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82  Part II:  The Organization of the Lymphohematopoietic Tissues  Chapter 5:  Structure of the Marrow and the Hematopoietic Microenvironment  83




                    483. Malavasi  F, Deaglio S, Funaro  A, et al: Evolution  and  function of the  ADP ribosyl     518. Umemoto  T, Yamato  M,  Ishihara  J,  et  al:  Integrin-αvβ3  regulates  thrombopoietin-
                     cyclase/CD38 gene family in physiology and pathology. Physiol Rev 88:841, 2008.  mediated maintenance of hematopoietic stem cells. Blood 119:83, 2012.
                    484. Turel KR, Rao SG: Expression of the cell adhesion molecule E-cadherin by the human     519. Qian H, Buza-Vidas N, Hyland CD, et al: Critical role of thrombopoietin in maintain-
                     bone marrow stromal cells and its probable role in CD34(+) stem cell adhesion. Cell   ing adult quiescent hematopoietic stem cells. Cell Stem Cell 1:671, 2007.
                     Biol Int 22:641, 1998.                               520. Yoshihara  H,  Arai F,  Hosokawa  K,  et  al:  Thrombopoietin/MPL  signaling  regulates
                    485. Butler JM, Nolan DJ, Vertes EL, et al: Endothelial Cells Are Essential for the Self-   hematopoietic stem cell quiescence and interaction with the osteoblastic niche. Cell
                     Renewal and Repopulation of Notch-Dependent Hematopoietic Stem Cells. Cell Stem   Stem Cell 1:685, 2007.
                     Cell 6:251, 2010.                                    521. van Eeden SF, Miyagashima R, Haley L, Hogg JC: Possible role for L-selectin in the
                    486. Kiel MJ, Acar M, Radice GL, Morrison SJ: Hematopoietic stem cells do not depend on   release of polymorphonuclear leukocytes from bone marrow. Am J Physiol 272:H1717,
                     N-cadherin to regulate their maintenance. Cell Stem Cell 4:170, 2009.  1997.
                    487. Springer TA: Traffic signals for lymphocyte recirculation and leukocyte emigration: The     522. Le Marer N, Skacel PO: Up-regulation of alpha2,6 sialylation during myeloid matu-
                     multistep paradigm. Cell 76:301, 1994.                ration: A potential role in myeloid cell release from the bone marrow. J Cell Physiol
                    488. Butcher EC, Williams M, Youngman K, et al: Lymphocyte trafficking and regional   179:315, 1999.
                     immunity. Adv Immunol 72:209, 1999.                  523. Jagels MA, Chambers JD, Arfors KE, Hugli TE: C5a- and tumor necrosis factor-
                    489. Girard J-P, Moussion C, Forster R: HEVs, lymphatics and homeostatic immune cell   alpha-induced leukocytosis occurs independently of beta 2 integrins and L-selectin:
                     trafficking in lymph nodes. Nat Rev Immunol 12:762, 2012.  Differential effects on neutrophil adhesion molecule expression in vivo. Blood 85:2900,
                    490. Zarbock A, Ley K: Neutrophil adhesion and activation under flow. Microcirculation   1995.
                     16:31, 2009.                                         524. Stroncek DF, Jaszcz W, Herr GP, et al: Expression of neutrophil antigens after 10 days of
                    491. Pals ST, de Gorter DJJ, Spaargaren M: Lymphoma dissemination: The other face of lym-  granulocyte-colony-stimulating factor. Transfusion 38:663, 1998.
                     phocyte homing. Blood 110:3102, 2007.                525. Jung U, Ley K: Mice lacking two or all three selectins demonstrate overlapping and
                    492. Petri B, Bixel MG: Molecular events during leukocyte diapedesis. FEBS J 273:4399,   distinct functions for each selectin. J Immunol 162:6755, 1999.
                     2006.                                                526. Radley JM, Haller CJ: Fate of senescent megakaryocytes in the bone marrow. Br J Hae-
                    493. Garrido-Urbani S, Bradfield PF, Lee BPL, Imhof BA: Vascular and epithelial junctions:   matol 53:277, 1983.
                     A barrier for leucocyte migration. Biochem Soc Trans 36:203, 2008.    527. Efrati P, Rozenszajn L: The morphology of buffy coats in normal human adults. Blood
                    494. Hordijk PL: Endothelial signalling events during leukocyte transmigration.  FEBS J   16: 1012, 1960.
                     273:4408, 2006.                                      528. Ulich TR, del Castillo J, Souza L: Kinetics and mechanisms of recombinant human
                    495. Pease JE, Williams TJ: The attraction of chemokines as a target for specific anti-inflam-  granulocyte-colony stimulating factor-induced neutrophilia.  Am J Pathol 133:630,
                     matory therapy. Br J Pharmacol 147(Suppl 1):S212, 2006.  1988.
                    496. Watt SM, Forde SP: The central role of the chemokine receptor, CXCR4, in haemopoi-    529. Yong KL: Granulocyte colony-stimulating factor (G-CSF) increases neutrophil migra-
                     etic stem cell transplantation: Will CXCR4 antagonists contribute to the treatment of   tion across vascular endothelium independent of an effect on adhesion: Comparison
                     blood disorders? Vox Sang 94:18, 2008.                with granulocyte-macrophage colony-stimulating factor (GM-CSF).  Br J Haematol
                    497. Bruserud Ø, Kittang AO: The chemokine system in experimental and clinical hematol-  94:40, 1996.
                     ogy. Curr Top Microbiol Immunol 341:3, 2010.         530. DiPersio JF, Abboud CN: Activation of neutrophils by granulocyte-macrophage
                    498. Fong AM, Robinson LA, Steeber DA, et al: Fractalkine and CX3CR1 Mediate a Novel   colony-stimulating factor. Immunol Ser 57:457, 1992.
                     Mechanism of Leukocyte Capture, Firm Adhesion, and Activation under Physiologic     531. Ghebrehiwet B, Müller-Eberhard HJ: C3e: An acidic fragment of human C3 with leuko-
                     Flow. J Exp Med 188:1413, 1998.                       cytosis-inducing activity. J Immunol 123:616, 1979.
                    499. Broxmeyer HE: Chemokines in hematopoiesis. Curr Opin Hematol 15:49, 2008.    532. Kubo H, Graham L, Doyle NA, et al: Complement fragment-induced release of neu-
                    500. Gerrits H, van Ingen Schenau DS, Bakker NEC, et al: Early postnatal lethality and car-  trophils from bone marrow and sequestration within pulmonary capillaries in rabbits.
                     diovascular defects in CXCR7-deficient mice. Genesis 46:235, 2008.  Blood 92:283, 1998.
                    501. Sierro F, Biben C, Martínez-Muñoz L, et al: Disrupted cardiac development but normal     533. Deinard AS, Page AR: A study of steroid-induced granulocytosis in a patient with
                     hematopoiesis in mice deficient in the second CXCL12/SDF-1 receptor, CXCR7. Proc   chronic benign neutropenia of childhood. Br J Haematol 28:333, 1974.
                     Natl Acad Sci U S A 104:14759, 2007.                 534. Vogel JM, Yankee RA, Kimball HR, et al: The effect of etiocholanolone on granulocyte
                    502. Boldajipour B, Mahabaleshwar H, Kardash E, et al: Control of chemokine-guided cell   kinetics. Blood 30:474, 1967.
                     migration by ligand sequestration. Cell 132:463, 2008.    535. Cybulsky MI, McComb DJ, Movat HZ: Neutrophil leukocyte emigration induced by
                    503. Dar A, Kollet O, Lapidot T: Mutual, reciprocal SDF-1/CXCR4 interactions between   endotoxin. Mediator roles of interleukin 1 and tumor necrosis factor alpha 1. J Immunol
                     hematopoietic and bone marrow stromal cells regulate human stem cell migration and   140:3144, 1988.
                     development in NOD/SCID chimeric mice. Exp Hematol 34:967, 2006.    536. Terashima T, English D, Hogg JC, van Eeden SF: Release of polymorphonuclear leuko-
                    504. Greenbaum A, Hsu Y-MS, Day RB, et al: CXCL12 in early mesenchymal progenitors is   cytes from the bone marrow by interleukin-8. Blood 92:1062, 1998.
                     required for haematopoietic stem-cell maintenance. Nature 495:227, 2013.    537. Burdon  PCE, Martin C,  Rankin  SM:  The  CXC chemokine MIP-2 stimulates  neu-
                    505. Morrison SJ, Scadden DT: The bone marrow niche for haematopoietic stem cells.   trophil mobilization from the rat bone marrow in a CD49d-dependent manner. Blood
                     Nature 505:327, 2014.                                 105:2543, 2005.
                    506. Bonig H, Papayannopoulou T: Hematopoietic stem cell mobilization: Updated concep-    538. Burdon PCE, Martin C, Rankin SM: Migration across the sinusoidal endothelium reg-
                     tual renditions. Leukemia 27:24, 2013.                ulates neutrophil mobilization in response to ELR + CXC chemokines. Br J Haematol
                    507. Nabors LK, Wang LD, Wagers AJ, Kansas GS: Overlapping roles for endothelial selec-  142:100, 2008.
                     tins in murine hematopoietic stem/progenitor cell homing to bone marrow. Exp Hema-    539. Wengner AM, Pitchford SC, Furze RC, Rankin SM: The coordinated action of G-CSF
                     tol 41:588, 2013.                                     and ELR + CXC chemokines in neutrophil mobilization during acute inflammation.
                    508. Scott LM, Priestley GV, Papayannopoulou T: Deletion of alpha4 integrins from adult   Blood 111:42, 2008.
                     hematopoietic cells reveals roles in homeostasis, regeneration, and homing. Mol Cell     540. Suratt BT, Petty JM, Young SK, et al: Role of the CXCR4/SDF-1 chemokine axis in cir-
                     Biol 23:9349, 2003.                                   culating neutrophil homeostasis. Blood 104:565, 2004.
                    509. Avigdor A, Goichberg P, Shivtiel S, et al: CD44 and hyaluronic acid cooperate with     541. Palframan RT, Collins PD, Williams TJ, Rankin SM: Eotaxin induces a rapid release of
                     SDF-1 in the trafficking of human CD34+ stem/progenitor cells to bone marrow. Blood   eosinophils and their progenitors from the bone marrow. Blood 91:2240, 1998.
                     103:2981, 2004.                                      542. Palframan RT, Collins PD, Severs NJ, et al: Mechanisms of acute eosinophil mobiliza-
                    510. Wysoczynski M, Reca R, Ratajczak J, et al: Incorporation of CXCR4 into membrane   tion from the bone marrow stimulated by interleukin 5: The role of specific adhesion
                     lipid rafts primes homing-related responses of hematopoietic stem/progenitor cells to   molecules and phosphatidylinositol 3-kinase. J Exp Med 188:1621, 1998.
                     an SDF-1 gradient. Blood 105:40, 2005.               543. Schratl P, Royer JF, Kostenis E, et al: The role of the prostaglandin D2 receptor, DP, in
                    511. Williams DA, Zheng Y, Cancelas JA: Rho GTPases and regulation of hematopoietic   eosinophil trafficking. J Immunol 179:4792, 2007.
                     stem cell localization. Methods Enzymol 439:365, 2008.    544. Chamberlain JK, Weiss L, Weed RI: Bone marrow sinus cell packing: A determinant of
                    512. Kiel MJ, Morrison SJ: Uncertainty in the niches that maintain haematopoietic stem   cell release. Blood 46:91, 1975.
                     cells. Nat Rev Immunol 8:290, 2008.                  545. Waugh RE, Sassi M: An in vitro model of erythroid egress in bone marrow. Blood
                    513. Czechowicz  A,  Kraft  D,  Weissman  IL,  Bhattacharya  D:  Efficient  transplantation  via   68:250, 1986.
                     antibody-based clearance of hematopoietic stem cell niches. Science 318:1296, 2007.    546. Chasis JA, Prenant M, Leung A, Mohandas N: Membrane assembly and remodeling
                    514. Levesque JP, Leavesley DI, Niutta S, et al: Cytokines increase human hemopoietic cell   during reticulocyte maturation. Blood 74:1112, 1989.
                     adhesiveness by activation of very late antigen (VLA)-4 and VLA-5 integrins. J Exp Med     547. Dabrowski Z, Szyguła Z, Miszta H: Do changes in bone marrow pressure contribute to
                     181:1805, 1995.                                       the egress of cell from bone marrow? Acta Physiol Pol 32:729, 1981.
                    515. Adams GB, Chabner KT, Alley IR, et al: Stem cell engraftment at the endosteal niche is     548. Eymard N, Bessonov N, Gandrillon O, et al: The role of spatial organization of cells in
                     specified by the calcium-sensing receptor. Nature 439:599, 2006.  erythropoiesis. J Math Biol 2014. 70:71, 2015.
                    516. Arai F, Hirao A, Ohmura M, et al: Tie2/angiopoietin-1 signaling regulates hematopoi-    549. Junt T, Schulze H, Chen Z, et al: Dynamic visualization of thrombopoiesis within bone
                     etic stem cell quiescence in the bone marrow niche. Cell 118:149, 2004.  marrow. Science 317:1767, 2007.
                    517. Puri MC, Bernstein A: Requirement for the TIE family of receptor tyrosine kinases in     550. Zhang L, Orban M, Lorenz M, et al: A novel role of sphingosine 1-phosphate receptor
                     adult but not fetal hematopoiesis. Proc Natl Acad Sci U S A 100:12753, 2003.  S1pr1 in mouse thrombopoiesis. J Exp Med 209:2165, 2012.







          Kaushansky_chapter 05_p0051-0084.indd   83                                                                    9/19/15   12:11 AM
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