GM-CSF: From Growth Factor to Central Mediator of Tissue Inflammation
GM-CSF: From Growth Factor to Central Mediator of Tissue Inflammation
- Research Article
33
- 10.1016/j.exphem.2008.02.008
- Apr 8, 2008
- Experimental hematology
Socs3 maintains the specificity of biological responses to cytokine signals during granulocyte and macrophage differentiation
- Front Matter
2
- 10.1046/j.1523-1755.2001.060002797.x
- Aug 1, 2001
- Kidney International
Beyond a glomerulocentric view of inflammation
- Research Article
55
- 10.1038/sj.jidsymp.5650013
- Sep 1, 2006
- Journal of Investigative Dermatology Symposium Proceedings
Granulocyte–Macrophage Colony-Stimulating Factor Is Essential for Normal Wound Healing
- Research Article
132
- 10.1016/j.exphem.2006.04.005
- Jul 22, 2006
- Experimental Hematology
Mechanisms of hematopoietic stem cell mobilization: When innate immunity assails the cells that make blood and bone
- Research Article
52
- 10.1016/0091-6749(94)90321-2
- Dec 1, 1994
- Journal of Allergy and Clinical Immunology
Basophil and eosinophil differentiation in allergic reactions
- Research Article
86
- 10.1046/j.1365-2141.2003.04483.x
- Jul 23, 2003
- British Journal of Haematology
It's moving day: factors affecting peripheral blood stem mobilization and strategies for improvement
- Research Article
19
- 10.1016/j.celrep.2022.111158
- Aug 1, 2022
- Cell reports
Blocking DCIR mitigates colitis and prevents colorectal tumors by enhancing the GM-CSF-STAT5 pathway.
- Abstract
1
- 10.1182/blood.v108.11.4574.4574
- Nov 16, 2006
- Blood
Randomized Trial of GM-CSF and G-CSF Following High-Dose Cytarabine and Mitoxantrone Chemotherapy for Relapsed and Refractory Acute Leukemia.
- Research Article
53
- 10.1074/jbc.m708853200
- Feb 1, 2008
- Journal of Biological Chemistry
The proinflammatory cytokine granulocyte-macrophage colony-stimulating factor (GM-CSF) is expressed in inflammatory and atherosclerotic lesions. GM-CSF is known to enhance monocytic expression of monocyte chemoattractant protein-1 (MCP-1). However, the molecular mechanism(s) by which GM-CSF up-regulates the MCP-1 expression remains to be clarified. Thus, in this study, we examined our hypothesis that GM-CSF up-regulates the MCP-1 expression via Jak2-Stat5 signaling pathway. In human monocytic cell line U937, GM-CSF increased MCP-1 expression in protein and mRNA levels. Furthermore, analysis of the GM-CSF promoter element revealed that the STAT5 (signal transducer and activator of transcription-5) transcription factor binding site, located between -152 and -144 upstream of the transcription start site, as well as Janus kinase-2-mediated Stat5 activation were necessary for the GM-CSF-induced transcriptional up-regulation of the MCP-1 gene. This GM-CSF-induced MCP-1 expression, measured as both protein and mRNA levels, was down-regulated by atorvastatin, a 3-hydroxy-3-methylglutaryl-CoA reductase inhibitor. However, this decrease in MCP-1 expression was not at the transcriptional level of MCP-1 gene but rather at the level of the stability of MCP-1 mRNA. These results indicate that GM-CSF regulates MCP-1 expression via Janus kinase-2-Stat5 pathway and by a novel regulatory mechanism of statins to reduce inflammatory reactions by down-regulating the expression of monocytic MCP-1, which promotes atherogenesis.
- Research Article
10
- 10.1182/blood.v80.5.1199.bloodjournal8051199
- Sep 1, 1992
- Blood
Effects of human stem cell factor (c-kit ligand) on proliferation of myeloid leukemia cells: heterogeneity in response and synergy with other hematopoietic growth factors
- Peer Review Report
- 10.7554/elife.84149.sa1
- Jan 16, 2023
A physiological mathematical model of chronic myeloid leukemia, validated by experiments in transgenic mice and clinical data, identifies mechanisms underlying the response to tyrosine kinase inhibitor therapy, predicts biomarkers of primary resistance, and suggests new strategies to improve treatment outcomes.
- Research Article
168
- 10.1016/j.jaci.2005.06.007
- Aug 1, 2005
- Journal of Allergy and Clinical Immunology
Mast cells and eosinophils: A novel link between inflammation and angiogenesis in allergic diseases
- Research Article
84
- 10.1359/jbmr.0301232
- Feb 1, 2004
- Journal of Bone and Mineral Research
Human osteoclasts can be efficiently generated in vitro from cord blood mononuclear cells and derived CFU-GM colonies. However, CFU-M colonies are poorly osteoclastogenic. Short-term (2-48 h) treatment with GM-CSF stimulates osteoclast formation by proliferating precursors, whereas longer exposure favors dendritic cell formation. Osteoclasts (OC) differentiate from cells of the myelomonocytic lineage under the influence of macrophage-colony stimulating factor (M-CSF) and RANKL. However, cells of this lineage can also differentiate to macrophages and dendritic cells (DC) depending on the cytokine environment. The aims of this study were to develop an efficient human osteoclastogenesis model and to investigate the roles of granulocyte macrophage-colony stimulating factor (GM-CSF) and M-CSF in human OC differentiation. A human osteoclastogenesis model, using as precursors colony forming unit-granulocyte macrophage (CFU-GM) colonies generated from umbilical cord mononuclear cells cultured in methylcellulose with GM-CSF, interleukin (IL)-3 and stem cell factor (SCF), has been developed. CFU-GM, colony forming unit-macrophage (CFU-M), or mixed colonies were cultured on dentine with soluble RANKL (sRANKL) and human M-CSF with and without GM-CSF. Major endpoints were OC number, dentine resorption, and CD1a+ DC clusters. Osteoclast generation from CFU-GM and mixed colonies treated with M-CSF and sRANKL for 7-14 days was highly efficient, but CFU-M colonies were poorly osteoclastogenic under these conditions. Pretreatment of precursors with M-CSF for 7 or 14 days maintained the precursor pool, but OCs were smaller and resorption was reduced. The effect of GM-CSF treatment was biphasic, depending on the timing and duration of exposure. Short-term treatment (2-48 h) at the beginning of the culture stimulated cell proliferation and enhanced OC formation up to 100%, independent of sRANKL. Longer-term GM-CSF treatment in the presence of sRANKL, however, inhibited OC generation with the formation of extensive CD1a+ DC clusters, accompanied by downregulation of c-Fos mRNA. Delaying the addition of GM-CSF resulted in progressively less inhibition of osteoclastogenesis. Human CFU-GM, but not CFU-M, progenitors have high osteoclastogenic potential. GM-CSF plays an important role in osteoclastogenesis and has a biphasic effect: Short-term treatment potentiates OC differentiation by proliferating precursors, but persistent exposure favors DC formation.
- Research Article
21
- 10.1038/mt.2008.280
- Mar 1, 2009
- Molecular Therapy
Cancer-induced Expansion and Activation of CD11b+Gr-1+ Cells Predispose Mice to Adenoviral-triggered Anaphylactoid-type Reactions
- Research Article
301
- 10.1093/emboj/17.15.4456
- Aug 3, 1998
- The EMBO Journal
PU.1 is a unique regulatory protein required for the generation of both the innate and the adaptive immune system. It functions exclusively in a cell-intrinsic manner to control the development of granulocytes, macrophages, and B and T lymphocytes. We demonstrate that mutation of the PU.1 gene causes a severe reduction in myeloid (granulocyte/macrophage) progenitors. PU.1 -/- myeloid progenitors can proliferate in vitro in response to the multilineage cytokines interleukin-3 (IL-3), IL-6 and stem cell factor but are unresponsive to the myeloid-specific cytokines granulocyte-macrophage colony-stimulating factor (GM-CSF), G-CSF and M-CSF. The failure of PU.1 -/- progenitors to respond to G-CSF is bypassed by transient signaling with IL-3. In the presence of IL-3 and G-CSF, PU.1 -/- progenitors can differentiate into granulocytic precursors containing myeloperoxidase-positive granules. Thus PU.1 is not essential for specification of granulocytic precursors, but is required for their further differentiation. The failure of PU.1 -/- progenitors to respond to M-CSF is due to lack of c-fms gene transcription. Transduction of c-fms into PU.1 -/- myeloid progenitors bypasses the block to M-CSF-dependent proliferation but does not induce detectable macrophage differentiation. Therefore, PU. 1 appears to be essential for specification of monocytic precursors. Importantly, retroviral transduction of PU.1 into mutant progenitors restores responsiveness to myeloid-specific cytokines and development of mature granulocytes and macrophages. Thus PU.1 controls myelopoiesis by regulating both proliferation and differentiation pathways.