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Biomedical subjects

V Praloran

Publications and source records attributed to V Praloran.

At least 73 records · Page 4Linked to original sources

Proliferation of LAMA-84 and LAMA-87 cell lines is modulated by autocrine loops involving M-CSF and TGF-beta.

The erythromegakaryocytic cell line (LAMA-84) and the erythroeosinophilic cell line (LAMA-87) were used to study receptor expression and receptor-mediated response to monocyte/macrophage colony-stimulating factor (M-CSF) and transforming growth factor beta (TGF-beta), two modulators of cell proliferation. As demonstrated by Northern blot analysis and reverse transcriptase polymerase chain reaction (RT-PCR), c-fms and M-CSF mRNA were expressed in both cell lines. M-CSF was detected in the supernatant of both cell lines and addition of a neutralizing anti-M-CSF antibody inhibited cell growth. The two LAMA cell lines were found to express TGF-beta1, -beta2, and -beta3 mRNAs and to secrete TGF-beta mostly in latent form. Addition of anti-TGF-beta antibodies to the culture medium increased their proliferation, whereas TGF-beta1 inhibited cell proliferation by downregulating the c-myc mRNA. These results show that the proliferation of both LAMA cell lines is positively and negatively regulated by autocrine mechanisms, implying the presence of M-CSF and TGF-beta, respectively. They suggest that similar autocrine loops could be involved in the growth regulation of leukemic cells in vivo.

Animals↗

Differential expression of transforming growth factor-beta, basic fibroblast growth factor, and their receptors in CD34+ hematopoietic progenitor cells from patients with myelofibrosis and myeloid metaplasia.

Myelofibrosis with myeloid metaplasia (MMM) is a myeloproliferative disorder characterized by clonal expansion of hematopoiesis and marrow fibrosis. Previous results from our group have shown an increased production of two potent fibrogenic factors also involved in the regulation of primitive hematopoietic cells, namely transforming growth factor-beta1 (TGF-beta1) and basic fibroblast growth factor (bFGF), in patients with MMM. It is likely to assume that the myeloproliferation characteristic of this disease may result from an abnormal proliferation of CD34+ hematopoietic progenitors. Thus, we were particularly concerned in studying the gene and protein expression of these cytokines and their receptors in CD34+ progenitors purified from the peripheral blood of MMM patients by using semiquantitative reverse transcriptase-polymerase chain reaction and immunolabeling methods. Our data showed that the expression of TGF-beta1 is not altered in patients CD34+ cells; in contrast, the expression of TGF-beta type II receptor is significantly decreased in such cells, as compared with CD34+ cells from healthy subjects. Regarding bFGF, the very low expression of the cytokine and its type I and II receptors detected in normal CD34+ cells contrasts with that observed in patients' CD34+ cells, which is significantly higher. Our results might be a clue for a better understanding of the mechanism(s) involved in the dysregulation of hematopoiesis in MMM. Actually, the increased expression of bFGF and its receptors associated with the reduction of the TGF-beta binding receptor in CD34+ progenitors from MMM patients might facilitate the expansion of hematopoietic progenitors, not only by stimulating their growth and/or survival, but also by overcoming negative regulatory signals.

ADP-ribosyl Cyclase↗

PAF and haematopoiesis XII: macrophage colony-stimulating factor (M-CSF) decreases platelet-activating factor (PAF) acetylhydrolase production in macrophagic J774 cells.

Platelet-activating factor (PAF) is a phospholipid mediator with major immunoregulatory activities. Macrophages produce PAF acetylhydrolase activity, which regulates blood PAF concentrations. Macrophage colony-stimulating factor (M-CSF) is involved in the differentiation and functions of cells from the monocytic/macrophagic lineage. We found that murine macrophagic J774 cells metabolized PAF with lyso PAF as the major metabolite product. As in mouse plasma, the metabolism of PAF by J774 cells was not inhibited by PMSF, p-BPB, DTNB and quinacrine, M-CSF (100-5000 U/ml) significantly decreased PAF acetylhydrolase activity of the J774 cell without exhibiting a significant effect on cell growth. Elevated concentrations of M-CSF are found in blood and tissues during inflammatory states. It could be suggested that a decreased PAF catabolism by tissue macrophages in response to M-CSF may induce local elevated PAF concentrations, thus amplifying the inflammatory response.

1-Alkyl-2-acetylglycerophosphocholine Esterase↗

Alanine substitution for Thr268 and Asp269 of soluble ciliary neurotrophic factor (CNTF) receptor alpha component defines a specific antagonist for the CNTF response.

Ciliary neurotrophic factor (CNTF) associates with an alpha subunit (CNTFRalpha) of the receptor complex to initiate signal transduction by facilitating heterodimerization of the gp130 transducing protein and the leukemia inhibitory factor receptor (LIFR) beta. CNTFRalpha is anchored to the membrane by a glycosylphosphatidylinositol linkage; however, a soluble form of the alpha subunit can still bind CNTF to recruit the signal transducing components of the receptor complex. In the present study we show that alanine substitution for residues Thr268 and Asp269 of the CNTFRalpha subunit results in a mutated receptor subunit (R3), which can bind CNTF with an affinity similar to that of the wild type CNTFRalpha but, when expressed as a soluble receptor subunit, lowers the binding of CNTF to its tripartite receptor. In addition, CNTFR3alpha inhibits the proliferation of the TF1 hematopoietic cell line triggered by CNTF plus soluble wild type CNTFRalpha but not by IL-6 or oncostatin M. Similarly, CNTFR3alpha specifically antagonizes the induction of gp130 and LIFRbeta tyrosine phosphorylation observed in response to CNTF and wild type soluble CNTFRalpha in the HepG2 hepatoma cell line, as well as the subsequent events leading to haptoglobin synthesis. Positions 268 and 269 of CNTFRalpha appear to be critical for its interaction with gp130 and LIFRbeta, whereby alanine substitution of the residues at these positions results in antagonism of the CNTF-induced response.

Alanine↗

PAF and haematopoiesis. X. Macrophage colony-stimulating factor and granulocyte macrophage colony-stimulating factor enhance platelet-activating factor acetylhydrolase production by human blood-derived macrophages.

Platelet-activating factor (PAF), a phospholipid autacoid with potent regulatory functions, is synthesized by stimulated monocytes. Macrophages are a source of the plasma acetylhydrolase activity (AHA) which regulates PAF concentrations. Granulocyte-macrophage colony-stimulating factor (GM-CSF) and macrophage colony-stimulating factor (M-CSF) are involved in the differentiation and functions of cells from the monocytic/macrophagic lineage. This work reports that M-CSF and GM-CSF stimulated AHA production by human blood monocyte-derived macrophages in a time- and dose-dependent manner. After 7 days of culture without serum, a 6- and 4-fold increase was found in cells treated with M-CSF (1000 U/ml) and GM-CSF (50 ng/ml), respectively. M-CSF (up to 1000 U/ml) and GM-CSF (up to 10 ng/ml) did not induce PAF production by human blood monocytes. While GM-CSF (10 ng/ml) and interleukin-1 (10 U/ml) stimulated M-CSF production from monocyte-derived macrophages, PAF did not. These results indicate that M-CSF and GM-CSF enhance AHA production by human blood-derived macrophages cultured in low serum concentrations. Clearly the effects of growth factors on AHA production in vivo deserve to be assessed.

1-Alkyl-2-acetylglycerophosphocholine Esterase↗

The tetrapeptide AcSDKP, a negative regulator of cell cycle entry, inhibits the proliferation of human and chicken lymphocytes.

The tetrapeptide AcSer-Asp-Lys-Pro (AcSDKP) is a physiological negative regulator of hematopoiesis in mammals. It acts by blocking the cell cycle entry of quiescent stem cells and progenitors. In the present study we report that AcSDKP blocks the proliferation of human as well as chicken lymphocytes. It inhibits by 25 to 40% the polyclonal mitogen- (phytohemagglutinin (PHA), pokeweed mitogen (PWM), or concanavalin A) or mixed lymphocyte reaction-induced proliferation of chicken lymphocytes. A comparable degree of inhibition was observed in human whole blood cultures stimulated by "T" (PHA) or "T and B" (PWM) mitogens. Our results obtained on two phylogenetically distant species show that AcSDKP reduces the lymphocyte proliferation probably by blocking or retarding entry into the cell cycle as previously demonstrated for hematopoietic progenitors and hepatocytes. Therefore, this endogenous, non-species-specific tetrapeptide may be involved in the regulation of immune response.

Animals↗

The tetrapeptide AcSDKP, a physiological inhibitor of normal cell proliferation, reduces the S phase entry of continuous cell lines.

The tetrapeptide AcSer-Asp-Lys-Pro (AcSDKP), a physiological negative regulator of cell proliferation, inhibits the progression of normal quiescent cell to the S phase of the cycle, while it is inactive in the proliferation of permanent cell lines and of freshly isolated leukemic cells. It protects normal hematopoietic stem cells and progenitors from the toxic effects of anticancer drugs. We studied the effects of AcSDKP on the S phase entry of mouse and chicken continuous cell lines MS-K, 3T3, MDCC-PA9, and MDCC-MSB1 lines when they are cultured under these defined conditions. They show that AcSDKP acts on cells previously partially synchronized by culture under conditions of low serum concentrations or serum starvation. Our results demonstrate that AcSDKP reduces the proliferation of these cell of continuous cell lines as it does on hepatocytes or hematopoietic cells in vivo or on freshly isolated cells in vitro, by blocking or retarding their entry into S phase from early G1.

Animals↗

Leukaemia inhibitory factor (LIF) production in pleural effusions: comparison with production of IL-4, IL-8, IL-10 and macrophage-colony stimulating factor (M-CSF).

Leukaemia inhibitory factor (LIF), a pleiotropic cytokine detected in various inflammatory body fluids, plays a poorly defined role in the pathogenesis of human disease. This study was conducted to correlate the LIF concentrations in pleural effusions with the type of pathology and to compare its levels with those of IL-4, IL-8, IL-10 and M-CSF for a given pathology. Pleural fluids from 97 patients were assayed for cytokines by specific ELISAs. The concentrations of all cytokines tested were higher in infectious pleural effusions than in other pathologies (malignant or transudative). The lowest levels were observed for transudates. Significant differences were noted between pathology groups for each cytokine. A good correlation was observed between LIF and IL-8 for malignant effusions [regression correlation coefficient (RC) = 0.480, P < 0.01], between LIF and IL-4 for infectious disorders (RC = 0.543, P < 0.05) between LIF and IL-10 for transudates (RC = 0.798, P < 0.001) and between M-CSF and IL-8 in all pathologies tested except for primitive neoplasia (P < 0.05). The LIF concentration in pleural space seems to be strongly associated with the intensity of inflammatory reaction. The LIF production appears to have different regulatory patterns between aetiologic groups.

Aged↗

Development of enzymo-immunoassays (EIA) for macrophage colony-stimulating factor (M-CSF) and leukaemia inhibitory factor (LIF) by using the same capture and signal generating polyclonal antibody.

Specific high titre polyclonal antibodies rapidly obtained by intralymphnode immunization of rabbits with recombinant M-CSF and LIF (< 60 micrograms/animal) have been used to develop specific, accurate and sensitive EIAs. The same batch of purified anti-M-CSF or anti-LIF Igs has been used for the coating of 96-well plates (capture antibody) and for the quantitative detection of the bound cytokine molecules (soluble biotinylated Igs). The sensitivity (M-CSF: 10 IU/ml, LIF: 20 pg/ml), accuracy (intra-assay-CV: 8.2 to 12.8% for M-CSF; 0 to 19.9% for LIF) and reproducibility (inter-assay-CV: 7.9 to 13.6% for M-CSF; 4.9 to 17.5% for LIF) are equivalent to those for previously published RIAs or EIAs. These assays are highly specific since 11 other cytokines (Epo: 3 IU/ml; G-CSF: 100 IU/ml; CNTF, OSM, SCF, IL-1 beta, IL-2, IL-3, IL-6, IL-11, IL-13: 5 ng/ml) tested in both EIAs were not detectable. Finally, the M-CSF and LIF concentrations measured in various biological fluids were found to be similar to those measured by us and others with different assays. In conclusion, the methodology used for M-CSF and LIF EIAs presented in this work represents a valuable approach for most cytokines, particularly when they are still available in reduced amounts.

Adult↗

A "miniaturized" method for the karyotypic analysis of bone marrow or blood samples in hematological malignancies.

Standard techniques of karyotypic analysis of bone marrow or peripheral blood cells generally use large numbers of cells. Thus, the quantity of cells harvested from one bone marrow or blood puncture frequently represents a limiting factor for other assays such as molecular biology or flow cytometry, which are often essential for the diagnosis of hematological diseases. To resolve this problem, we developed a "miniaturized technique" of cytogenetic analysis that we tested on bone marrow (BM) cells from 20 patients with multiple myeloma (MM), 5 patients with acute leukemia (AL), as well as on CD34+ cells purified from the blood of 8 patients with agnogenic myeloid metaplasia (AMM). We used 3 x 10(6) BM cells from MM patients (for testing 6 different culture conditions), 10(6) BM cells from AL (2 culture conditions) and 4 x 10(3) CD34+ cells from AMM patients. In most patients, 20 good quality metaphases per slide were easily analyzed, showing that a 10-40 times reduction of the number of cells used for cytogenetics allows a reliable karyotypic analysis in hematological malignancies.

Bone Marrow↗

Deletion of chromosome 20q associated with hypereosinophilic syndrome. A report of two cases.

Deletion of the long arm of chromosome 20--del(20q)--is commonly associated with myeloid malignancies, in particular with myeloproliferative disorders (MPD), myelodysplastic syndrome (MDS), and acute myelogenous leukemia (AML). Its association with the hypereosinophilic syndrome (HES) had never been reported. In the present study we describe two patients with long-standing hypereosinophilia and features of atypical MPD or MDS carrying a del(20q) as a constant and isolated chromosomal abnormality. One patient, with an aggressive clinical course, died within 2 years, despite several lines of treatment. The other patient had a more indolent course consistent with that of an atypical MDS with eosinophilia.

Aged↗

PAF and haematopoiesis: IX. Platelet-activating factor increases DNA synthesis in human bone marrow cells.

Platelet-activating factor (PAF) is present in human bone marrow leading us to investigate its effect on human bone marrow cell proliferation. While PAF (0.1 microM to 1 nM) stimulates the incorporation of [3H]thymidine by freshly isolated adherent human bone marrow cells, PAF has no effect on non adherent cells. A non-metabolizable PAF agonist is more potent than PAF to stimulate thymidine incorporation in adherent cells. The precise role of PAF in human haematopoiesis in vivo remains to be clarified.

Bone Marrow↗

Macrophage colony stimulating factor involvement in uremic patients.

The immunodeficiency of patients with chronic renal failure (CRF) is related to multiple and complex alterations of the cytokine network and of its target cells such as T or B lymphocytes, monocytes, fibroblasts or endothelial cells. Chronic activation of monocytic functions is recognized as a key factor in these immunological disorders. Since macrophage colony stimulating factor (M-CSF) is essential for the activation of several functions of monocytes and macrophages and their production of cytokines such as interleukin-1, interleukin-6, and tumor necrosis factor alpha, we investigated its involvement in patients with CRF. When measured by ELISA, M-CSF serum levels were significantly higher in patients with progressive CRF and those on hemodialysis (HD) and continuous ambulatory peritoneal dialysis (CAPD) than in controls. M-CSF serum levels did not correlate with the degree of renal insufficiency and were probably related to complex alterations in its production and/or degradation by the specific M-CSF receptors of macrophages. In HD patients the M-CSF serum concentrations inversely correlated with the number of circulating lymphocytes and were significantly higher in anemic patients requiring treatment with erythropoietin. Our results suggest that M-CSF may play a role in altering the immune system in uremic patients by maintaining in the circulation and tissues permanently primed monocytes and/or macrophages that can then be triggered to an activated state by secondary stimuli such as endotoxins, complement components, other cytokines or contact with foreign surfaces.

Adult↗

Binding interactions of leukemia inhibitory factor and ciliary neurotrophic factor with the different subunits of their high affinity receptors.

Leukemia inhibitory factor (LIF) and ciliary neurotrophic factor (CNTF) share common components in their multimeric receptors. Both cytokine receptors contain gp130/interleukin-6-receptor transducer as well as gp190/low affinity LIF receptor. For CNTF, addition of a third subunit, or alpha subunit, defines the high-affinity CNTF receptor. In the present study, we analyzed the binding interactions of LIF and CNTF in human cell lines and showed a mutual displacement for LIF and CNTF toward the trimeric high-affinity CNTF receptor. Similar results were obtained in the JEG cell line, which only expressed the gp130/gp190 high-affinity LIF receptor, by adding a soluble form of the alpha CNTF receptor to the system to reconstitute the high-affinity-type CNTF receptor. The different receptor subunits were then expressed separately in transfected cells and their binding capacities analyzed. The results showed that the heterocomplex CNTF/alpha CNTF receptor bound to gp130 with an affinity of 3-5 x 10(-10)M, whereas LIF interacted mainly with gp190. In summary, the observed competition between LIF and CNTF does not result from the binding to a common site or receptor subunit, but rather to the interaction of the three receptor components to create a conformational site common to both LIF and CNTF.

Animals↗