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Biomedical subjects

R Mertelsmann

Publications and source records attributed to R Mertelsmann.

At least 235 records · Page 13Linked to original sources

Retrospective analysis of ras gene activation in myeloid leukemic cells.

Ras genes are activated by point mutations at critical sites of their coding regions. Activated N-ras genes with transforming ability have been detected in patients with myelodysplastic syndromes (MDS), acute myelogenous leukemia (AML) and in human myeloid cell lines. We used polymerase chain reaction (PCR), differential oligonucleotide hybridization and direct DNA sequencing to retrospectively analyze the N-ras gene of blast cells from the same patient (a) at time of diagnosis of MDS, (b) after the patient had developed AML. Two types of archival tissue samples served as a source of cells. Different passages of the KG-1 myeloid cell line which had been established from leukemic blasts of this patient were also analyzed. We found that native blast cells isolated at either of the two disease stages did not carry an N-ras mutation, and neither did early passage KG-1 cells. However, direct DNA sequencing of PCR-amplified DNA from nude mice transformants induced by DNA from late passage of the KG-1 cell line revealed two linked mutations involving both the second nucleotide of codon 12 and the third nucleotide of codon 15 of N-ras. The nucleotide substitution at codon 15 did not result in an amino acid substitution (silent mutation). The mutations probably occurred during prolonged passaging of the KG-1 cells and might have been overlooked by oligonucleotide hybridization assay.

Animals↗

Granulocyte-macrophage colony-stimulating factor and interleukin-3 induce surface expression of interleukin-2 receptor p55-chain and CD4 by human eosinophils.

In this report it is shown by immunofluorescence analysis, biochemical analysis and mRNA hybridization that human eosinophils express surface CD4 and interleukin-2 receptor (IL-2R) (CD25) when exposed to eosinophil activators granulocyte-macrophage colony-stimulating factor (GM-CSF) and IL-3. Although the functional role of eosinophil CD4/CD25 expression has to be elucidated, it will be of interest in further studies to investigate whether in vivo induction of these molecules occurs in association with certain disease processes such as the hypereosinophilic syndrome or in immunological responses during allergic and helminthic parasitic diseases.

Blotting, Northern↗

In vivo recruitment of GM-CSF-response myelopoietic progenitor cells by interleukin-3 in aplastic anemia.

Previous studies have indicated that colony-stimulating factors may stimulate myelopoiesis and thus increase the number of circulating white blood cells in patients with hematopoietic failure including aplastic anemia. However, long-term administration of the factor was required to maintain its response. In the present article we report on a patient with severe aplastic anemia undergoing treatment with recombinant human (rh) granulocyte-macrophage colony-stimulating factor (GM-CSF). After an initial response, the patient became refractory to GM-CSF. However, treatment with interleukin (IL)-3 restored responsiveness to GM-CSF, suggesting that IL-3 may have replenished the bone marrow with myelopoietic progenitor cells sensitive to the action of GM-CSF. This observation suggests the value of application of sequentially acting hematopoietic growth factors in aplastic anemia patients.

Anemia, Aplastic↗

Stimulation of granulopoiesis in patients with malignancy by recombinant human granulocyte-macrophage colony-stimulating factor: assessment of two routes of administration.

We administered Escherichia coli-derived recombinant human granulocyte-macrophage colony-stimulating factor to 61 patients with malignancy, 36 of whom had normal peripheral blood counts and 25 of whom had peripheral cytopenia due to underlying bone marrow disease, to compare the efficacy of two different routes of administration to stimulate the in vivo granulopoiesis: i.e., continuous i.v. infusion and s.c. injection. Three well-tolerated dose levels were investigated. Application of granulocyte-macrophage colony-stimulating factor resulted in dose-dependent increases in circulating neutrophils, eosinophils, and monocytes and an increase in bone marrow cellularity, irrespective of route of administration. In some patients, mild side effects, including bone pain, dyspnea, flu-like symptoms, and a decrease of platelet counts, were recorded, but they were less pronounced when the hormone was administered subcutaneously.

Adolescent↗

Hematopoietic growth factors in oncology.

Hematopoietic growth factors, or hemopoietins, are peptide hormones produced by peripheral blood cells, bone marrow stroma, as well as several other cell types, such as endothelial cells and fibroblasts. Hemopoietins play a central role in regulating peripheral blood cell number and function. By recombinant DNA technology, several of these factors, also called colony-stimulating factors (CSF) or interleukins, are now available in such quantities to allow clinical evaluation. First experiences in clinical trials show that these peptides are capable of stimulating production of various cell types of the peripheral blood by stimulation of bone marrow progenitor cells without significant toxicity for the patient under treatment. Treatment of renal anemia by erythropoietin and reduction of chemotherapy-induced myelosuppression by G- and GM-CSF are already defined indications for these hemopoietins. Further studies are under way to test the indication of these factors in other clinical situations as well as studies investigating the biology, pharmacology, and clinical efficacy of interleukin 3 (IL-3).

Hematopoietic Cell Growth Factors↗

Production of macrophage-, granulocyte-, granulocyte-macrophage- and multi-colony-stimulating factor by peripheral blood cells.

The specific cell sources and signals for induction of various colony-stimulating factors (CSF) in peripheral blood mononuclear cells (PBMC), purified T lymphocyte and monocyte (Mo) populations have been investigated. In the absence of exogenous activating stimuli, human PBMC, T cells and Mo failed to produce stable cytoplasmic mRNA for CSF for macrophages (M-CSF or CSF-1), for granulocytes (G-CSF), for granulocytes and macrophages (GM-CSF) and for multilineage CSF [multi-CSF, interleukin (IL) 3] and thus failed to release CSF proteins. However, after stimulation with phorbol myristate acetate and phytohemagglutinin, M-, G-, GM- and multi-CSF mRNA became detectable in PBMC, resulting in the secretion of the respective proteins. Identical culture conditions resulted in synthesis of only G- and M-CSF by purified Mo, whereas purified T lymphocytes produced GM-CSF and multi-CSF only. When Mo or T lymphocytes were exposed to recombinant human interferon-gamma or were stimulated by triggering the epitopes recognized by the monoclonal antibodies anti-Tll2 and Tll3, respectively, again disparate CSF expression patterns were found to be associated with both cell species. Moreover, IL2-receptive T lymphocytes showed the same distinct pattern of CSF secretion when activated by recombinant human IL2.

Colony-Stimulating Factors↗

Role of colony-stimulating factors in the biology of acute myelogenous leukemia.

A high proportion of acute myeloid leukemias (AML) recently investigated for their capacity to synthesize biologically active bioregulatory molecules was found to accumulate messenger (m) RNA and to produce membrane-bound or -secreted forms of stimulating factors for granulocyte, macrophage and mixed granulocyte-macrophage colony growth. Blast cells have also been found to secrete interleukin 1, tumor necrosis factor-alpha, interleukin 6, and to express receptors for various growth factors as well. However, growth factors like interleukin 2 and interleukin 3 have not been identified as AML products, and several other factors including interleukin 4, interleukin 5, etc. need further evaluation. Responsiveness of clonogenic leukemic cells to exogenous growth-promoting factors in vitro suggests a possible role of these biomolecules in the course of these disorders. Important evidence for the crucial role of growth factors, at least in some subtypes of AML, has been provided by demonstrating constitutive growth factor production by leukemic cells and their autonomous in vitro growth which is dependent on autocrine secretion of a specific growth factor. The concert of mechanisms providing stimulatory and inhibitory signals for hematopoiesis, which is adapted to the various physiological requirements of the organism, may have multiple defects in AML. This leads to successive steps of malfunctioning of cells, which finally express a fully malignant phenotype. In addition, these derangements also lead to defects in accessory cells on the level of mediator communication. However, there is evidence for autonomous growth promotion of AML blast by constitutive production of growth factors active in an autocrine fashion (GM-CSF, G-CSF, interleukin 6) and by recruitment of accessory cells to increase CSF supply (GM-CSF, G-CSF) via molecules such as interleukin 1 and TNF-alpha in a paracrine fashion. Molecular analysis of transformed hematopoietic cells has revealed changes of the genome, e.g., insertion of viral genetic information or cytogenetic fractures at DNA sites controlling growth factor gene activation. These events appear to be crucial in the induction of uncontrolled growth factor expression promoting oncogenic transformation of hematopoietic progenitor cells.

Colony-Stimulating Factors↗

Minimal peripheral blood cells carrying clonal markers of B cell disorders: evidence for monoclonality of circulating lymphocytes in patients with multiple myeloma.

Peripheral blood lymphocytes (PBL) of 20 patients with multiple myeloma (MM) were assayed for clonality by Southern blot and cell surface marker analysis. Eight samples showed monoclonal origin of circulating lymphocytes by demonstrating rearrangements of the heavy chain immunoglobulin gene (IgH). In selected experiments, comparison of IgH rearrangements of bone marrow plasma cells and peripheral blood-derived mononuclear cells, highly enriched for B lymphocytes, proved to be identical. However, monoclonal circulating cells could not be detected in samples with rearranged IgH genes by surface marker phenotyping using one-color immunofluorescence analysis and a panel of monoclonal and polyclonal antibodies to various B lineage-associated antigens. These results indicate that in a substantial proportion of MM, monoclonal growth involves circulating B lymphocytes and underscores the clinical usefulness of Southern analysis of IgH gene rearrangements for monitoring this disease.

Antibodies, Monoclonal↗

Polypeptides controlling hematopoietic cell development and activation. I. In vitro results.

Recombinant DNA technology has been central in answering some of the most relevant questions in the research of regulation of the functional status of hematopoietic progenitor cells and their progeny. This leading article will focus on recent results that have emerged from studies utilizing recombinant molecules that control hematopoietic blood cell development and activation. The following features will be detailed: The molecular and biological characteristics and biochemistry of hematopoietic growth factors, synergizing factors and releasing factors, their role in the regulation of hematopoiesis and activation of normal and leukemic cells, their cellular sources, and regulation of production.

Animals↗

Polypeptides controlling hematopoietic blood cell development and activation. II. Clinical results.

Colony-stimulating factors (CSFs) have entered the clinical arena. Several investigators have explored, in first clinical phase I studies, different routes of administration to define the optimum biological dose, maximum tolerated dose, toxicity, and pharmacokinetics of these reagents. It has been demonstrated that recombinant human (rh) granulocyte-macrophage CSF (GM-CSF) and granulocyte CSF (G-CSF) can be safely administered over a broad dose range to increase number of circulating granulocytes in man. More recently, GM-CSF and G-CSF have been involved in phase Ib/II studies to assess the granulopoietic responses of patients with granulocytopenia due to various underlying disease states including myelodysplastic syndrome, aplastic anemia, cyclic neutropenia, Kostmann's syndrome, and the acquired immuno-deficiency syndrome. Both factors were also investigated with respect to their potential to prevent chemotherapy induced granulocytopenia or to accelerate recovery from that condition. The short-term effects of rh GM-CSF after autologous bone marrow transplantation for various solid tumors and lymphoid malignancies were assessed as well. In this article we will focus on recent results that have emerged from in vivo studies utilizing CSFs.

Bone Marrow↗

Lymphokine activated killer cells.

Various subpopulations of human leukocytes may be induced by lymphokines to exert cytotoxic activity. In man major histocompatibility complex non-restricted tumor cell lysis by interleukin-2 (IL-2) induced peripheral blood lymphocytes is attributed mainly to natural killer cells. These T cell receptor negative large granular lymphocytes are called lymphokine activated killer (LAK) cells. In order to explore the potential of LAK cells in tumor therapy, several clinical studies have been conducted, using IL-2 alone or in combination with ex vivo IL-2-activated peripheral blood lymphocytes. Objective responses have reproducibly been achieved only in renal cell carcinoma and malignant melanoma and were associated with considerable toxicity. In view of restricted efficacy and increasing doubts as to whether LAK cells indeed account for the in vivo observed responses, more recent strategies focus on tumor antigen specific cytotoxic T cells or tumor infiltrating lymphocytes. Successful translation of this approach into clinical practice, however, may be dependent on some basic problems of tumor immunology to be solved which were thought to be by-passed by the LAK cell approach.

Animals↗

Granulocyte-macrophage colony-stimulating factor induces cytokine secretion by human polymorphonuclear leukocytes.

Granulocyte-macrophage colony-stimulating factor (GM-CSF) is known as an inducer of proliferation and functional activation of myeloid cells. This study was carried out to characterize the effects of GM-CSF on polymorphonuclear leukocytes (PMN) more extensively. Using Northern blot analysis, we show that PMN are able to accumulate mRNAs for different cytokines, including tumor necrosis factor-alpha (TNF-alpha); G-CSF, and M-CSF, all of which are involved in inflammation and hematopoiesis. Biological assays and immunoassays demonstrate that PMN translate these mRNAs, except TNF-alpha, into secretory proteins. However, the expression of these cytokines is dependent on stimulation by exogenous signals, preferentially provided by the T cell-derived lymphokine GM-CSF. Stimulation of hematopoiesis and amplification of defense mechanisms after T cell activation thus might involve not only monocytes but also PMN, a cell type previously believed to be biosynthetically inactive.

Animals↗

Hematopoietic responses in patients with advanced malignancy treated with recombinant human granulocyte-macrophage colony-stimulating factor.

The in vivo effect of yeast-derived recombinant human granulocyte-macrophage colony-stimulating factor (rh GM-CSF) was investigated in 30 patients with advanced malignancy in a phase Ib trial. Patients were treated at four different dose levels (120 to 1,000 micrograms/m2/d) by either daily intravenous (IV) bolus injection or 24-hour continuous infusion. Administration of rh GM-CSF resulted in a broad spectrum of dose- and schedule-dependent hematopoietic effects. Sustained infusion of rh GM-CSF elicited a maximum 17-fold average peak increase of the total WBC count with mainly neutrophils, eosinophils, and monocytes accounting for this rise, and increases in bone marrow cellularity with a shift to immature myeloid elements. Elevation of lymphocytes, platelets, and reticulocytes was not induced. Within five days after discontinuation of treatment the leukocytosis had disappeared. Adverse reactions encountered with rh GM-CSF seen in 65% of the patients studied were never life-threatening and always rapidly reversible. They included mild myalgias, facial flushing, low-grade fever, headache, bone discomfort, nausea, dyspnea, and transient decline of platelet counts. These results suggest that rh GM-CSF can be safely administered at the doses and schedules used and that it can induce in vivo some of the biological effects reported in in vitro studies. Although no objective antitumour responses have been seen, the ability of rh GM-CSF to increase number and function of leukocytes in vivo may prevent neutropenia and infections when GM-CSF is added to cytotoxic cancer therapy.

Adolescent↗