975 resultados para Gm-csf Receptor
Resumo:
The high affinity receptor for human granulocyte-macrophage colony-stimulating factor (GM-CSF) consists of a cytokine-specific alpha-subunit (hGMR alpha) and a common signal-transducing beta-subunit (hpc) that is shared with the interleukin-3 and -5 receptors, We have previously identified a constitutively active extracellular point mutant of hpc, I374N, that can confer factor independence on murine FDC-P1 cells but not BAF-B03 or CTLL-2 cells (Jenkins, B. J., D'Andrea, R. J., and Gonda, T. J. (1995) EMBO J. 14, 4276-4287), This restricted activity suggested the involvement of cell type-specific signaling molecules in the activation of this mutant. We report here that one such molecule is the mouse GMR alpha (mGMR alpha) subunit, since introduction of mGMR alpha, but not hGMR alpha, into BAF-B03 or CTLL-2 cells expressing the I374N mutant conferred factor independence, Experiments utilizing mouse/human chimeric GMR alpha subunits indicated that the species specificity lies in the extracellular domain of GMRa. Importantly, the requirement for mGMR alpha correlated with the ability of I374N (but not wild-type hpc) to constitutively associate with mGMRa. Expression of I374N in human factor-dependent UT7 cells also led to factor-independent proliferation, with concomitant up-regulation of hGMR alpha surface expression. Taken together, these findings suggest a critical role for association with GMR alpha in the constitutive activity of I374N.
Resumo:
Several constitutively active mutant forms of the common β subunit of the human IL-3, IL-5 and GM-CSF receptors (hβc), which enable it to signal in the absence of ligand, have recently been described. Two of these, V449E and I374N, are amino acid substitutions in the transmembrane and extracellular regions of hβc, respectively. A third, FIΔ, contains a 37 amino acid duplication in the extracellular domain. We have shown previously that when expressed in primary murine haemopoietic cells, the extracellular mutants confer factor-independence on cells of the neutrophil and monocyte lineages only, whereas V449E does so on all cell types of the myeloid and erythroid compartments. To study the in vivo effects and leukaemic potential of these mutants, we have expressed all three in mice by bone marrow reconstitution using retrovirally infected donor cells. Expression of the extracellular mutants leads to an early onset, chronic myeloproliferative disorder marked by elevations in the neutrophil, monocyte, erythrocyte and platelet lineages. In contrast, expression of V449E leads to an acute leukaemia-like syndrome of anaemia, thrombocytopaenia and blast cell expansion. These data support the possibility that activating mutations in hβc are involved in haemopoietic disorders in man.
Resumo:
Several reports have suggested an interaction between the erythropoietin receptor (EpoR) and the shared signaling subunit (hbeta(c)) of the human granulocyte macrophage-colony stimulating factor (GM-CSF), interleukin (IL)-3, and IL-5 receptors, although the functional consequences of this interaction are unclear. We previously showed that in vivo expression of constitutively active extracellular (EC) mutants of hbeta(c) induces erythrocytosis and Epo independence of erythroid colony-forming units (CFU-E). This occurs despite an apparent requirement of these mutants for the GM-CSF receptor alpha-subunit (GMRalpha), which is not expressed in CFU-E. Here, we show that coexpression of hbeta(c) EC mutants and EpoR in BaF-B03 cells, which lack GMRalpha, results in factor-independent proliferation and JAK2 activation. Mutant receptors that cannot activate JAK2 fail to produce a functional interaction. As there is no detectable phosphorylation of hbeta(c). on intracellular tyrosine residues, EpoR displays constitutive tyrosine phosphorylation. These observations suggest that JAK2 activation mediates cross-talk between EC mutants of hbeta(c) and EpoR. The implications of these data are discussed as are our findings that activated hbeta(c) mutants can functionally interact with certain other cytokine receptors.
Resumo:
Activation of the granulocyte-macrophage colony-stimulating factor (GM-CSF) family of receptors promotes the survival, proliferation, and differentiation of cells of the myeloid compartment. Several signaling pathways are activated downstream of the receptor, however it is not clear how these induce specific biologic outcomes. We have previously identified 2 classes of constitutively active mutants of the shared signaling subunit, human (h) betac, of the human GM-CSF/interieukin-3 (IL-3)/IL-5 receptors that exhibit different modes of signaling. In a factor-dependent bipotential myeloid cell line, FDB1, an activated mutant containing a substitution in the transmembrane domain (V449E) induces factor-independent proliferation and survival, while mutants in the extracellular domain induce factor-independent granulocyte-macrophage differentiation. Here we have used further mutational analysis to demonstrate that there are nonredundant functions for several regions of the cytoplasmic domain with regard to mediating proliferation, viability, and differentiation, which have not been revealed by previous studies with the wild-type GM-CSF receptor. This unique lack of redundancy has revealed an association of a conserved membrane-proximal region with viability signaling and a critical but distinct role for tyrosine 577 in the activities of each class of mutant.
Resumo:
OBJECTIVE: Macrophages play a critical role in intestinal wound repair. However, the molecular pathways that regulate macrophage wound repair activities remain poorly understood. The aim of this study was to evaluate the role of GM-CSF receptor signaling in the wound repair activities of macrophages. METHODS: Murine macrophages were differentiated from bone marrow cells and human macrophages from monocytes isolated from peripheral blood mononuclear cells of Crohn's disease (CD) patients. In vitro models were used to study the repair activities of macrophages. RESULTS: We provide evidence that GM-CSF receptor signaling is required for murine macrophages to promote epithelial repair. In addition, we demonstrate that the deficient repair properties of macrophages from CD patients with active disease can be recovered via GM-CSF therapy. CONCLUSION: Our data support a critical role of the GM-CSF signaling pathway in the pro-repair activities of mouse and human macrophages. © 2014 S. Karger AG, Basel.
Resumo:
Aus dem tumorreaktiven T-Zellrepertoire der Melanompatientin Ma-Mel-86/INTH, bei der im Verlauf Lymphknotenmetastasen HLA-Klasse I-negativer Tumorzellen auftraten, wurden durch Stimulation mit autologen Tumorzellen CD8+ T-Zellklone isoliert und expandiert, die auf Melanomzellen der Patientin CSF2RA (engl. GM-CSF receptor alpha chain) in HLA-unabhängiger Weise erkannten. Aus einem der T-Zellklone wurde ein CSF2RA-reaktiver α:β-T-Zellrezeptor (TCR, engl. T-cell receptor) kloniert (Bezeichnung: TCR-1A.3/46). Die α-Kette des TCR enthielt die Domänen TRAV14/DV4*01, TRAJ48*01 und TRAC*01, die β-Kette die Domänen TRBV10-3*01, TRBD2*01, TRBJ2-7*01 und TRBC2*01. Durch Austausch der humanen konstanten gegen die homologen murinen Domänen wurde der TCR optimiert (Bezeichnung: cTCR-1A.3/46) und hinsichtlich seiner Expression und Funktionalität nach retroviralem Transfer in humane PBMC (engl. peripheral blood mononuclear cells) im 51Chromfreisetzungstest, im IFN-γ-ELISpot-Assay und in einem Degranulations-Assay validiert. TCR-transgene T-Zellen lysierten nicht nur spezifisch die HLA-defizienten, CSF2RA+ Melanomlinien des Modells Ma-Mel-86, sondern erkannten auch Zelllinien verschiedener Spezies nach Transfektion von CSF2RA sowie Monozyten, Granulozyten, dendritische Zellen und ein breites Spektrum hämatologischer Malignome myeloiden Ursprungs ungeachtet deren HLA-Phänotypen. Lymphatische Zellen sowie CD34+ Blutstammzellen wurden in In vitro-Untersuchungen nicht erkannt. Der Zusatz von GM-CSF zu Zellen, die CSF2RA und CSF2RB exprimierten, inhibierte die Erkennung durch TCR-transgene PBMC, während die Koexpression der α- und der ß-Kette des GM-CSF-Rezeptors alleine keinen negativen Effekt auf die Erkennung hatte. Daraus war zu schließen, dass CSF2RA präferentiell freistehend und weniger nach Integration in den heteromultimerischen GM-CSF-Rezeptor-Komplex erkannt wurde. In der zweidimensionalen Collier-de-Perles-Visualisierung der IMGT-Datenbank (engl. International immunogenetics information system) wies der CSF2RA-reaktive TCR-1A.3/46 im Vergleich zu TCR von konventionellen, HLA-restringierten T-Zellen keine Besonderheiten auf. Darüber hinaus waren auch die von den HLA-unabhängigen T-Zellen exprimierten CD8-Moleküle identisch zu den CD8-Molekülen HLA-abhängiger CTL (engl. cytotoxic T lymphocytes). Die Präsenz von CD8-Molekülen förderte die HLA-unabhängige Erkennung von CSF2RA, schien aber dafür nicht zwingend erforderlich zu sein, da Antikörper gegen CD8 die Erkennung zu ca. 65 % blockierten und TCR-transgene CD4+ T-Zellen im Vergleich zu TCR-transduzierten CD8+ T-Zellen eine deutlich verringerte, aber noch erhaltene Funktionalität aufwiesen. Es ist derzeit nicht klar, ob HLA-unabhängige T-Zellen gegen CSF2RA im peripheren Blut der Patientin vorkamen, weil sie der im Tiermodell postulierten Thymusselektion MHC-unabhängiger TCR (Tikhonova et al., Immunity 36:79, 2012) entkommen waren, oder weil ein ursprünglich gegen einen HLA-Peptid-Komplex gerichteter TCR eine HLA-unabhängige Kreuzreaktivität aufwies. CSF2RA verbessert die Glucoseutilisation in malignen Zellen, und es wurden ihm embryotrophe Eigenschaften zugeschrieben (Spielholz et al., Blood 85:973, 1995; Sjöblom et al., Biol. Reprod. 67:1817, 2002). Damit kann CSF2RA malignes Wachstum fördern und ist somit ein potentielles Zielmolekül für die Immuntherapie. Seine HLA-unabhängige Erkennung würde sowohl die HLA-Vielfalt als auch den HLA-Verlust als typische Limitationen der T-Zellimmuntherapie umgehen. Zur Überprüfung der In vivo-Spezifität des HLA-unabhängigen TCR gegen CSF2RA und damit zum Ausschluss relevanter off-tumor-/on-target- bzw. off-tumor-/off-target-Effekte ist jedoch eine Testung in einem präklinischen Tiermodell erforderlich.
Resumo:
Several activating mutations have recently been described in the common beta subunit for the human interleukin(IL)-3, IL-5, and granulocyte-macrophage colony-stimulating factor (GM-CSF) receptors (h beta c), Two of these, FI Delta and 1374N, result, respectively, in a 37-amino acid duplication and an isoleucine-to-asparagine substitution in the extracellular domain. A third, V449E, leads to valine-to-glutamic acid substitution in the transmembrane domain. Previous studies have shown that when expressed in murine hemopoietic cells in vitro, the extracellular mutants can confer factor independence on only the granulocyte-macrophage lineage while the transmembrane mutant can do so to all cell types of the myeloid and erythroid compartments. To further study the signaling properties of the constitutively active hpc mutants, we have used novel murine hemopoietic cell lines, which we describe in this report. These lines, FDB1 and FDB2, proliferate in murine IL-3 and undergo granulocyte-macrophage differentiation in response to murine GM-CSF, We find that while the transmembrane mutant, V449E, confers factor-independent proliferation on these cell lines, the extracellular hpc mutants promote differentiation. Hence, in addition to their ability to confer factor independence on distinct cell types, transmembrane and extracellular activated h beta c mutants deliver distinct signals to the same cell type. Thus, the FDB cell lines, in combination with activated h beta c mutants, constitute a powerful new system to distinguish between signals that determine hemopoietic proliferation or differentiation. (C) 2000 by The American Society of Hematology.
Resumo:
Even though the involvement of intracellular Ca(2+) (Ca(i)(2+)) in hematopoiesis has been previously demonstrated, the relationship between Ca(i)(2+) signaling and cytokine-induced intracellular pathways remains poorly understood. Herein, the molecular mechanisms integrating Ca(2+) signaling with the extracellular signal-regulated kinase 1/2 (ERK1/2) pathway in primary murine and human hematopoietic stem/progenitor cells stimulated by IL-3 and GM-CSF were studied. Our results demonstrated that IL-3 and GM-CSF stimulation induced increased inositol 1,4,5-trisphosphate (IP(3)) levels and Ca(i)(2+) release in murine and human hematopoietic stem/ progenitor cells. In addition, Ca(i)(2+) signaling inhibitors, such as inositol 1,4,5-trisphosphate receptor antagonist (2-APB), PKC inhibitor (GF109203), and CaMKII inhibitor (KN-62), blocked phosphorylation of MEK activated by IL-3 and GM-CSF, suggesting the participation of Ca(2+)-dependent kinases in MEK activation. In addition, we identify phospholipase C gamma 2 (PLC gamma 2) as a PLC gamma responsible for the induction of Ca(2+) release by IL-3 and GM-CSF in hematopoietic stem/progenitor cells. Furthermore, the PLCg inhibitor U73122 significantly reduced the numbers of granulocyte-macrophage colony-forming units after cytokine stimulation. Similar results were obtained in both murine and human hematopoietic stem/progenitor cells. Taken together, these data indicate a role for PLC gamma 2 and Ca(2+) signaling through the modulation of MEK in both murine and human hematopoietic stem/ progenitor cells. J. Cell. Physiol. 226: 1780-1792, 2011. (C) 2010 Wiley-Liss, Inc.