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S D Nimer

Publications and source records attributed to S D Nimer.

At least 73 records · Page 4Linked to original sources

Transcription factors, translocations, and leukemia.

The frequent occurrence of TF gene involvement in translocations associated with leukemia is remarkable, although not yet explained. The wide variety of TFs involved in these translocations and the different stages of cellular maturation argue against a unifying mechanism. Recombinases, active during B-cell and T-cell development, have been implicated in gene arrangements involving TCR genes and in the SIL/SCL rearrangement, which involves two genes not normally rearranged. However, other mechanisms must clearly be active in generating these molecular abnormalities and perhaps they relate to the multistep maturation and differentiation processes and continuous cell turnover seen in hematopoietic cells. The difficulties in obtaining human solid tumor samples may make it more difficult to identify translocations involving TF genes in solid tumors. Recently, the cytogenetic analysis of solid tumors has improved and specific cytogenetic abnormalities have been associated with specific types of tumors. With advanced techniques, such as fluorescent in situ hybridization (a technique that does not depend on cell growth) and PCR, abnormalities involving TF genes will be discovered. Abnormalities of TF genes, other than translocations, have been seen in a broad variety of nonhematopoietic malignancies. The p53 protein has been shown to bind DNA in a sequence-specific fashion and interact with a variety of DNA tumor virus oncoproteins. The broad range of cell types that harbor p53 abnormalities suggests that TF abnormalities will likely be implicated in many solid tumors. We have detailed several examples of how gene rearrangements that accompany chromosomal translocations in acute leukemia can alter the expression or activity of cellular TFs. Several translocations generate fusion RNA transcripts and fusion TF proteins with altered functional characteristics. Other translocations result in the expression of a gene not normally detectable in hematopoietic cells or alter the level of its expression, or affect the promoter usage or exon structure of the gene (Table 2). Studies are underway in many laboratories to characterize the biologic activity of these abnormal TFs and it remains to be proven that these molecular abnormalities are directly linked with leukemogenesis. The identification of abnormal fusion transcripts and proteins may allow specific therapies to be directed against "tumor-specific" DNA, mRNA, or protein targets. Therapeutic strategies based on antisense or ribozyme technology may be used to turn off expression of these genes and inhibit leukemia cell growth. Immunologic methods can also be used to direct therapy against the malignant cells.

Chromosomes, Human↗

The use of colony-stimulating factors in primary hematologic disorders.

BACKGROUND: The cloning of the human colony-stimulating factors (CSF), granulocyte CSF, granulocyte-macrophage CSF, and interleukin-3 has led to their use in a variety of clinical settings. RESULTS: These CSF have been used successfully to raise neutrophil counts and prevent or control infection in patients with neutropenia due to primary hematologic disorders. Their effects on platelet and erythrocyte counts have been modest; occasional patients have multilineage improvement in hematopoiesis. CONCLUSIONS: The CSF can be given for several months at effective and tolerable doses. Their long-term efficacies and toxicities remain to be elucidated, and the optimal dose and dosing schedule to be used for each indication are not defined currently. Although the CSF can improve hematopoiesis in patients with primary hematologic disorders, they are not curative.

Anemia, Aplastic↗

Production of granulocyte-macrophage colony-stimulating factor in two patients with lung cancer, leukocytosis, and eosinophilia.

Leukocytosis in association with malignancy has been well described, but the cause is not known. One potential explanation is production of a colony-stimulating factor by the tumor, and this has been demonstrated in vitro. The authors report two patients with lung cancer, leukocytosis, and eosinophilia. The pleural fluid of both patients contained malignant cells and biologically active granulocyte-macrophage colony-stimulating factor (GM-CSF), as demonstrated by radioimmunoassay, enzyme-linked immunosorbent assay (ELISA), and colony-forming unit-granulocyte-macrophage (CFU-GM) assay. To determine whether GM-CSF is normally detectable in pleural fluid, the authors performed assays on an additional 11 patients with pleural effusions of various origins but without peripheral blood leukocytosis and eosinophilia; only 1 patient had a detectable level of GM-CSF (i.e., greater than or equal to 0.1 ng/ml). Because GM-CSF usually is not present in pleural fluid, the authors postulate that the high levels of GM-CSF found in the pleural fluid of these two patients was produced by their tumors, and production of GM-CSF by their lung cancers likely caused the leukocytosis with eosinophilia.

Adenocarcinoma↗

Bone marrow transplantation versus high-dose cytarabine-based consolidation chemotherapy for acute myelogenous leukemia in first remission.

PURPOSE: Despite substantial progress in the treatment of acute myeloid leukemia (AML), fewer than 25% of patients survive free of leukemia for more than 5 years without allogeneic bone marrow transplantation (BMT). In this study we analyzed the results of one or more cycles of high-dose cytarabine-based consolidation chemotherapy as compared with allogeneic BMT in first remission. PATIENTS AND METHODS: The results in 28 adult patients, aged 16 to 45 years, who underwent a closely HLA-matched BMT for AML in first remission were compared with those in 54 consecutive, age-matched, adult patients treated with one or more cycles of high-dose, cytarabine-based consolidation chemotherapy. RESULTS: After a median follow-up of 4 years, the actuarial risk of leukemic relapse was considerably lower in the transplant group than in the group treated with consolidation chemotherapy (32% +/- 26% v 60% +/- 14%; P = .05). Treatment-related mortality, however, was much higher in the group treated with BMT (32% v 6%, P = .002). The actuarial disease-free survival at 5 years was not significantly different for the two groups (45% +/- 24% v 38% +/- 14%). CONCLUSIONS: Our results show that BMT in first remission AML did not offer a disease-free survival advantage over intensive postremission consolidation chemotherapy. Larger studies are needed to identify patients who might benefit most from BMT.

Actuarial Analysis↗

HTLV-I and HTLV-II tax trans-activate the human EGR-1 promoter through different cis-acting sequences.

The immediate-early response gene, EGR-1, encodes a zinc finger-containing transcription factor that is involved in growth and differentiation of a variety of cell types. EGR-1 is induced in normal T cells following mitogenic stimulation and has recently been shown to be constitutively expressed in human T-cell leukemia virus type I (HTLV-I)- and type II (HTLV-II)-transformed T-cell lines. The trans-activating protein of HTLV-I, Tax, has been demonstrated to trans-activate promoters of a number of cellular genes, some of which may be critical in regulating T-cell proliferation. In this study, we examine the effect of Tax on expression of EGR-1 in three T-cell lines and demonstrate that both HTLV-I and -II Tax are capable of trans-activating human EGR-1 recombinant promoter constructs. Interestingly, HTLV-I and -II Tax trans-activate the human EGR-1 promoter through different promoter regions in the Jurkat cell line, suggesting that HTLV-I and -II Tax may lead to constitutive expression of EGR-1 through different signaling pathways. Deregulated expression of EGR-1 may contribute to uncontrolled cell growth and transformation during early stages of T-cell activation in HTLV-I and -II-infected cells.

Base Sequence↗

In vitro production of granulocyte-macrophage colony-stimulating factor in aplastic anemia: possible mechanisms of action of antithymocyte globulin.

Various abnormalities of lymphokine production have been described in patients with aplastic anemia. To determine if abnormal production of hematopoietic growth factors could contribute to the process of aplastic anemia we studied the in vitro production of human granulocyte-macrophage colony-stimulating factor (GM-CSF) and interleukin-3 (IL-3) by phytohemagglutinin (PHA)- and antithymocyte globulin (ATG)-stimulated peripheral blood lymphocytes from 29 patients with aplastic anemia and 15 normal controls. GM-CSF production in response to 1% PHA was seen in nearly all samples (43 of 44) and similar amounts of GM-CSF were produced by patients with aplastic anemia and normal controls. Production of GM-CSF by ATG-stimulated lymphocytes was seen in 7 of 23 patients with aplastic anemia (30%); two of these patients also demonstrated low-level spontaneous production of GM-CSF. Production of GM-CSF in response to ATG was also seen in 2 of 11 normal controls (18%) and barely detectable spontaneous production of GM-CSF was seen in both. Biologically active IL-3 could also be detected in PHA- or ATG-stimulated peripheral blood mononuclear cells in several patients and normal controls. Our results indicate that lymphocytes from patients with aplastic anemia can be stimulated in vitro to produce normal quantities of GM-CSF, suggesting that impaired potential for production of T-cell derived hematopoietic growth factors is unlikely to account for the marrow hypoplasia seen. In several patients overproduction of GM-CSF was observed, consistent with the notion that some patients with aplastic anemia may have circulating activated T cells. We also demonstrate that ATG can stimulate the production of growth factors such as IL-3 and GM-CSF, supporting the role for ATG in stimulating hematopoiesis.

Adult↗

Recombinant human erythropoietin and renal anemia: molecular biology, clinical efficacy, and nervous system effects.

Anemia (hematocrit less than 25%) predictably accompanies chronic renal failure and is present in over 90% of patients on chronic dialysis. Relative erythropoietin deficiency is the proximate cause. Recombinant human erythropoietin recently became available for research and clinical use. Erythropoietin production is regulated by a single copy gene located on chromosome 7; its expression has been shown in the kidney, liver, and macrophages. It is glycosylated protein of 166 amino acids with a molecular weight of 34,000 D. When given to patients with the anemia of renal failure, erythropoietin causes a dose-dependent rise in hematocrit to the normal range within 8 to 14 weeks. Complications of this response are minimal except for a significant incidence of hypertension. When the anemia is corrected, the patient's quality of life, cognitive function, and brain electrophysiology improve dramatically. Recombinant human erythropoietin represents a major breakthrough in the treatment of patients with chronic renal failure. Current reimbursement constraints limit its full application.

Anemia↗

Human granulocyte-macrophage colony-stimulating factor (GM-CSF): regulation of expression.

GM-CSF is a potent hematopoietic growth factor which exerts its effects on hematopoietic cell growth both in vivo and in vitro. In addition, GM-CSF has profound effects enhancing the functional activity of circulating effector cells. GM-CSF can be produced by a variety of cell types in response to immune stimuli; both T-cells and macrophages produce GM-CSF upon activation. Furthermore, activated macrophages secrete IL-1 and TNF, which can stimulate GM-CSF production by certain types of endothelial and fibroblast cells. This local production of GM-CSF could then act on circulating neutrophils, monocytes and eosinophils to enhance their functions in host defense. Thus, one can envision a paracrine system in which the production of GM-CSF is sensitive to immune stimulation, and as a result of GM-CSF production, effector cells are recruited and their activities enhanced (Figure 4). The role of GM-CSF and other CSFs and interleukins in the homeostatic control of hematopoiesis is the subject of intense investigation. Careful integration of molecular and biological studies should yield exciting new information about both the physiologic and therapeutic roles of GM-CSF.

Base Sequence↗

Bone marrow transplantation for severe aplastic anemia. Effect of a preparative regimen of cyclophosphamide-low-dose total-lymphoid irradiation and posttransplant cyclosporine-methotrexate therapy.

Twenty-nine patients with severe aplastic anemia were entered into a study of pre- and posttransplant immunosuppressive therapy for bone marrow transplantation. Four of twenty-five previously transfused recipients prepared with cyclophosphamide 200 mg/kg and total-lymphoid irradiation 3 Gy experienced graft failure, indicating that this regimen was inadequate to ensure sustained engraftment. Posttransplant treatment with cyclosporine and methotrexate resulted in an actuarial incidence for grade greater than or equal to 2 graft-versus-host disease of 22 +/- 16%. Actuarial survival was 78 +/- 15%. These data indicate that more effective treatment is necessary to prevent graft failure, but since many patients can be successfully retransplanted, overall survival is comparable to other recent studies.

Adolescent↗

Multiple mechanisms control the expression of granulocyte-macrophage colony-stimulating factor by human fibroblasts.

Human granulocyte-macrophage colony-stimulating factor (GM-CSF) has in vitro and in vivo effects on hemopoiesis and enhances the function of circulating mature myeloid cells. Unstimulated fibroblasts show low level GM-CSF transcription but no accumulation of GM-CSF mRNA or protein, whereas fibroblasts stimulated by TNF-alpha, IL-1, and phorbol diester have been shown to produce and secrete GM-CSF. To determine the mechanisms controlling the expression of GM-CSF in human fibroblasts, we used a transient transfection assay to look at the effect of TNF-alpha, IL-1 and phorbol diester on GM-CSF promoter sequences. Our results demonstrate that the phorbol diester, 12-O-tetradecanoylphorbol 13-acetate, can stimulate GM-CSF transcription via sequences located within 53 bp upstream of the GM-CSF cap site. TNF-alpha and IL-1 had no effect on GM-CSF transcription, suggesting that these cytokines act predominantly post-transcriptionally to stimulate production of GM-CSF. Our results demonstrate that multiple mechanisms can be used by human fibroblasts to produce GM-CSF in response to various inflammatory stimuli.

Base Sequence↗

Treatment of refractory aplastic anemia with recombinant human granulocyte-macrophage-colony-stimulating factor.

Fifteen patients with refractory aplastic anemia or agranulocytosis received treatment with recombinant human granulocyte-macrophage-colony-stimulating factor (rhGM-CSF) in doses from 4 to 64 micrograms/kg/d by continuous intravenous (IV) infusion. Ten of 11 evaluable patients with aplastic anemia had substantial increments in granulocytes, monocytes, and eosinophils associated with myeloid and eosinophilic hyperplasia in the bone marrow. Patients with pretreatment granulocytes greater than 0.3 x 10(9)/L had greater increments in circulating myeloid cells than patients with more severe granulocytopenia. Only one patient had improvement in erythrocytes and platelets. Blood counts fell to baseline after rhGM-CSF treatment was discontinued. Doses up to 16 micrograms/kg/d were relatively well tolerated in the absence of extreme leukocytosis. Fatigue and myalgia were common. Three patients developed pulmonary infiltrates that resolved with discontinuation of treatment. Patients tended to have recurrent inflammation in previously diseased tissues. These data indicate that rhGM-CSF will increase circulating granulocytes, monocytes, and eosinophils in patients with refractory aplastic anemia. Further studies are necessary to determine if rhGM-CSF treatment will reduce morbidity or improve survival.

Anemia, Refractory↗

Efficacy of intensive chemotherapy for acute myelogenous leukemia associated with a preleukemic syndrome.

One hundred ninety-six patients with acute myelogenous leukemia (AML) were treated with intensive induction chemotherapy using similar daunorubicin/cytarabine/thioguanine regimens. Treatment results of 44 patients who had a documented preleukemic syndrome or cytopenia present for more than 2 months before developing over AML were compared with 152 patients with de novo AML. Eighteen (41%) patients with preleukemia evolving into AML achieved complete remission compared with 111 (73%) patients with de novo AML (P less than .01). Patients with preleukemia-AML had a significantly longer period to recovery of granulocytes. Multivariate analysis indicated that presence of a previous preleukemic syndrome and advancing age were independent poor prognostic indicators for achieving remission. For patients who achieved remission, disease-free survival and overall survival were also inferior for patients with previous preleukemia; disease-free survival was 17 +/- 17% at 3 years compared with 29 +/- 10% in patients with de novo AML (P = .02). These data indicate that intensive chemotherapy has limited efficacy in patients with AML following a preleukemic syndrome. Durable remissions may be achieved in some patients.

Age Factors↗

Activation of the GM-CSF promoter by HTLV-I and -II tax proteins.

Production of granulocyte-macrophage colony-stimulating factor (GM-CSF) by normal T lymphocytes requires activation by antigen, mitogen or lectin, whereas T-cell lines transformed by human T-cell leukemia virus type I (HTLV-I) or type II (HTLV-II) constitutively produce high levels of GM-CSF. Using transient cotransfection assays, we demonstrate that introduction of the tax gene of either HTLV-I or HTLV-II is sufficient to activate GM-CSF promoter constructs in an unstimulated T-cell line. The GM-CSF 5' flanking sequences previously shown to be sufficient for GM-CSF induction following T-cell activation are also sufficient for activation by the HTLV tax proteins. The sequences required for trans-activation of GM-CSF are distinct from those required for the activation of other T-cell-inducible genes (IL-2R alpha, IL-2) by tax, suggesting that tax can have pleiotropic effects on gene expression in T cells. Constitutive GM-CSF production by HTLV-infected T cells may therefore be due to trans-activation of its promoter by tax. Expression of GM-CSF by HTLV-I infected lymphocytes may be important in the granulocytosis and eosinophilia frequently seen in patients with HTLV-I-induced adult T-cell leukemia/lymphoma.

Animals↗

Serum cholesterol-lowering activity of granulocyte-macrophage colony-stimulating factor.

Human granulocyte-macrophage colony-stimulating factor (GM-CSF) is a glycoprotein hormone that stimulates the growth of hematopoietic progenitor cells and enhances the functional activity of mature myeloid effector cells. Granulocyte-macrophage colony-stimulating factor was administered to eight patients with severe aplastic anemia in an attempt to restore adequate hematopoiesis. Profound decreases in serum cholesterol concentrations were observed during GM-CSF therapy that were not dependent on changes in the patients' peripheral blood cell counts. Serum cholesterol levels decreased by an average of 37% during treatment, reaching levels of less than 4.40 mmol/L in all patients. Serum cholesterol concentrations returned to baseline in all patients after discontinuation of GM-CSF therapy. Treatment with GM-CSF prominently alters cholesterol homeostasis in vivo, although the mechanism of this effect is unknown. Our results suggest that GM-CSF may be potentially useful in the treatment of hypercholesterolemia and, possibly, in the prevention and treatment of atherosclerosis.

Adolescent↗