Granulocyte colony-stimulating factor and granulocyte-macrophage colony-stimulating factor in the treatment of myeloid leukemia. 1995

D Hoelzer, and G Seipelt
Klinikum der Johann Wolfgang Goethe-Universität, Frankfurt, Germany.

Hematopoietic growth factors primarily used in patients with acute myelogenous leukemia after chemotherapy could reduce significantly the neutrophil recovery time in all patients. In high-risk acute myelogenous leukemia, trials also reported a reduction in the incidence of documented infections and early mortality rate. Thus in elderly patients with acute myelogenous leukemia and in high-risk patients with acute myelogenous leukemia the use of hematopoietic growth factors seems justified. Whether the rate of infections, particularly of life-threatening fungal infections, can be reduced by granulocyte colony-stimulating factor or granulocyte-macrophage colony-stimulating factor after chemotherapy cannot be known without larger studies. A novel strategy in the treatment of acute myelogenous leukemia is the attempt to increase the growth fraction of clonal leukemic cells prior to administration of chemotherapeutic agents by the administration of hematopoietic growth factors. Evidence shows that hematopoietic growth factors enhance anti-leukemic activity of cytosine arabinoside against leukemic cells by recruitment of leukemic cells into cell cycle, an increase of intracellular cytosine arabinoside triphosphate:deoxcytidine 5' triphosphate pool ratios, or by an enhanced cytosine arabinoside incorporation into the DNA of acute myelogenous leukemia blasts. Whether these mechanisms lead to an increase in the complete remission rate and eventually to an improvement in survival must be answered in ongoing larger acute myelogenous leukemia trials using granulocyte colony-stimulating factor or granulocyte-macrophage colony-stimulating factor in such a setting.

UI MeSH Term Description Entries
D007951 Leukemia, Myeloid Form of leukemia characterized by an uncontrolled proliferation of the myeloid lineage and their precursors (MYELOID PROGENITOR CELLS) in the bone marrow and other sites. Granulocytic Leukemia,Leukemia, Granulocytic,Leukemia, Myelocytic,Leukemia, Myelogenous,Myelocytic Leukemia,Myelogenous Leukemia,Myeloid Leukemia,Leukemia, Monocytic, Chronic,Monocytic Leukemia, Chronic,Chronic Monocytic Leukemia,Chronic Monocytic Leukemias,Granulocytic Leukemias,Leukemia, Chronic Monocytic,Leukemias, Chronic Monocytic,Leukemias, Granulocytic,Leukemias, Myelocytic,Leukemias, Myelogenous,Leukemias, Myeloid,Monocytic Leukemias, Chronic,Myelocytic Leukemias,Myelogenous Leukemias,Myeloid Leukemias
D001752 Blast Crisis An advanced phase of chronic myelogenous leukemia, characterized by a rapid increase in the proportion of immature white blood cells (blasts) in the blood and bone marrow to greater than 30%. Blast Phase,Blast Crises,Blast Phases,Crises, Blast,Crisis, Blast,Phase, Blast,Phases, Blast
D002454 Cell Differentiation Progressive restriction of the developmental potential and increasing specialization of function that leads to the formation of specialized cells, tissues, and organs. Differentiation, Cell,Cell Differentiations,Differentiations, Cell
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D000208 Acute Disease Disease having a short and relatively severe course. Acute Diseases,Disease, Acute,Diseases, Acute
D015996 Survival Rate The proportion of survivors in a group, e.g., of patients, studied and followed over a period, or the proportion of persons in a specified group alive at the beginning of a time interval who survive to the end of the interval. It is often studied using life table methods. Cumulative Survival Rate,Mean Survival Time,Cumulative Survival Rates,Mean Survival Times,Rate, Cumulative Survival,Rate, Survival,Rates, Cumulative Survival,Rates, Survival,Survival Rate, Cumulative,Survival Rates,Survival Rates, Cumulative,Survival Time, Mean,Survival Times, Mean,Time, Mean Survival,Times, Mean Survival
D016178 Granulocyte-Macrophage Colony-Stimulating Factor An acidic glycoprotein of MW 23 kDa with internal disulfide bonds. The protein is produced in response to a number of inflammatory mediators by mesenchymal cells present in the hemopoietic environment and at peripheral sites of inflammation. GM-CSF is able to stimulate the production of neutrophilic granulocytes, macrophages, and mixed granulocyte-macrophage colonies from bone marrow cells and can stimulate the formation of eosinophil colonies from fetal liver progenitor cells. GM-CSF can also stimulate some functional activities in mature granulocytes and macrophages. CSF-GM,Colony-Stimulating Factor, Granulocyte-Macrophage,GM-CSF,Histamine-Producing Cell-Stimulating Factor,CSF-2,TC-GM-CSF,Tumor-Cell Human GM Colony-Stimulating Factor,Cell-Stimulating Factor, Histamine-Producing,Colony Stimulating Factor, Granulocyte Macrophage,Granulocyte Macrophage Colony Stimulating Factor,Histamine Producing Cell Stimulating Factor,Tumor Cell Human GM Colony Stimulating Factor
D016179 Granulocyte Colony-Stimulating Factor A glycoprotein of MW 25 kDa containing internal disulfide bonds. It induces the survival, proliferation, and differentiation of neutrophilic granulocyte precursor cells and functionally activates mature blood neutrophils. Among the family of colony-stimulating factors, G-CSF is the most potent inducer of terminal differentiation to granulocytes and macrophages of leukemic myeloid cell lines. Colony-Stimulating Factor, Granulocyte,G-CSF,Myeloid Growth Factor,Colony Stimulating Factor, Granulocyte,Factor, Granulocyte Colony-Stimulating,Factor, Myeloid Growth,Granulocyte Colony Stimulating Factor,Growth Factor, Myeloid
D017209 Apoptosis A regulated cell death mechanism characterized by distinctive morphologic changes in the nucleus and cytoplasm, including the endonucleolytic cleavage of genomic DNA, at regularly spaced, internucleosomal sites, i.e., DNA FRAGMENTATION. It is genetically programmed and serves as a balance to mitosis in regulating the size of animal tissues and in mediating pathologic processes associated with tumor growth. Apoptosis, Extrinsic Pathway,Apoptosis, Intrinsic Pathway,Caspase-Dependent Apoptosis,Classic Apoptosis,Classical Apoptosis,Programmed Cell Death,Programmed Cell Death, Type I,Apoptoses, Extrinsic Pathway,Apoptoses, Intrinsic Pathway,Apoptosis, Caspase-Dependent,Apoptosis, Classic,Apoptosis, Classical,Caspase Dependent Apoptosis,Cell Death, Programmed,Classic Apoptoses,Extrinsic Pathway Apoptoses,Extrinsic Pathway Apoptosis,Intrinsic Pathway Apoptoses,Intrinsic Pathway Apoptosis

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