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Biomedical subjects

K Welte

Publications and source records attributed to K Welte.

At least 73 records · Page 4Linked to original sources

Thrombopoietin in patients with congenital thrombocytopenia and absent radii: elevated serum levels, normal receptor expression, but defective reactivity to thrombopoietin.

The pathophysiology of thrombocytopenia in the syndrome of thrombocytopenia with absent radii (TAR) is not yet understood. We examined thrombopoietin (TPO) serum levels and the in vitro reactivity of platelets to TPO in five patients affected with TAR syndrome. We found elevated TPO serum levels in all patients tested, excluding a TPO production defect as cause for thrombocytopenia in TAR syndrome. In addition, we found similar expression of the TPO receptor c-Mpl on the surface of platelets from TAR patients (5 of 5) and a similar molecular weight of the receptor as compared with healthy controls (4 of 4). Platelet response to adenosine diphosphate or thrombin receptor agonist peptide SFLLRN (TRAP) was normal in TAR patients. However, in contrast to results with healthy controls we could show absence of in vitro reactivity of platelets from TAR patients to recombinant TPO as measured by testing TPO synergism to adenine diphosphate and TRAP in platelet activation. TPO induced tyrosine phosphorylation of platelet proteins was completely absent (3 of 4) or markedly decreased (1 of 4). Our results indicate that defective megakaryocytopoiesis/thrombocytopoiesis in TAR syndrome is not caused by a defect in TPO production but a lack of response to TPO in the signal transduction pathway of c-Mpl.

Blood Platelets↗

Downregulation of c-kit expression in human endothelial cells by inflammatory stimuli.

In recent studies we have shown that the expression of stem cell factor (SCF) in human endothelial cells is regulated by inflammatory processes. Gram-negative bacteria, interleukin-1 (IL-1), and lipopolysaccharide were able to upregulate the expression of SCF in human umbilical vein endothelial cells (HUVEC) (Blood 83:2836, 1994). Interestingly enough c-kit, the receptor of SCF, is coexpressed on HUVEC, suggesting an autoregulatory mechanism. To investigate the relation of c-kit and inflammatory processes we stimulated HUVEC with IL-1alpha and we established an in vitro model of inflammation. Binding experiments with 125I-SCF were performed to study the c-kit receptor expression on HUVEC. Scatchard analysis revealed both high-affinity receptors (K(d) approximately 0.36 nmol/L) and low-affinity receptors (K(d) approximately 2.9 nmol/L). Exposure to IL-1alpha led to a significant 50% reduction of c-kit high-affinity receptors, whereas the number of low-affinity receptors was not affected, in comparison to a control group of untreated HUVEC. Furthermore, using Northern blot analysis we studied the regulation c-kit mRNA expression in HUVEC after stimulation with IL-1alpha. Kinetic experiments showed a time-dependent downregulation of c-kit specific transcripts. In addition, we cocultured HUVEC with diverse bacterial strains. Experiments were performed over time with 1 x 10(6) bacteria/mL. Our data showed that, in contrary to the previously reported upregulation of SCF mRNA expression, stimulation with Yersinia enterocolitica or with Neisseria meningitidis led to a significant time-dependent downregulation of c-kit mRNA within 3 hours. These data indicate that inflammatory stimuli such as IL-1 or living bacteria activate a mechanism that downregulates c-kit receptor expression in human endothelial cells during the state of inflammation.

Cells, Cultured↗

Clinical relevance of point mutations in the cytoplasmic domain of the granulocyte colony-stimulating factor receptor gene in patients with severe congenital neutropenia.

Recently, point mutations in the gene of the granulocyte colony-stimulating factor (G-CSF) receptor have been reported in two patients with severe congenital neutropenia who developed acute myeloid leukemia (AML). We investigated the frequency of these specific G-CSF receptor mutations in patients with congenital neutropenia undergoing treatment with r-metHuG-CSF (Filgrastim) and the clinical relevance of these mutations. Nucleotides 2306 to 2561 including the critical region (nucleotides 2384-2429) from the intracellular domain of the G-CSF receptor gene were amplified by reverse transcriptase-polymerase chain reaction. Detection of point mutations was performed with specific restriction enzyme analysis, as well as sequencing of PCR products. Both genomic DNA and cDNA from neutrophils and mononuclear cells were analyzed from 28 patients with severe congenital neutropenia. Four of 28 patients with congenital neutropenia displayed a point mutation in the tested cytoplasmic region of the G-CSF receptor gene. The point mutations replace a glutamine codon by a stop codon of the G-CSF receptor gene. Among these four congenital neutropenia patients with a mutated G-CSF receptor, two developed AML. All four patients were investigated regularly and no correlation between occurrence of G-CSF receptor mutation and time or dose of r-metHuG-CSF treatment was found. No point mutations in the G-CSF receptor critical domain could be detected in cells from the other 24 congenital neutropenia patients. Furthermore, we tested six family members of the two patients with AML including mothers and fathers, one sister, and one brother who suffers from congenital neutropenia, as well. All family members displayed a normal G-CSF receptor gene. After the acquisition of the G-CSF receptor mutations, the congenital neutropenia patients continued to respond to G-CSF therapy with an increase in absolute neutrophils in the peripheral blood. We conclude that the point mutations in the critical region of the intracellular part of the G-CSF receptor occur spontaneously and are not inherited. From our data, we suggest that the described G-CSF receptor point mutations do not alter the response to treatment with r-metHuG-CSF and are not the cause of severe congenital neutropenia.

Acute Disease↗

Cytosolic proteins from neutrophilic granulocytes: a comparison between patients with severe chronic neutropenia and healthy donors.

A modified technique of two-dimensional gel electrophoresis (2-DE) was used to investigate differences in the pattern of cytosolic proteins of neutrophilic granulocytes from patients with severe congenital neutropenia, cyclic neutropenia, and idiopathic neutropenia in comparison with healthy donors. At the time of study, all patients tested received treatment with a recombinant human granulocyte colony-stimulating factor (r-metHuG-CSF; Filgrastim, Amgen). Using the Investigator 2-D Electrophoresis System (Millipore) we were able to detect more than 1000 protein spots in the cytosol of neutrophilic granulocytes from both patients and healthy controls. We investigated six patients with severe congenital neutropenia, five patients with cyclic neutropenia, four patients with idiopathic neutropenia, and 13 healthy donors. In the cytosol of neutrophilic granulocytes from patients we found an additional protein spot. This protein spot (molecular mass approximately 32.4 kDa, pI about 5.5) could be identified by internal sequencing after in-gel digestion with endoproteinase Lys-C as tropomyosin. The importance of the overexpression of tropomyosin in neutrophilic granulocytes from patients with severe chronic neutropenia is not yet understood.

Amino Acid Sequence↗

Frequency of point mutations in the gene for the G-CSF receptor in patients with chronic neutropenia undergoing G-CSF therapy.

Point mutations in the gene for the G-CSF receptor have been reported previously in a subgroup of patients with severe congenital neutropenia. Here, we investigated the frequency of these specific G-CSF receptor mutations in patients with neutropenic disorders undergoing treatment with recombinant human (r-metHu)G-CSF (Filgrastim). Nucleotides 2306 to 2561, including the critical region (nucleotides 2384-2429) from the intracellular domain of the G-CSF receptor gene, were amplified by reverse transcriptase-polymerase chain reaction, and DNA was sequenced directly and after transformation in E. coli. Four of 30 patients with severe congenital neutropenia displayed a point mutation in the tested cytoplasmic region of the G-CSF receptor gene. Two of the four patients with a mutated G-CSF receptor developed acute myeloid leukemia secondary to congenital neutropenia. G-CSF receptor analyses were performed in myeloid cells taken at different time points in the four patients with the mutated receptor, and no correlation between occurrence of the mutation and time or dose of r-metHuG-CSF treatment was found. No point mutations in the G-CSF receptor critical domain could be detected in cells from the other 26 congenital neutropenia patients. Additionally, no G-CSF receptor point mutations could be seen in neutrophils, blood and bone marrow mononuclear cells from patients with cyclic or idiopathic neutropenia, and bone marrow mononuclear cells from patients suffering from severe aplastic anemia. Similar results were obtained by Touw et al., demonstrating that five out of 25 patients with congenital neutropenia reveal G-CSF receptor mutations. These data show that the point mutations in the critical region of the intracellular part of the G-CSF receptor occur only in a subgroup of severe congenital neutropenia patients. Furthermore, our data suggest that the described G-CSF receptor point mutations are not correlated with the start, duration or doses of r-metHuG-CSF treatment, but might result from genetic instability in the G-CSF receptor gene in severe congenital neutropenia.

Adult↗

High incidence of significant bone loss in patients with severe congenital neutropenia (Kostmann's syndrome).

OBJECTIVE: Clinical observation of bone pain, unusual fractures in two patients, and diffuse osteopenia/osteoporosis led us to assess bone mineral content and density in 30 patients with severe congenital neutropenia who were treated with recombinant-methionyl-human granulocyte colony-stimulating factor (r-metHuG-CSF). STUDY DESIGN: We reviewed roentgenograms in 29 of these 30 patients to evaluate bone loss before and during treatment. In addition, in 17 of the 30 patients, bone mineral status could be assessed by both quantitative computed tomography (Q-CT; n = 16) and dual energy x-ray absorptiometry (DXA; n = 1). In one patient, Q-CT was not possible because of severe vertebral fractures. RESULTS: Of the 30 patients investigated, 15 had evidence of osteopenia/osteoporosis observed on spine radiographs (n = 5), on Q-CT/DXA (n = 1/n = 1), or on radiographs and Q-CT (n = 8). In 13 of the 30 patients, only a lateral radiograph of the lumbar spine was available, 5 of 13 showing either increased kyphosis and wedging of the vertebrae or compression fractures of the vertebral bodies, indicating severe established osteoporosis. In eight patients, the findings of the spinal radiographs were normal. In nine patients, spinal radiographs were taken before r-metHuG-CSF treatment. Osteoporotic vertebral deformation (n = 3) or reduced bone mass (n = 3) was seen in six of these nine patients. The levels of serum biochemical markers of bone metabolism were all within normal ranges except for mild elevation of the serum alkaline phosphatase level. The degree of spinal bone mineral loss did not correlate with dose and duration of r-metHuG-CSF treatment or with the age or sex of the patients. CONCLUSIONS: These data indicate a high incidence of bone mineral loss in children with severe congenital neutropenia. The underlying pathogenesis of bone demineralization is not clear. It is more likely that the bone loss was caused by the pathophysiologic features of the underlying disease, but it is possible that r-metHuG-CSF accelerates bone mineral loss.

Adolescent↗

Mutations in the granulocyte colony-stimulating factor receptor gene in patients with severe congenital neutropenia.

Previously, nonsense mutations in the gene encoding the granulocyte colony-stimulating factor receptor (G-CSF-R) have been described in three patients with severe congenital neutropenia (SCN) (Proc Natl Acad Sci USA 1994; 91: 4480; New Engl J Med 1995; 333: 487). The mutations resulted in the truncation of the carboxy-terminal region of G-CSF-R essential for transduction of maturation signals. Two of these patients developed acute myeloblastic leukemia (AML). We present the results of a search among 20 additional cases of congenital neutropenia (CN) and SCN for the presence of mutations in the cytoplasmic domain of G-CSF-R. This series includes patients with familial and nonfamilial forms of CN and SCN. Mutations in the G-CSF-R gene were found in two new SCN cases. These mutations were nonsense mutations, located in the same cytoplasmic region of G-CSF-R as those found earlier, resulting in the truncation of the C-terminus. Both of these patients developed AML. None of the other patients showed clinical symptoms or cytogenetic features indicative of AML or progression to leukemia. The analysis in this extended series of patients thus has revealed five SCN cases with G-CSF-R mutations, four of whom developed AML. These results add support to the notion that mutations in the G-CSF-R gene, affecting the maturation signaling function of the receptor, define a distinct subgroup of SCN with increased susceptibilty to AML.

Adolescent↗

Functional features of neutrophils induced by G-CSF and GM-CSF treatment: differential effects and clinical implications.

G-CSF and GM-CSF are hematopoietic growth factors required for proliferation and differentiation of hematopoietic precursors. G-CSF is now widely used to overcome neutropenias of various origins. Beside the absolute number, the functional capacity of neutrophils at sites of inflammation is of major importance in host defense. This review summarizes major functional and phenotypical features of neutrophils induced by G-CSF treatment in patients with acquired and congenital neutropenias. Furthermore, we focus on the differential effect of G-CSF and GM-CSF on neutrophil function in vitro and in vivo. Some of the altered abilities of cytokine-induced neutrophils are important to understand side-effects of G-CSF therapy.

Cell Adhesion↗

Absence of IL-6 receptor expression in fresh childhood Burkitt's lymphoma cells and induction of IL-6 receptors by Epstein-Barr virus in vitro.

Interleukin-6 (IL-6) is a cytokine which is necessary for the differentiation of activated B cells and growth of early haemopoietic progenitors. It is used for ex-vivo expansion of myeloid progenitors in the setting of high-dose chemotherapy with autologous bone marrow transplantation (BMT). Expression of the IL-6 receptor (IL-6R) was examined in six fresh Burkitt's lymphoma (BL) cell preparations and 12 BL cell lines by reverse transcriptase polymerase chain reaction (RT-PCR) and flow cytometry (FCM). Inducibility of IL-6R mRNA expression by Epstein-Barr virus (EBV) was studied by comparing two uninfected cell lines with the same cell lines infected by EBV The phenotype of the BL cells lines was analysed by FCM and by proliferation assays in the presence of anti-IgM antibodies. None of the fresh BL cells expressed the IL-6 receptor. The BL cell lines expressed varying degrees of IL-6R mRNA and protein. In vitro infection of EBV-negative BL cell lines resulted in up-regulation of IL-6R mRNA. There was no proliferative response of the BL cell lines to IL-6, including the cells that expressed the receptor. Compared to uninfected BL cell lines, EBV-infected cell lines and lymphoblastoid cell lines (LCLs) showed a weaker or no response to anti-IgM antibodies, indicating a more mature phenotype of these cells. We conclude that the IL-6 receptor is not expressed in fresh childhood BLs, but only in BL cell lines. EBV infection in vitro leads to an up-regulation of IL-6R mRNA but not to increased proliferation. This makes growth stimulation of contaminating BL cells in the setting of autologous BMT unlikely.

Antigens, CD↗

Advances in understanding postreceptor signaling in response to granulocyte colony-stimulating factor.

Granulocyte colony-stimulating factor (G-CSF) exerts its biologic effects through binding to its receptor expressed on myeloid cells. Like other cytokines, G-CSF induces intracellular protein tyrosine phosphorylation and activates various signaling cascades. Activation of JAK tyrosine kinases and signal transducers and activators of transcription (STAT) proteins as well as activation of the ras-MAP kinase route results in induction of gene transcription. Distinct regions or defined tyrosine residues of the G-CSF receptor cytoplasmic domain are required for complex formation with specific signaling molecules and ultimately regulate proliferation and maturation of myeloid cells. In vivo, administration of G-CSF results in increased numbers of neutrophils in normal individuals, in patients with chemotherapy-induced neutropenia, and in patients with chronic neutropenia. A subgroup of patients with severe congenital neutropenia displayed point mutations in the cytoplasmic region of the G-CSF receptor: These G-CSF receptor mutations might be involved in leukemogenesis in congenital neutropenia.

Granulocyte Colony-Stimulating Factor↗

Application of long PCR to detect t(8;14)(q24;q32) translocations in childhood Burkitt's lymphoma and B-ALL.

BACKGROUND: Burkitt's lymphoma (BL) and B-ALL are characterized by chromosomal translocations juxtaposing the c-myc gene on chromosome 8 to one of the immunoglobulin loci. Translocations involving the immunoglobulin heavy chain (IgH) on chromosome 14 are found in approximately 75%-90% of these tumors. The breakpoint regions are located over a wide range on both chromosomes. PATIENTS AND METHODS: To detect the translocations, we developed a PCR method to generate long products. After extraction of genomic DNA (QiaAmp System, Qiagen, Hilden, Germany), DNA was amplified using a mixture of Taq and Pwo polymerases (Boehringer Mannheim, Germany). Several primer pairs from the S mu, JH, CH1 and the C alpha regions on IgH and from exon 1 and intron 1 of the c-myc gene were tested in each patient. RESULTS: Lymphoma cells from 20 children with Burkitt's lymphoma and B-ALL characterized by FAB-L3 morphology were examined. In 11/20 patients, recombinations between chromosomes 8 and 14 could be detected with our primer pairs. PCR products from 800 to 3700 bp in length were obtained reproducibly. After amplification, the products were characterized by restriction enzyme digestion, hybridization, and in part by direct sequencing. CONCLUSIONS: This PCR-based method will allow us (1) to determine the localization of chromosomal breakpoints in primary tumor material, (2) to investigate whether distinct breakpoints are associated with treatment outcome, and (3) to detect the presence of minimal residual tumor cells during or after therapy.

Adolescent↗

Severe chronic neutropenia: pathophysiology and therapy.

The development of recombinant-met human granulocyte-colony stimulating factor (r-metHuG-CSF) for clinical use has had a major influence on the treatment of many diseases. This impact has perhaps been greatest for treatment of severe chronic neutropenia (SCN) conditions for which there were no predictably effective treatment before the availability of these growth factors, particularly r-metHuG-CSF (Filgrastim, Amgen Inc, Thousand Oaks, CA; or Lenograstim, Rhone-Poulenc Rorer, Milan, Italy). Based on careful studies in many countries it is now known that more than 95% of these patients will respond promptly to r-metHuG-CSF treatment with normalization of the blood neutrophil levels and reduction in the occurrence of both major and minor consequences of their severe neutropenia. The availability of this treatment will undoubtedly lead to much additional research on the mechanisms governing neutrophil production and the basic mechanisms that can cause neutropenia among patients who have SCN. Among patients who have SCN those who are diagnosed to have severe congenital neutropenia (Kostmann's syndrome) or Shwachman-Diamond syndrome are at risk of developing myelodysplasia and/or acute myelogenous leukemia. The role of r-metHuG-CSF in facilitating the risk remains to be determined. Thus, it is important that long-term evaluation of the safety and efficacy of treatment of SCN and cooperation in research on these rare conditions proceed under the auspices of an international registry monitoring the clinical outcome of patients with severe congenital neutropenia.

Chronic Disease↗

A randomized phase-III study of the efficacy of granulocyte colony-stimulating factor in children with high-risk acute lymphoblastic leukemia. Berlin-Frankfurt-Münster Study Group.

Overall chemotherapeutic treatment results in pediatric acute lymphoblastic leukemia (ALL) are good, with event-free survival (EFS) rates over 70%. However, for a subset of patients characterized by high-risk (HR) features the outcome is less favorable, with EFS rates below 50%. Intensification of chemotherapy may improve the outcome for those patients, but increased toxicity, particularly myelosuppression, limits the escalation of dose intensity. Recombinant methionyl human granulocyte colony-stimulating factor (r-metHuG-CSF) is known to reduce myelosuppression after cancer chemotherapy in adults. The objective of this study was to examine the effect of r-metHuG-CSF on myelosuppression in HR pediatric ALL patients and on the overall response rate to chemotherapy. Patients with HR pediatric ALL were randomized to receive nine alternating cycles of chemotherapy according to the German ALL-Berlin-Frankfurt-Münster 90 protocol either alone or followed by r-metHuG-CSF administered prophylactically at a dose of 5 microg/kg/d subcutaneously. In both groups, the planned interval between chemotherapy courses was a minimum of 21 days. We report here interim results of 34 patients. The incidence of febrile neutropenia (absolute neutrophil count <0.5 x 10(9)/L and oral temperature > or = 38.5 degrees C) was 17% in children receiving r-metHuG-CSF, as compared with 40% in the control group (P = .007). In addition, the median total duration of febrile neutropenia was reduced from 20.3 to 6.2 days per patient (P = .02). Culture-confirmed infections occurred less frequently in the r-metHuG-CSF group (8% v 15%; P = .04), and the total duration of intravenous antibiotic use was significantly reduced from 32.2 days to 18.2 days per patient (P = .02). A tighter adherence to the planned treatment schedule was also facilitated by r-metHuG-CSF (P = .007). With a median follow-up of 3.3 years, the estimated EFS of 4 years is 41% +/- 12%. In conclusion, r-metHuG-CSF administered prophylactically in the interval between chemotherapy courses significantly reduced febrile neutropenia, culture-confirmed infections, and duration of intravenous antibiotic administration and allowed for tighter adherence to the treatment schedule.

Adolescent↗

Pathophysiology and treatment of severe chronic neutropenia.

Severe chronic neutropenia (SCN) include a heterogeneous group of diseases characterized by blood neutrophil counts chronically less than 0.5 x 10(9)/ L. In phase I-III studies in SCN patients, treatment with recombinant human granulocyte colony stimulating factor (r-metHuG-CSF; Filgrastim) resulted in a rise in the absolute neutrophil counts (ANC) to above 1.0 x 10(9)/L associated with a reduction in bacterial infections. Long-term treatment with filgrastim up to 8 years demonstrate a sustained ANC response, a significant reduction of the need for intravenous antibiotics and a dramatic improvement in the quality of life. In 1994 an international registry for severe chronic neutropenia (SCNIR) was established to improve care for chronic neutropenia and for further understanding the pathophysiology of this rare disease. Three-hundred and ten patients have been enrolled to this registry so far. Worldwide phase I-III studies with filgrastim and SCNIR provide information on 424 patients with severe chronic neutropenia. Adverse events include the development of acute myeloid leukemia in approximately 7% of the patients within the cohort of patients with congenital neutropenia (Kostmann's syndrome) suggesting that congenital neutropenia is a preleukemic syndrome. None of the patients with cyclic of idiopathic neutropenia developed leukemia suggesting that filgrastim is not involved in the development of leukemia.

Chronic Disease↗

Identification of the antigen recognized by the monoclonal antibody 31D8.

The monoclonal antibody (mAb) 31D8 has previously been described to bind more avidly to functionally active neutrophils and proved to be useful as a differentiation marker of neutrophils. However, attempts to further characterize the antigen recognized by 31D8 have not been successful. Studying the altered Fcgamma-receptor expression of human neutrophils induced by granulocyte colony-stimulating factor (G-CSF) in vivo, we could demonstrate a parallel decrease in the expression of 31D8 and the CD16 antigen. Furthermore, 31D8 showed a binding pattern on leukocyte subsets similar to that of clustered CD16 antibodies, exhibiting identical cells in double-staining experiments. Preincubation of neutrophils with 31D8 resulted in a dose-dependent inhibition of the binding of immune complexes. A decreased expression of the 31D8 antigen was found on the same cell clones to the same extent as found for the 3G8 antigen on neutrophils from patient with paroxysmal nocturnal hemoglobinuria (PNH). Treatment of polymorphonuclear leukocytes (PMN) with PIPLC resulted in a dose-dependent decrease of mAb 31D8 binding, showing that the 31D8 antigen is phosphatidylinositolglycan (PIG)-anchored. Moreover, 31D8 competed with the binding of antibodies (such as mAb 3G8) directed against the binding site of FcgammaRIII for the Fc-part of IgG. However, this mAb did not influence the binding of a CD16 antibody (mAb B73.1) which recognizes an epitope elsewhere on the CD16 antigen. We conclude from our experiments that the mAb 31D8 binds with high avidity to fcgammaRIII (CD16 antigen). Furthermore, our data indicate that its binding site is most probably located at the binding site for the Fc-part of IgG.

Antibodies, Monoclonal↗