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Biomedical subjects

D Metcalf

Publications and source records attributed to D Metcalf.

At least 19 recordsLinked to original sources

Plasminogen activator in granulocyte-macrophage-CSF transgenic mice.

The pattern of expression of urokinase type plasminogen activator (PA) in granulocyte-macrophage-CSF transgenic mice and their normal littermates was studied using RNAse protection assays and a plasminogen-dependent fibrinolytic assay for PA. Urokinase type PA mRNA was expressed at a high level in transgenic peritoneal cells and at a lower level in transgenic eye tissue and spleen, but not in equivalent tissue from the normal mice. Enzymically active PA was detectable in protein extracts from peritoneal cells taken from transgenic mice of less than 8 wk of age (young mice) but not from normals. Paradoxically, extracts from transgenic mice of more than 12 wk of age (old mice) showed little detectable PA activity despite continuing transcription in some mice of this age. The production of PA by peritoneal cells may be responsible for the spontaneous i.p. bleeding which is a feature of the transgenic mice and production in other tissues may help explain the local pathologic changes.

Age Factors

A major binding protein for leukemia inhibitory factor in normal mouse serum: identification as a soluble form of the cellular receptor.

A protein that specifically binds leukemia inhibitory factor (LIF) has been isolated from normal mouse serum by using four successive fractionation steps: chromatography on a LIF affinity matrix, anion-exchange chromatography, size-exclusion chromatography, and preparative native gel electrophoresis. The purified LIF-binding protein (LBP) is a glycoprotein with an apparent molecular mass of 90 kDa that specifically binds 125I-labeled murine LIF with an affinity comparable to that of the low-affinity cellular LIF receptor (Kd = 600 pM). N-terminal sequencing has identified this protein as a soluble truncated form of the alpha chain of the cellular LIF receptor. LBP is present in normal mouse serum at high levels (1 microgram/ml) and these levels are elevated in pregnant mice and reduced in neonatal mice. Since normal serum concentrations of LBP can block the biological actions of LIF in culture, LBP may serve as an inhibitor of the systemic effects of locally produced LIF.

Amino Acid Sequence

Abnormalities of the left temporal lobe and thought disorder in schizophrenia. A quantitative magnetic resonance imaging study.

BACKGROUND: Data from postmortem, CT, and magnetic resonance imaging (MRI) studies indicate that patients with schizophrenia may have anatomical abnormalities of the left temporal lobe, but it is unclear whether these abnormalities are related to the thought disorder characteristic of schizophrenia. METHODS: We used new MRI neuroimaging techniques to derive (without knowledge of the diagnosis) volume measurements and three-dimensional reconstructions of temporal-lobe structures in vivo in 15 right-handed men with chronic schizophrenia and 15 matched controls. RESULTS: As compared with the controls, the patients had significant reductions in the volume of gray matter in the left anterior hippocampus-amygdala (by 19 percent [95 percent confidence interval, 3 to 36 percent]), the left parahippocampal gyrus (by 13 percent [95 percent confidence interval, 3 to 23 percent], vs. 8 percent on the right), and the left superior temporal gyrus (by 15 percent [95 percent confidence interval, 5 to 25 percent]). The volume of the left posterior superior temporal gyrus correlated with the score on the thought-disorder index in the 13 patients evaluated (r = -0.81, P = 0.001). None of these regional volume decreases was accompanied by a decrease in the volume of the overall brain or temporal lobe. The volume of gray matter in a control region (the superior frontal gyrus) was essentially the same in the patients and controls. CONCLUSIONS: Schizophrenia involves localized reductions in the gray matter of the left temporal lobe. The degree of thought disorder is related to the size of the reduction in volume of the left posterior superior temporal gyrus.

Adult

The clonal proliferation of normal mouse hematopoietic cells: enhancement and suppression by colony-stimulating factor combinations.

Combinations of relatively high concentrations of the four colony-stimulating factors (CSFs) in cultures of normal mouse bone marrow cells stimulated subadditive responses in the number of colonies developing but, with some combinations, superadditive increases in mean cell numbers per colony. This latter effect was due largely to the induced development of small numbers of giant colonies containing macrophages with or without granulocytes. However, in cultures including a combination of granulocyte-macrophage-CSF (GM-CSF) with macrophage-CSF (M-CSF), a selective reduction in the number of pure macrophage colonies was observed together with a change in the morphology of those colonies that did develop. Recloning studies on macrophage colonies showed that the inhibitory action of the GM-CSF plus M-CSF combination was a direct one on the colony cells. The example of inhibition observed suggests that combined stimulation by two positive growth factors can sometimes result in a selective reduction of the production of certain cells, a possibility needing further exploration.

Animals

Synergistic suppression: anomalous inhibition of the proliferation of factor-dependent hemopoietic cells by combination of two colony-stimulating factors.

Cells of the continuous murine hemopoietic cell line FDC-P1 expressing macrophage-colony-stimulating factor (M-CSF) receptors following retroviral insertion of murine c-fms cDNA proliferated clonally when stimulated by granulocyte/macrophage (GM)-CSF, multipotential CSF, or M-CSF. However, M-CSF combined with either GM-CSF or multi-CSF, even at low CSF concentrations, strongly inhibited colony formation, with loss of clonogenicity in affected cells accompanied by increased macrophage differentiation. Stimulation by these CSF combinations did not induce short-term changes in CSF receptor expression or internalization. FDC-P1 cells expressing another inserted tyrosine kinase receptor, basic fibroblast growth factor receptor, did not exhibit suppression when GM-CSF was combined with fibroblast growth factor. This phenomenon of synergistic suppression may have relevance for the future clinical use of combinations of CSFs, because a potentially similar suppression is also observable with some normal macrophage progenitor cells.

Animals

The excess numbers of peritoneal macrophages in granulocyte-macrophage colony-stimulating factor transgenic mice are generated by local proliferation.

Mice transgenic for the hemopoietic growth factor, granulocyte-macrophage colony-stimulating factor (GM-CSF), exhibit a sustained elevation of GM-CSF levels and a 50-100-fold elevation of peritoneal macrophage cell numbers. The excess cell numbers were found to be generated in pre-adult life, with numbers remaining relatively constant thereafter. In the pre-adult period, no abnormalities were noted in the number or composition of blood, bone marrow, or spleen cells, the type or number of GM progenitor cells in the marrow or spleen, or the rate of appearance of newly formed monocytes in the peripheral blood. Peritoneal macrophages in pre-adult transgenic mice exhibited elevated mitotic activity and, after tritiated thymidine labeling, a more rapid accumulation of labeled progeny. The increase in peritoneal macrophage cell numbers appears, therefore, to be based on a GM-CSF-induced increase in local proliferative activity by peritoneal macrophages. This increased activity declined at the age of 8-10 wk, in parallel with a change in the morphology of the transgenic macrophages and an increase in binucleate and multinucleate macrophages arising by cell fusion. This change in macrophage phenotype was restricted to the transgenic mice and may therefore be a consequence of continued overstimulation by GM-CSF.

Age Factors

Cross-species comparison of the sequence of the leukaemia inhibitory factor gene and its protein.

Leukaemia inhibitory factor (LIF) is a pleiotropic growth factor active in diverse cell systems in both the adult and the embryo. The LIF gene from a number of mammalian species is highly conserved. The ovine and porcine LIF genes were cloned, sequenced and compared to the previously published murine and human LIF gene sequences. While the coding regions of the LIF gene are highly conserved, the non-coding regions are largely non-conserved. In a region of approximately 340 bp, the 5' end of the translational initiation codon is highly conserved (84%). This region includes four conserved TATA boxes, two transcriptional start-sites identified in the murine gene and the minimal region required to function as the LIF promoter. A sequence in the murine gene adjacent to this highly conserved region which appears to contain a negative control element is, however, poorly conserved between the four species compared, except for a sequence of 16 conserved nucleotides. Within the largely non-conserved first intron, there is a block of approximately 150 nucleotides which is highly conserved between all four species (approximately 72%). However, a sequence in intron 1 of the murine LIF gene which corresponds to an alternative exon of a putative variant LIF transcript is very poorly conserved between species, with only relics of this exon evident in the other three species. A comparison of the five LIF protein sequences available (murine, rat, human, ovine and porcine) revealed that the protein displays a high degree of similarity, ranging from 74% between mouse and sheep to 92% between rat and mouse. Several large blocks of absolutely conserved amino acid sequence were identified. The ovine LIF gene was modified to allow production of recombinant ovine LIF in yeast cells, which was shown to be biologically active on murine cells.

Amino Acid Sequence

Actions of leukaemia inhibitory factor on megakaryocyte and platelet formation.

Leukaemia inhibitory factor (LIF) is able to potentiate megakaryocyte colony formation in cultures of mouse bone marrow cells in the presence of multi-CSF (interleukin 3). Membrane receptors for LIF are present on mouse megakaryocytes and receptor numbers increase with increasing maturation of the cells. When injected into normal mice at doses of 0.2-2 micrograms two to three times daily, LIF induced a rise in platelet numbers, which reached up to twice normal values during the second week of injections. This rise was preceded by a rise first in megakaryocyte progenitor numbers, then in mature megakaryocytes in the bone marrow and spleen. Injections of LIF also marginally accelerated platelet regeneration in mice pre-injected with 5-fluorouracil or subjected to whole-body irradiation and transplantation of marrow cells. In view of similar responses to LIF in parallel studies in primates, clinical trial of LIF in patients with thrombocytopenia is warranted.

Animals

Distribution and binding properties of receptors for leukaemia inhibitory factor.

The pleiotropic biological actions of leukaemia inhibitory factor (LIF) on haemopoietic cells (macrophages and megakaryocytes), hepatocytes, osteoblasts, pre-adipocytes, embryonic stem cells, myoblasts and neuronal cells must be mediated through the interactions of LIF with specific cellular receptors. The demonstration by equilibrium binding analysis and autoradiography of LIF receptors on all of the above cells and cell lines suggests that each of these pleiotropic effects of LIF is mediated by direct interactions with the responding cells rather than by the indirect release of secondary cytokines. Despite the differing biological effects of LIF on these cells, equilibrium binding, kinetic analyses and receptor internalization studies have all suggested that these cells display essentially identical high affinity LIF receptors. Nevertheless, there is evidence on some cell types (granulocyte-macrophage colony-stimulating factor [GM-CSF] transgenic peritoneal cells and F9 embryonal carcinoma cells) for a second class of low affinity LIF receptors (Kd = 1.5 nM versus Kd = 30 pM for high affinity receptors) which, LIF receptors (Kd = 1.5 nM versus Kd = 30 pM for high affinity receptors) which differ from the high affinity receptors only in kinetic dissociation rate. Moreover, the evidence suggests that low and high affinity receptors are structurally related and interconvertible, because detergent solubilization of LIF receptors from any cell type results in the quantitative conversion of high affinity receptors into low affinity receptors. As is the case for other related cytokine receptors, these data suggest that high affinity LIF receptors may be composed of two protein subunits--one responsible for LIF-specific low affinity binding and the other responsible for affinity conversion and cell signalling by the receptor. Such a model provides a possible explanation for the pleiotropy of LIF's biological actions.

Animals

The hemopoietic regulators--an embarrassment of riches.

A large, and growing, group of glycoprotein regulators is now recognized to control the proliferation, maturation and functional activity of the eight major families of blood cells. Each hemopoietic regulator is the product of multiple cell types and there is a puzzling redundancy of regulators able to stimulate each subfamily of hemopoietic cells. Each regulator is polyfunctional but it remains unclear how a single type of activated receptor is able to initiate the diverse cellular responses induced.

Animals

Mechanisms responsible for size differences between hemopoietic colonies: an analysis using a CSF-dependent hemopoietic cell line.

Cells of the colony stimulating factor (CSF)-dependent continuous hemopoietic cell line 32Dcl-3 generate strikingly different large, medium and small colonies in semisolid cultures. Reculture of cells from such colonies showed that all colony types contained clonogenic cells able again to form colonies of all three size types. Clone mapping showed that late initiation of colony formation did not account for the final size difference between colonies, a conclusion confirmed by mapping studies on normal CSF-stimulated murine granulocyte-macrophage colonies. Clonogenic cells within 32 D Clone 3 (32Dcl-3) colonies varied in quantitative responsiveness to CSF stimulation. This responsiveness was generally lower than that of the initiating clonogenic cell and was higher with cells from small colonies than with cells from corresponding large colonies. The data eliminated differences in intrinsic proliferative potential, cellular hierarchy, cell cycle times or responsiveness to CSF stimulation as an adequate explanation for colony size differences. Colony size differences may possibly arise from random differences in the sequence of self-generative versus differentiative divisions in clonogenic cells in developing clones.

Animals

Hemopoietic regulators.

The production and maturation of blood cells from the eight major blood cell lineages is a complex and continuous process, which is largely controlled by specific glycoprotein hemopoietic regulators. These regulators also control the functional activity of the blood cells through eliciting a diverse set of intracellular responses initiated by a regulator-specific membrane receptor. Twenty of these regulators have now been characterized, and their mass production has led to four already being licensed for clinical use in disease states involving subnormal blood cell formation.

Animals

Bone marrow cells from A/J mice do not proliferate in interleukin-3 but express normal numbers of interleukin-3 receptors.

Haemopoietic cells from A/J mice do not form colonies (proliferate) in response to interleukin-3 (multi-CSF, IL-3). We have examined different populations of cells from A/J mice and shown that, despite their failure to proliferate in response to IL-3, cells from bone marrow, spleen and the peritoneum all bound 125I-labelled IL-3. A wide variety of cell types bound IL-3 as determined by autoradiography, including promyelocytes, myelocytes, metamyelocytes, polymorphs, promonocytes, monocytes, eosinophils and lymphocytes, but not nucleated erythroid cells, and the proportion of each cell type binding label was similar when cells from A/J mice were compared with those of C57B1/6 and Balb/c mice. Bone marrow cells from A/J mice internalized interleukin-3 with normal kinetics and mRNA extracted from these cells contains the same species of IL-3 receptor and IL-3 receptor-like mRNAs as are found in the other strains. Collectively the data suggest that the failure of haemopoietic cells from A/J mice to proliferate in response to IL-3 is related to a selective defect in signalling to proliferation specific genes. This defect is apparently not related to internalization or processing of the IL-3/IL-3-receptor complex, but may be due to failure to activate appropriate accessory molecules in the cell.

Animals

Leukemia inhibitory factor levels are elevated in septic shock and various inflammatory body fluids.

Leukemia inhibitory factor (LIF) has many biological actions which parallel those of IL-1, IL-6 and tumor necrosis factor-alpha, but its role in the pathogenesis of human disease is unknown. A specific radioreceptor competition assay capable of detecting LIF at concentrations above 1 ng/ml (45 pM) was developed. To identify disease states in which LIF might be involved, a cross-sectional survey of serum and body fluids from approximately 1,500 subjects with a variety of diseases was performed using the LIF radioreceptor competition assay. Serum LIF concentrations were transiently elevated (2-200 ng/ml) in six subjects with meningococcal or Gram-negative septic shock, and in a subject with idiopathic fulminant hepatic failure. Moderately elevated LIF concentrations (> 10 ng/ml) were detected in cerebrospinal fluid from subjects with bacterial meningitis, in effusions associated with pneumonia and peritonitis, and in amniotic fluid from a woman with chorioamnionitis. Low LIF concentrations (1-10 ng/ml) were present in synovial fluid from subjects with inflammatory arthritis, amniotic fluid from women in labor, and some reactive, chronic inflammatory and malignant effusions and cyst fluids, but rarely in transudates. These initial findings suggest that LIF might be involved in the pathogenesis of inflammation and septic shock.

Amniotic Fluid

Leukemia inhibitory factor--a puzzling polyfunctional regulator.

LIF seems likely to have important functions in the early developing embryo and in adult life can influence platelet formation, osteoblast and neuronal function, calcium and lipid metabolism and the production of acute-phase proteins. LIF appears usually to be produced and to function locally in various tissues, an arrangement that would minimize unwanted actions of this polyfunctional regulator. Nevertheless it remains puzzling what purpose is achieved by use of a regulator with potent actions on such a wide range of apparently unrelated tissues.

Animals

Fatal polycythemia induced in mice by dysregulated erythropoietin production by hematopoietic cells.

C57BL/6J murine bone marrow cells, infected with a retroviral vector (MP Zen) carrying a monkey erythropoietin cDNA, were transplanted into lethally irradiated syngeneic recipients to study the effect of erythropoietin production by hemopoietic cells. High levels of erythropoietin were recorded in the plasma (median value: 1.2 u/ml) and in media conditioned by peritoneal, spleen, and bone marrow cells from recipient mice. In transplanted mice, the hematocrit was elevated (90 +/- 5%) and the mice died at a mean of 71 days after transplantation. In the blood, platelet counts were usually low and nucleated blood cells slightly elevated. Spleen weight increased 5-fold and bone marrow cellularity decreased slightly. There was a 9.9-fold increase in erythroblast numbers, a 2-fold reduction of lymphocytes, and no variation of the myeloid cells when the total cellularity of bone marrow, spleen, peripheral blood, and peritoneal cells were considered. Calculation of the total numbers of progenitor cells in these organs revealed a 18-fold increase in erythroid colony-forming units (CFU-E) but no significant variation of the erythroid burst-forming units (BFU-E), and myeloid progenitor cell numbers. A variable proportion of CFU-E, (12% or 24% in bone marrow or spleen, respectively) was able to proliferate in unstimulated cultures. Erythropoietic amplification occurred in the spleen and there was a redistribution of the BFU-E and myeloid cells from the bone marrow to the spleen. No significant extramedullary erythropoiesis was seen. This study emphasizes the erythroid specificity of erythropoietin and shows that elevated dysregulated erythropoietin production by hemopoietic cells leads to a fatal polycythemia without erythroid neoplastic transformation.

Animals