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Biomedical subjects

G Fritsch

Publications and source records attributed to G Fritsch.

At least 55 records · Page 3Linked to original sources

Myelodysplastic syndrome/acute myeloid leukemia supervening previously untreated chronic B-lymphocytic leukemia: demonstration of the concomitant presence of two different malignant clones by immunologic and molecular analysis.

The development of myelodysplastic syndrome (MDS) and/or acute myeloid leukemia (AML) has rarely been observed in patients with chronic B-lymphocytic leukemia (B-CLL). So far, the discussion concerning the pathogenesis of the simultaneous occurrence of these two malignancies has been speculative, opposing the theory of two separate malignant clones to the theory of a common stem cell malignancy. We describe the case of a 77-year-old woman who developed MDS after 8 years of an indolent course of B-CLL. The diagnosis of MDS was based on bone marrow (BM) morphology, showing the typical picture of a refractory anemia with excess of blasts (RAEB). The clinical course of MDS was aggressive, terminating in AML within only 6 months. Immunophenotyping of BM and peripheral blood (PB) cells revealed a CD34+/ CD13+/CD33-/CD19-blast cell population and a CD19+/CD5+ B-cell population with kappa light chain restriction. Molecular analysis of PB and BM demonstrated the presence of an immunoglobulin heavy chain (IgH) gene rearrangement by polymerase chain reaction (PCR) amplification of genomic DNA with three different pairs of consensus primers. Cell-sorting experiments showed that the IgH gene rearrangement was present only in the CD19+/CD34- B-cell population, but not in the CD34+/CD19- blast cells. Furthermore, X-chromosome inactivation pattern analysis revealed two differently methylated cell populations. These experiments demonstrate the concomitant existence of two different clones in a patient with CLL-MDS/AML.

Acute Disease↗

Imprecision of counting CFU-GM colonies and CD34-expressing cells.

Determinations of committed haemopoietic progenitor cells, namely CFU-GM (colony-forming unit-granulocyte/macrophage) and of CD34-expression haemopoietic cells as assessed by multiparameter flow cytometry are routine diagnostic tools in haemopoietic cell therapy. Generally, the tests are used to optimise the timing and management of cytapheresis and to assess the engraftment potential of the harvested cells. Both measurements, however, are at best surrogate markers, as an adequate routine test which effectively assesses the short- and long-term repopulating haemopoietic cell is not available. Nonetheless, cell threshold doses have been established. Above these thresholds rapid engraftment is almost invariable but below these thresholds the outcome is variable. In this study we have focussed on the imprecision in counting haemopoietic cells, as assessed as CFU-GM and as CD34-expressing cells. The data on both tests have been analysed from six European institutions. The coefficient of variation in CFU-GM colony counting was about 30%, whereas the coefficient of variation in flow cytometric counting of CD34-expressing cells was about 10%. These data suggest that the technical imprecision in enumerating progenitor cells, particularly CFU-GM, at low levels, might make a major contribution to the clinical variability observed after transplantation of sub-threshold progenitor cell dose.

Antigens, CD34↗

Multiparameter phenotype mapping of normal and post-chemotherapy B lymphopoiesis in pediatric bone marrow.

We studied the differentiation profiles of B cell precursors (BCP) in normal and post-chemotherapy pediatric bone marrow (BM) using multiparameter flow cytometry. The goal of our study was to draw a comprehensive phenotypic map of the three major maturational BCP stages in BM. By correlating lineage-associated markers, CD45RA, and several adhesion molecules, the stage-specific patterns were found to differ in certain details from previously published concepts. Among the earliest BCP, a subset of CD34+ CD10(lo) precursors was repeatedly observed in addition to the well characterized CD34+ CD10(hi) CD19+ majority of cells. Only two-thirds of these CD34+ CD10(lo) cells expressed CD19. However, uniformity of phenotypic features, absence of T lineage markers, and the regeneration kinetics after chemotherapy suggest the B lineage affiliation of the CD34+ CD10(lo) precursors in general. In the more mature BCP, expression of CD10, CD20, cytoplasmic and surface mu chains (c mu and s mu) was observed to overlap more than previously recognized. We found that CD20 and c mu appear early during B cell ontogeny (already on CD34+ BCP), and that CD10 is lost late, following the onset of s mu expression. Differences between normal and post-chemotherapy BM specimens regarding the phenotypic appearance of BCP were exclusively due to differences in the subset composition, as post-chemotherapy samples showed a preponderance of immature stages. Our observations may build a framework for comparing leukemic cells with their normal counterparts to define possible leukemia-associated aberrations useful for residual disease studies.

Adolescent↗

Relapse of Philadelphia chromosome positive acute lymphoblastic leukaemia after marrow transplantation: sustained molecular remission after early and dose-escalating infusion of donor leucocytes.

We present a patient who underwent sibling allogeneic BMT because of refractory Ph+ve ALL and remained BCR-ABL-positive after marrow grafting. Haemopoietic precursor cells were predominantly BCR-ABL-negative and of donor origin. In T cells an exclusively donor genotype was demonstrated. Despite donor leucocyte infusion (DLI), 20 weeks after BMT BCR-ABL fusion mRNA increased in semiquantitative polymerase chain reaction and leukaemic infiltration of the patient's bone marrow was seen. After a second course of DLI the patient achieved sustained molecular remission but he developed severe graft-versus-host disease (GvHD) and died from bacterial sepsis 9 months after DLI.

Adult↗

Quantification of CD34+ cells: comparison of methods.

BACKGROUND: Quantification of CD34+ stem and progenitor cells is predominantly performed by flow cytometric analysis of cells prepared by whole blood staining and red cell lysis. This method also includes cell washing, which is thought to cause the destruction and loss of some of the nucleated cells (NCs). To address this cell loss and its influence on the outcome of enumeration, three techniques for preparing cells for quantification of CD34+ cells were compared. STUDY DESIGN AND METHODS: Blood (n = 179), bone marrow (n = 60), and leukapheresis components (n = 64) were examined by the use of density separation of mononuclear cells (MNCs) and two red cell-lysis procedures (wash and no-wash). Cell counts were determined in the original materials and after cell preparation. Absolute CD34+ cell counts were calculated using the flow cytometry-analyzed proportions of CD34+ cells and the various white cell counts. RESULTS: Depending on the cell source and the cell preparation chosen, the loss of NCs ranged between 12 percent and 89 percent of the original white cell number. This loss of NCs was exclusively due to cell washing and predominantly affected granulocytic cells. Analysis of the flow cytometry data revealed that the relative CD34+ values in blood and bone marrow were roughly threefold higher in density separated MNCs than in those that underwent the lyse-and-wash procedure. Calculation of absolute CD34+ cell counts confirmed that the MNC procedure underestimated the CD34+ cell content by a median of 26 percent (blood), 21 percent (bone marrow), and 5 percent (leukapheresis component) when compared with the median yield from analysis and cell counting performed after the lyse-and-wash procedure. On the other hand, the conventional lysis procedure, which applies the original white cell counts for CD34+ quantification, was shown to overestimate the CD34+ cell content by a median of 1.2-fold, 1.33-fold, and 1.13-fold, respectively. CONCLUSION: Neither density separation nor the whole-blood lysis procedure seems appropriate for optimal CD34+ quantification.

Ammonium Chloride↗

MR imaging of the central nervous system in diving-related decompression illness.

PURPOSE: This investigation was conducted to determine whether MR imaging showed cerebral or spinal damage in acute diving-related decompression illness, a term that includes decompression sickness (DCS) and arterial gas embolism (AGE). MATERIAL AND METHODS: A total of 16 divers with dysbaric injuries were examined after the initiation of therapeutic recompression. Their injuries comprised: neurological DCS II n = 8; AGE n = 7; combined cerebral-AGE/spinal-DCS n = 1. T1- and T2-weighted images of the brain were obtained in 2 planes. In addition, the spinal cord was imaged in 7 subjects. The imaging findings were correlated with the neurological symptoms. RESULTS: MR images of the head showed ischemic cerebrovascular lesions in 6/8 patients with AGE but showed focal hyperintensities in only 2/8 divers with DCS. Spinal cord involvement was detected in 1/7 examinations, which was the combined cerebral-AGE/spinal-DCS case. There was agreement between the locations of the documented lesions and the clinical manifestations. CONCLUSION: MR readily detects cerebral damage in AGE but yields low sensitivity in DCS. A negative MR investigation cannot rule out AGE or DCS. However, MR is useful in the examination of patients with decompression illness.

Adult↗

Detection of DNA damage in stimulated human lymphocytes after adding cytostatic drugs in vitro. A model to demonstrate individual damage rates.

The DNA damaging effect of different concentrations of methotrexate, 6-mercaptopurine, 6-thioguanine and cisplatin was tested by nucleoid sedimentation in pokeweed mitogen (PWM)-stimulated lymphocytes of 16 healthy persons in vitro. The examined persons show an individual variation of DNA damage demonstrating individual differences in DNA repair. The method can be used to identify persons with a low DNA repair capacity, and possible cytogenetic side effects of cytostatic drugs can be calculated before starting a cancer therapy. In clinical practice the use of cytostatic drugs is limited because of the side effects on normal tissues. The cancer therapist can improve a cytostatic therapy when he obtains information about possible DNA damage of cytostatic drugs in cells of the patient at the beginning of the therapy.

Adult↗

Characterisation of bovine transferrin receptor on normal activated and Theileria parva-transformed lymphocytes by a new monoclonal antibody.

A murine IgM monoclonal antibody (mAb), IL-A77, has been generated that recognises the bovine transferrin receptor (TfR) and will be a useful tool to measure the activation state of bovine lymphocytes and macrophages. The antigen is detected on immature erythroid cells and proliferating lymphocytes. It is undetectable on resting lymphocytes, but appears within 24 h after stimulation with concanavalin A (ConA) or pokeweed mitogen (PWM). Immune precipitations of lysates of both labeled activated lymphocytes and bone marrow erythroid cells showed that, similar to human TfR, the bovine receptor is a disulfide-bonded dimer of two identical chains of M(r) 97,000. A similar 97,000 M(r) protein was eluted from a column containing immobilised bovine transferrin (Tf) using conditions known to elute the human TfR, and this protein was recognised by mAb IL-A77, proving that it detected bovine TfR. Although the mAb inhibited binding of transferrin to its receptor, it did not block proliferation of Theileria parva-transformed or ConA-stimulated lymphocytes. When cells were metabolically labeled with 35S-methionine, a second 90,000-M(r) TfR band was detected in Theileria parva-transformed cells, but not in stimulated lymphocytes. This form of the TfR was not expressed on the cell surface. It may be an.

Animals↗

Lack of DNA synthesis among CD34+ cells in cord blood and in cytokine-mobilized blood.

Flow cytometric DNA analysis was performed in combination with three-colour immunological staining of cell surface antigens on density-separated mononuclear cells (MNC) obtained from peripheral blood (PB) before, during and after cytokine stimulation of healthy adults. The aim of the study was to determine the cell-cycling status of haemopoietic progenitor cells mobilized into the blood of healthy volunteers during a 5 d treatment period with 5/micrograms per kg body weight of either granulocyte colony-stimulating factor (G-CSF) or granulocyte-macrophage colony-simulating factor (GM-CSF). Despite considerably increasing numbers of CD34+ PB MNC, the latter were not found to be in S/G2M phase, whereas, among the CD34- MNC, the proportion of cells in S/G2M phase increased from < 0.1% to 0.75 +/- 0.4% (GM-CSF) and to 1.34 +/- 0.75% (G-CSF) and dropped again after discontinuation of the cytokine stimulation. These cells expressed CD33 but were negative for CD45RA, CD3, CD19 and CD14 and were thus considered granulopoietic cells. Analogous results were obtained from analyses of cord blood (CB). In contrast, CD34+ cells from bone marrow (BM) were partially (between 9% and 15%) found to be in S/G2M phase. The non-cycling status of PB and progenitor cells was confirmed by the analysis of CD34+ cells enriched from the two cells sources. However, in vitro stimulation of these progenitor cells using IL3, GM-CSF, erythropoietin and steel factor (SF) revealed that, after 48 h in suspension culture, up to 30% of the CD34+ cells were in S/G2m phase. The fact that cycling CD34+ cells are only detectable in BM but not in PB or CB may suggest different adhesive properties of migrating/mobilized 'stem cells' which may require the BM micro-environment for adequate proliferation in vivo.

Adult↗

Graft failure after donor leucocyte infusion in relapsed chronic myeloid leukaemia: successful treatment with cyclophosphamide and antithymocyte globulin followed by peripheral blood stem cell infusion.

We report a patient with chronic myeloid leukaemia who underwent allogeneic marrow transplantation (BMT) but had a molecular relapse 5 months and haematological relapse 15 months after BMT. Since therapy with alpha-interferon had been ineffective he received leucocyte infusions from his sibling donor. He developed acute graft-versus-host disease and became aplastic 6 weeks later. Despite donor marrow infusion and cytokine stimulation marrow aplasia persisted for 13 weeks. Then, donors' peripheral blood stem cells were given after conditioning with cyclophosphamide and antithymocyte globulin resulting in trilineage engraftment of donor haemopoiesis. Since then, the patient has been in continuous molecular remission for 11 months.

Antilymphocyte Serum↗

The composition of CD34 subpopulations differs between bone marrow, blood and cord blood.

Our previous data obtained by flow cytometry and by clonogenic assay had consistently shown a lower cloning efficiency of hematopoietic progenitor cells in bone marrow (BM) compared to those in blood (PB) or in cord blood (CB). Also, recent clinical reports have described more rapid reconstitution after PB than after BM transplantation. We have applied two- or three-color flow cytometric analysis using monoclonal antibodies directed against the stem- and progenitor cell antigen CD34, in combination with other cell surface markers. We report significant differences in the composition of progenitor cells contained in BM (238 specimens from 53 healthy donors and from patients in remission), PB (301 samples from 92 patients with or without cytokine support) and CB (n = 37). Leukapheresis products (Pher, n = 69) were included in the study as well as positively selected CD34+ cells obtained from BM (BMsel, n = 2), PB (PBsel, n = 28) and CB (CBsel, n = 5). We used monoclonal antibodies directed against CD7, CD19, CD34, CD38, CD45RA and glycophorin A. The highest proportion of CD34+ cells (in % of the MNC) was found in BM (mean 5.37% +/- 4.5). In the other sources, the mean values were 1.79% +/- 2.46 (PB), 1.48% +/- 1.81 (Pher) and 1.1% +/- 1.69 (CB). However, BM was the only source in which a considerable proportion of the CD34+ cells coexpressed the B cell antigen CD19 (mean 30.1%, median 28, range 0 to 84%). The amount of earlier myeloid progenitors as determined by their non-expression of the CD45RA antigen was lowest among BM CD34+ cells (26.7% +/- 16.6). In the other sources, the respective values were 57.5% +/- 17.9 (PB), 63.6% +/- 13.9 (Pher) and 70.4% +/- 16.1 (CB). These results were confirmed by subtype analyses of the CD34+ cells positively selected from the three sources. Enrichment showed minor CD34+ subpopulations to be identified. The mean proportions of B cell progenitors were 0.11% +/- 0.24 (PBsel) and 1.3% +/- 1.42 (CBsel) of the CD34+ cells. The CD34+ cells from all cell sources coexpressed GPA (median 0.15%, range 0 to 1.8%) and CD7 (median 0.25%, range 0 to 1.2%). The proportion of CD38- cells ranged from 0.7 to 4% of the CD34+ MNC. Thus, despite higher CD34 counts in BM, the relative proportions of myeloid progenitors are higher in PB and in CB. This suggests that, if timely reconstitution depends on the number of CD34+ cells transplanted, the mean number of "stem cells' (SC) required is 1.4-fold (for myeloid cells) or 2.2-fold (for earlier myeloid cells) higher for BM than for PB.

Adolescent↗

Expression of G alpha 16, a G-protein alpha subunit specific for hematopoiesis in acute leukemia.

G-proteins are essential in signal transduction pathways. A G-protein alpha subunit termed G alpha 16 was found to be exclusively expressed in hematopoietic cell lines. In cells derived from patients, G alpha 16 expression has been detected in progenitor- and pre-B ALL cells and also in peripheral blood stem cells (PBSC). In this study, we analyzed G alpha 16 expression using a RT-PCR technique by testing elutriated blood cells from normal donors, PBSC from breast cancer patients and bone marrow or peripheral blood cells from acute leukemia patients. Both of two ALL patients and 15/16 AML patients expressed G alpha 16. In elutriation experiments, G alpha 16 expression was found in fractions containing the highest number of precursor cells but was absent in mature T and B cell fractions. In addition, CD34-enriched PBSC were positive for G alpha 16 expression. Further in vitro experiments using the cell line KG1 showed that G alpha 16 expression was not affected by the growth inhibiting hemoregulatory peptide pEEDCK which has a sequence homology present within G alpha 16. Taken together, these data demonstrate that G alpha 16 is expressed in various normal and malignant hematopietic progenitors but not in their differentiated counterparts. G alpha 16 could play a vital role in signal transduction pathways controlling proliferation in early normal and malignant hematopoiesis.

Acute Disease↗

G-CSF stimulation of donor myelopoiesis prolongs survival of relapsed BCR-ABL-positive acute lymphoblastic leukemia after allogeneic marrow transplantation.

An allogeneic sex-mismatched BMT which was performed in a male patient with BCR-ABL-positive ALL in second hematological and central nervous system relapse resulted in a CR for 12 months. After BMT, the patient was closely monitored with reverse transcription (RT)-PCR. One month before a third relapse RT-PCR became positive. During relapse G-CSF was administered. It specifically stimulated the donor-derived myelopoiesis and led to the stabilization of the disease for 8 months. Fluorescence in situ hybridization analyses of individual cell populations revealed that during the whole course of G-CSF administration granulocytes, CD4+, CD8+ and CD34+/CD10- cells were of female (donor) origin and only the CD34+/CD10+ cells which represented the leukemic blasts, were of male (host) origin.

Adult↗

Characterization of hematopoietic stem cells.

On the basis of density-separated mononuclear cells isolated from bone marrow, peripheral blood, and cord blood, we have repeatedly shown good correlation between two-color flow cytometric (FACS) CD34 analysis and colony formation in the clonogenic assay. We have analyzed the distributions of CD34 subpopulations in these three stem cell sources using patients' and donors' bone marrow biopsies (n = 196), cord blood samples from full-term deliveries (n = 14), and peripheral blood from patients mobilized by chemotherapy and/or cytokine treatment (n = 258). Irrespective of absolute cell counts, the mean (+/- SD) proportions of CD34+ cells were clearly higher in bone marrow (5.6 +/- 4.6% of mononuclear cells) than in peripheral blood (1.9 +/- 2.6) and cord blood (1.7 +/- 2.6). However, two-color FACS analyses revealed significant differences among these cell sources with regard to their distribution of CD34 subpopulations: B-cell progenitors coexpressing CD34 and CD19, at considerable concentrations of > 0.5%, were only found in bone marrow (mean 30 +/- 24.3% of CD34+ mononuclear cells, median 28.7%, minimum 0%, maximum 83.3%). In addition, CD34+ cells in S/G2M phase were never detected in peripheral blood or cord blood, but only in bone marrow at a concentration of 10-15% of CD34+ mononuclear cells. On the other hand, the proportions of relatively immature myeloid progenitors, as characterized by not expressing CD45RA and by higher clonogenic capacity, were significantly higher in cord blood (76.7 +/- 17.2) and peripheral blood (58.2 +/- 17.5) than in bone marrow (26.4 +/- 16.7). These data were confirmed by analysis of apheresis products and of progenitors positively selected from different cell sources, and they may explain why, in autologous transplantations of analogous amounts of CD34+ cells, peripheral blood is superior to bone marrow. We conclude from our results that if successful transplantation and timely recovery depend on the number of CD34+ cells transplanted, the mean amount of stem cells required is 1.4- (for myeloid cells) or 2.2-fold (for early myeloid cells) higher for bone marrow than for peripheral blood.

Antibodies, Monoclonal↗

Granulomonocyte-associated lysosomal protein expression during in vitro expansion and differentiation of CD34+ hematopoietic progenitor cells.

Using an in vitro expansion and differentiation system for human CD34+ cord blood (CB) progenitor cells, we analyzed the induction and expression kinetics of the granulomonocyte associated lysosomal proteins myeloperoxidase (MPO), lysozyme (LZ), lactoferrin (LF), and macrosialin (CD68). Freshly isolated CD34+ CB cells were negative for LZ and LF, and only small proportions expressed MPO (4% +/- 2%) or CD68 (3% +/- 1%). Culturing of CD34+ cells for 14 days with interleukin (IL)-1, IL-3, IL-6, stem cell factor, granulocyte-macrophage colony-stimulating factor (GM-CSF), and G-CSF resulted in on average a 1,750-fold amplification of cell number, of which 83% +/- 7% were MPO+. Without addition of GM-CSF and G-CSF, lower increases in total cell numbers (mean, 211-fold) and lower proportions of MPO+ cells (54% +/- 11%) were observed. The proportion of MPO+ cells slightly exceeded but clearly correlated with the proportion of cells positive for the granulomonocyte associated surface molecules CD11b (Mac-1), CD15 (LeX), CD64 (Fc gamma RI) CD66, or CD89 (Fc alpha R). At day 14 MPO+ and LZ+ cells were virtually identical. However, at earlier time points during culture (days 4 and 7), single MPO+ or LZ+ cell populations were also observed, which only later acquired LZ and MPO, respectively. Maturation of cells into the neutrophilic pathway was indicated by the acquisition of MPO, followed by LZ. In contrast, maturation of cells into the monocytic pathway was indicated by the acquisition of LZ followed by MPO and CD14. CD68 was found to be expressed at day 4 by the majority of cells and was not restricted to the granulomonocytic cells, as cells with megakariocytic (CD41+) or erythroid (CD71hi) features were CD68+. LF expression was observed only in GM- plus G-CSF-supplemented cultures, in which only 26% +/- 5% of cells expressed LF by day 14.

Antigens, CD↗

Purification of human basophils and mast cells by multistep separation technique and mAb to CDw17 and CD117/c-kit.

Basophils and mast cells represent distinct cell lineages within the hemopoietic system. Based on the unique cell surface antigen profile of both cells, we have established methods which allow the reproducible purification to homogeneity (> 99%) of normal human basophil granulocytes from the peripheral blood and of mast cells from human dispersed tissues. Basophils (n = 9) were purified by current counterflow elutriation followed by depletion of monocytes with CD14 mAb conjugated to magnetic beads, and subsequent cell sorting for CD217+ cells. Basophil purity was 99.5 +/- 0.4% (range 98.7-99.9%). Mast cells were obtained from lung (n = 6), uterus (n = 1), mastocytosis bone marrow (n = 2), and human foreskin (n = 2). Mast cells were purified by collagenase digestion followed by current counterflow elutriation and sorting with CD117/c-kit mAb. Mast cell purity was 99.4 +/- 0.7% (range: 97.5-99.9%). Purified cells were more than 90% viable and were able to release histamine on induction with IgE plus anti-IgE. Furthermore, the PCR technique could be applied on pure cells and confirmed expression of high affinity IgE receptor (Fc epsilon R1) alpha chain mRNA. Thus, by combining isolation techniques including elutriation, magnetic cell depletion and cell sorting with mAb, functionally intact normal human basophils and mast cells can be enriched to homogeneity.

Antibodies, Monoclonal↗

Recombinant human granulocyte-macrophage colony-stimulating factor in septic neutropenic pediatric cancer patients: detection of circulating hematopoietic precursor cells correlates with rapid granulocyte recovery.

Cycling intensive chemotherapy currently used to treat pediatric solid tumors induces severe neutropenia. Prolonged neutropenia is a major risk factor for septic death which occurs in up to 5% of febrile or septic neutropenic episodes. We treated 18 neutropenic pediatric cancer patients (eight females, 10 males) during 30 febrile and/or septic episodes with single daily doses of E. coli-derived non-glycosylated recombinant human granulocyte-macrophage colony-stimulating factor (rh-GM-CSF, 5 micrograms per kg of body weight). The cytokine was administered for a median period of 6.5 days (2-12 days). Analysis of circulating hematopoietic progenitor cells was performed at day 1 (baseline) and day 5 of rh-GM-CSF treatment and included flow cytometric CD34 analysis as well as the methylcellulose-based clonogenic assay. Prompt hematopoietic recovery and resolution of septic problems was observed in all children. The counts of leukocytes (WBC), absolute neutrophils (ANC), and platelets (PLT) rose above 1,000/microL, 1,000/microL, and 50,000/microL within 4 days (0-9), 5.5 days (2-13), and 6 days (0-14), respectively. Faster granulocyte recovery and improved recruitment of circulating hemopoietic precursors was observed in children with detectable amounts (> 0.1%) of CD34-positive mononuclear cells prior to rh-GM-CSF treatment. We conclude that, to some extent, the efficacy of rh-GM-CSF treatment in neutropenic cancer patients is influenced by the hematopoietic recovery status on the progenitor cell level. Although they respond more slowly to the treatment, patients without circulating CD34-positive progenitor cells may gain most from growth factor therapy. Rh-GM-CSF can be safely administered to febrile and/or septic neutropenic children treated for cancer.

Adolescent↗

Origin of human mast cells: development from transplanted hematopoietic stem cells after allogeneic bone marrow transplantation.

Although mast cells are hematopoietic cells, little is known about the origin of their precursors in vivo. In this study, the origin (donor v recipient genotype) of human mast cells (MCs) was analyzed in a patient who underwent allogeneic bone marrow transplantation (BMT). The patient presented with secondary acute myeloid leukemia (French-American-British classification, M2) arising from refractory anemia with excess of blast cells and bone marrow (BM) mastocytosis. Transplantation was performed in chemotherapy-induced complete remission. On days 88, 126, 198, and 494 after BMT, mast cells were enriched to homogeneity from bone marrow mononuclear cells (BM MNCs) by cell sorting for CD117+/CD34- cells. Purified mast cell populations were CD117(c-kit)+ (> 95%), CD34- (< 1%), CD3- (< 1%), CD14- (< 1%), and virtually free of contaminating cells as assessed by Giemsa staining. The genotype of MCs was analyzed after amplification by polymerase chain reaction (PCR) of a variable number tandem repeat (VNTR) region within intron 40 of the von Willebrand factor (vWF) gene. Unexpectedly, on days 88 and 126 after BMT, sorted MCs displayed recipient genotype as shown by vWF.VNTR-PCR. However, on days 198 and 494, PCR analysis showed a switch to donor genotype in isolated mast cells. Peripheral blood (PB) and BM MNC as well as highly enriched (sorted) CD3+ T cells (PB, BM), CD4+ helper T cells (PB), CD8+ T cells (PB), CD19+ B cells (PB), CD14+ monocytes (PB, BM), and CD34+ precursor cells (BM) showed donor genotype throughout the observation period. Together, these results provide evidence that human MCs developed in vivo from transplanted hematopoietic stem cells. Engraftment and in vivo differentiation of MCs from early hematopoietic progenitor cells may be a prolonged process.

Bone Marrow Transplantation↗