85] K. Oishi,et al. Thrombomodulin Is a Clock-controlled Gene in Vascular Endothelial Cells* , 2007, Journal of Biological Chemistry.
[86] T. Bauer,et al. Bone graft substitutes , 2007, Skeletal Radiology.
[87] Y. Nabeshima,et al. A Vasculature-Associated Niche for Undifferentiated Spermatogonia in the Mouse Testis , 2007, Science.
[88] Joseph E Italiano,et al. Dynamic Visualization of Thrombopoiesis Within Bone Marrow , 2007, Science.
[89] Andrea Giustina,et al. Mechanisms of anabolic therapies for osteoporosis. , 2007, The New England journal of medicine.
[90] Tatsuji Nishihara,et al. Mechanical stress‐mediated Runx2 activation is dependent on Ras/ERK1/2 MAPK signaling in osteoblasts , 2007, Journal of cellular biochemistry.
[91] H. Nakauchi,et al. Foxo3a is essential for maintenance of the hematopoietic stem cell pool. , 2007, Cell stem cell.
[92] Chao Wan,et al. The hypoxia-inducible factor alpha pathway couples angiogenesis to osteogenesis during skeletal development. , 2007, The Journal of clinical investigation.
[93] K. Alitalo,et al. Molecular regulation of angiogenesis and lymphangiogenesis , 2007, Nature Reviews Molecular Cell Biology.
[94] Y. Oiso,et al. Metformin prevents methylglyoxal-induced apoptosis of mouse Schwann cells. , 2007, Biochemical and biophysical research communications.
[95] B. Williams,et al. Hemopoietic Stem Cells with Higher Hemopoietic Potential Reside at the Bone Marrow Endosteum , 2007, Stem cells.
[96] G. Bassez,et al. Muscle satellite cells and endothelial cells: close neighbors and privileged partners. , 2007, Molecular biology of the cell.
[97] Holger Gerhardt,et al. Dll4 signalling through Notch1 regulates formation of tip cells during angiogenesis , 2007, Nature.
[98] Nathan D. Lawson,et al. Notch signalling limits angiogenic cell behaviour in developing zebrafish arteries , 2007, Nature.
[99] Minhong Yan,et al. Inhibition of Dll4 signalling inhibits tumour growth by deregulating angiogenesis , 2006, Nature.
[100] T. Arnett,et al. Hypoxia inhibits the growth, differentiation and bone-forming capacity of rat osteoblasts. , 2006, Experimental cell research.
[101] Keisuke Ito,et al. Reactive oxygen species act through p38 MAPK to limit the lifespan of hematopoietic stem cells , 2006, Nature Medicine.
[102] C. Esmon,et al. Endothelial protein C receptor (CD201) explicitly identifies hematopoietic stem cells in murine bone marrow. , 2006, Blood.
[103] D. Melton,et al. The vascular basement membrane: a niche for insulin gene expression and Beta cell proliferation. , 2006, Developmental cell.
[104] B. Williams,et al. Osteopontin, a key component of the hematopoietic stem cell niche and regulator of primitive hematopoietic progenitor cells. , 2005, Blood.
[105] Holger Weber,et al. Vascular endothelial growth factor (VEGF‐A) expression in human mesenchymal stem cells: Autocrine and paracrine role on osteoblastic and endothelial differentiation , 2005, Journal of cellular biochemistry.
[106] I. Weissman,et al. Cell intrinsic alterations underlie hematopoietic stem cell aging. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[107] Christie M. Orschell,et al. Rapid mobilization of murine and human hematopoietic stem and progenitor cells with AMD3100, a CXCR4 antagonist , 2005, The Journal of experimental medicine.
[108] Tak W. Mak,et al. Regulation of oxidative stress by ATM is required for self-renewal of haematopoietic stem cells , 2004, Nature.
[109] M. Šuša,et al. Coordinated activation of notch, Wnt, and transforming growth factor-beta signaling pathways in bone morphogenic protein 2-induced osteogenesis. Notch target gene Hey1 inhibits mineralization and Runx2 transcriptional activity. , 2004, The Journal of biological chemistry.
[110] G. Enikolopov,et al. Nitric oxide is a regulator of hematopoietic stem cell activity. , 2004, Molecular therapy : the journal of the American Society of Gene Therapy.
[111] Keisuke Ito,et al. Tie2/Angiopoietin-1 Signaling Regulates Hematopoietic Stem Cell Quiescence in the Bone Marrow Niche , 2004, Cell.
[112] I. Torres-Aleman,et al. Insulin-like growth factor I is required for vessel remodeling in the adult brain. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[113] Sally Temple,et al. Endothelial Cells Stimulate Self-Renewal and Expand Neurogenesis of Neural Stem Cells , 2004, Science.
[114] C. Colnot,et al. Distinguishing the contributions of the perichondrium, cartilage, and vascular endothelium to skeletal development. , 2004, Developmental biology.
[115] Ching‐Jen Wang,et al. Ras Induction of Superoxide Activates ERK-dependent Angiogenic Transcription Factor HIF-1α and VEGF-A Expression in Shock Wave-stimulated Osteoblasts* , 2004, Journal of Biological Chemistry.
[116] Kwan Tat Steeve,et al. IL-6, RANKL, TNF-alpha/IL-1: interrelations in bone resorption pathophysiology. , 2004 .
[117] Geert Carmeliet,et al. Soluble VEGF isoforms are essential for establishing epiphyseal vascularization and regulating chondrocyte development and survival. , 2004, The Journal of clinical investigation.
[118] R. Carano,et al. Angiogenesis and bone repair. , 2003, Drug discovery today.
[119] Haiyang Huang,et al. Identification of the haematopoietic stem cell niche and control of the niche size , 2003, Nature.
[120] D. Scadden,et al. Osteoblastic cells regulate the haematopoietic stem cell niche , 2003, Nature.
[121] G. Semenza. Targeting HIF-1 for cancer therapy , 2003, Nature Reviews Cancer.
[122] Peter Carmeliet,et al. Blood vessels and nerves: common signals, pathways and diseases , 2003, Nature Reviews Genetics.
[123] C. Esmon. The protein C pathway. , 2003, Critical care medicine.
[124] J. Abkowitz,et al. Mobilization of hematopoietic stem cells during homeostasis and after cytokine exposure. , 2003, Blood.
[125] José A Fernández,et al. Platelet factor 4 enhances generation of activated protein C in vitro and in vivo. , 2003, Blood.
[126] Bjorn R. Olsen,et al. The genetic basis for skeletal diseases , 2003, Nature.
[127] H. Kronenberg,et al. Developmental regulation of the growth plate , 2003, Nature.
[128] O. Kozawa,et al. Involvement of SAPK/JNK in basic fibroblast growth factor-induced vascular endothelial growth factor release in osteoblasts. , 2003, The Journal of endocrinology.
[129] Thomas A Einhorn,et al. Fracture healing as a post‐natal developmental process: Molecular, spatial, and temporal aspects of its regulation , 2003, Journal of cellular biochemistry.
[130] P. Collin‐Osdoby,et al. Basic Fibroblast Growth Factor Stimulates Osteoclast Recruitment, Development, and Bone Pit Resorption in Association With Angiogenesis In Vivo on the Chick Chorioallantoic Membrane and Activates Isolated Avian Osteoclast Resorption In Vitro , 2002, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[131] D. Leroith,et al. Circulating levels of IGF-1 directly regulate bone growth and density. , 2002, The Journal of clinical investigation.
[132] Johnny Huard,et al. Synergistic enhancement of bone formation and healing by stem cell-expressed VEGF and bone morphogenetic protein-4. , 2002, The Journal of clinical investigation.
[133] P. Hellings,et al. The Lectin-like Domain of Thrombomodulin Confers Protection from Neutrophil-mediated Tissue Damage by Suppressing Adhesion Molecule Expression via Nuclear Factor κB and Mitogen-activated Protein Kinase Pathways , 2002, The Journal of experimental medicine.
[134] H. Redmond,et al. Vascular endothelial growth factor stimulates bone repair by promoting angiogenesis and bone turnover , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[135] B. Park,et al. Hypoxia decreases Runx2/Cbfa1 expression in human osteoblast-like cells , 2002, Molecular and Cellular Endocrinology.
[136] Jay R Lieberman,et al. The role of growth factors in the repair of bone. Biology and clinical applications. , 2002, The Journal of bone and joint surgery. American volume.
[137] S. Papapoulos,et al. Bone Morphogenetic Proteins Stimulate Angiogenesis through Osteoblast-Derived Vascular Endothelial Growth Factor A. , 2002, Endocrinology.
[138] M. Czyzyk-Krzeska,et al. Induction of Vascular Endothelial Growth Factor by IGF-I in Osteoblast-Like Cells Is Mediated by the PI3K Signaling Pathway through the Hypoxia-Inducible Factor-2α. , 2002, Endocrinology.
[139] M. Schaffler,et al. Prevention of fracture healing in rats by an inhibitor of angiogenesis. , 2001, Bone.
[140] Irving L. Weissman,et al. Physiological Migration of Hematopoietic Stem and Progenitor Cells , 2001, Science.
[141] T Kobayashi,et al. Hypoxia in cartilage: HIF-1alpha is essential for chondrocyte growth arrest and survival. , 2001, Genes & development.
[142] Ondine Cleaver,et al. Induction of Pancreatic Differentiation by Signals from Blood Vessels , 2001, Science.
[143] J. Rossant,et al. Liver Organogenesis Promoted by Endothelial Cells Prior to Vascular Function , 2001, Science.
[144] C. Hartmann,et al. Tissue specific regulation of VEGF expression during bone development requires Cbfa1/Runx2 , 2001, Mechanisms of Development.
[145] O. Kozawa,et al. Involvement of p70 S6 kinase in bone morphogenetic protein signaling: Vascular endothelial growth factor synthesis by bone morphogenetic protein‐4 in osteoblasts , 2001, Journal of cellular biochemistry.
[146] Michael I. Wilson,et al. Targeting of HIF-α to the von Hippel-Lindau Ubiquitylation Complex by O2-Regulated Prolyl Hydroxylation , 2001, Science.
[147] P. Carmeliet,et al. Impaired angiogenesis and endochondral bone formation in mice lacking the vascular endothelial growth factor isoforms VEGF164 and VEGF188 , 2000, Mechanisms of Development.
[148] H. Redmond,et al. Is human fracture hematoma inherently angiogenic , 2000 .
[149] M. Longaker,et al. VEGF expression in an osteoblast-like cell line is regulated by a hypoxia response mechanism. , 2000, American journal of physiology. Cell physiology.
[150] H. Redmond,et al. Is Human Fracture Hematoma Inherently Angiogenic? , 2000, Clinical orthopaedics and related research.
[151] S. Bennett,et al. Pleiotropic effects of growth hormone and insulin-like growth factor (IGF)-1 on biological aging: inferences from moderate caloric-restricted animals. , 1999, The journals of gerontology. Series A, Biological sciences and medical sciences.
[152] T A Einhorn,et al. Growth Factor Regulation of Fracture Repair , 1999, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[153] C. Esmon,et al. Endothelial Protein C Receptor , 1999, Thrombosis and Haemostasis.
[154] Napoleone Ferrara,et al. VEGF couples hypertrophic cartilage remodeling, ossification and angiogenesis during endochondral bone formation , 1999, Nature Medicine.
[155] M. Klagsbrun,et al. Cartilage to bone—Angiogenesis leads the way , 1999, Nature Medicine.
[156] S. Artavanis-Tsakonas,et al. Notch signaling: cell fate control and signal integration in development. , 1999, Science.
[157] K. Yamauchi,et al. IGF-1 regulates migration and angiogenesis of human endothelial cells. , 1999, Endocrine journal.
[158] Y. Kato,et al. Local Application of Basic Fibroblast Growth Factor Minipellet Induces the Healing of Segmental Bony Defects in Rabbits , 1998, Calcified Tissue International.
[159] Kozo Nakamura,et al. Single local injection of recombinant fibroblast growth factor‐2 stimulates healing of segmental bone defects in rabbits , 1998, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[160] J. Glowacki. Angiogenesis in fracture repair. , 1998, Clinical orthopaedics and related research.
[161] A. McMahon,et al. Noggin, cartilage morphogenesis, and joint formation in the mammalian skeleton. , 1998, Science.
[162] G. Mundy,et al. Estrogen promotes apoptosis of murine osteoclasts mediated by TGF–β , 1996, Nature Medicine.
[163] I. Weissman,et al. The aging of hematopoietic stem cells , 1996, Nature Medicine.
[164] C. Koch,et al. Adaptation of chondrocytes to low oxygen tension: Relationship between hypoxia and cellular metabolism , 1996, Journal of cellular physiology.
[165] M. Shibuya,et al. Increase of vascular endothelial growth factor mRNA expression by 1,25‐dihydroxyvitamin D3 in human osteoblast‐like cells , 1996, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[166] R. Derynck,et al. Toward a molecular understanding of skeletal development , 1995, Cell.
[167] C. Esmon,et al. Identification, cloning, and regulation of a novel endothelial cell protein C/activated protein C receptor. , 1994, The Journal of biological chemistry.
[168] S. Rodan,et al. Induction of vascular endothelial growth factor expression by prostaglandin E2 and E1 in osteoblasts. , 1994, The Journal of clinical investigation.
[169] V. Midy,et al. Vasculotropin/vascular endothelial growth factor induces differentiation in cultured osteoblasts. , 1994, Biochemical and biophysical research communications.
[170] D. Gospodarowicz,et al. Regulation of bovine bone cell proliferation by fibroblast growth factor and transforming growth factor beta. , 1988, Endocrinology.
[171] M. Lichtman. The ultrastructure of the hemopoietic environment of the marrow: a review. , 1981, Experimental hematology.
[172] M. Tavassoli. THE MARROW‐BLOOD BARRIER , 1979, British journal of haematology.
[173] C. Gahmberg,et al. Expression of the major sialoglycoprotein (glycophorin) on erythroid cells in human bone marrow , 1978 .
[174] J. Dequeker. Bone and ageing. , 1975, Annals of the rheumatic diseases.
[175] M. Brookes. The vascular architecture of tubular bone in the rat , 1958, The Anatomical record.
[176] D. Ornitz,et al. Development of the endochondral skeleton. , 2013, Cold Spring Harbor perspectives in biology.
[177] R. Alon,et al. Pathways implicated in stem cell migration: the SDF-1/CXCR4 axis. , 2011, Methods in molecular biology.
[178] A. Iwama,et al. TGF-β as a candidate bone marrow niche signal to induce hematopoietic stem cell hibernation. Commentary , 2009 .
[179] Winfried Wiegraebe,et al. Detection of functional haematopoietic stem cell niche using real-time imaging , 2009, Nature.
[180] David W. Rowe,et al. Live-animal tracking of individual haematopoietic stem/progenitor cells in their niche , 2009, Nature.
[181] S. Kwan Tat,et al. IL-6, RANKL, TNF-alpha/IL-1: interrelations in bone resorption pathophysiology. , 2004, Cytokine & growth factor reviews.
[182] B. Grubeck‐Loebenstein,et al. The aging of the immune system. , 2002, Advances in immunology.
[183] M. Fukuda,et al. Expression of various growth factors for cell proliferation and cytodifferentiation during fracture repair of bone. , 2000, European journal of histochemistry : EJH.
[184] M. Karperien,et al. Expression of vascular endothelial growth factors and their receptors during osteoblast differentiation. , 2000, Endocrinology.
[185] M. Longaker,et al. Hypoxia regulates VEGF expression and cellular proliferation by osteoblasts in vitro. , 1999, Plastic and reconstructive surgery.
[186] H. Broxmeyer,et al. Increased osteoclast development after estrogen loss: mediation by interleukin-6. , 1992, Science.
[187] M. Tavassoli. Modulation of megakaryocyte emperipolesis by phlebotomy: megakaryocytes as a component of marrow-blood barrier. , 1986, Blood cells.
[188] José A Fernández,et al. Pharmacological targeting of the thrombomodulin – activated protein C pathway mitigates radiation toxicity , 2022 .