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Biomedical subjects

N Jamal

Publications and source records attributed to N Jamal.

At least 19 recordsLinked to original sources

Differentiation profiles of normal blast cell colonies derived from mononucleated cells, T cell depleted nonadherent cells and CD33-negative, CD34-positive normal human bone marrow cells.

Blast cell colonies can be grown reproducibly in methylcellulose from normal human mononuclear bone marrow cells (MNC) in the presence of 30% human plasma, 1 U human recombinant erythropoietin and 10% of medium conditioned by phytohemagglutinin stimulated leukocytes as a source of growth factors. The colonies can be recognized by inverted microscopy by their display of highly refractile cytoplasmic structures that resemble small vacuoles. A proportion of cells within these colonies remains CD34-positive (CD34+). The blast-like morphology of these cells was sustained for at least 14 to 21 days. The frequency of blast cell colony forming units (CFU-BL) can be increased by a series of separation procedures to produce E-rosette depleted, nonadherent cells (E-NAC), CD34+ cells and CD33-CD34+ cells. The mean number of CFU-BL per 10(5) cells was 1.9 +/- 1.6 in MNC, 5.7 +/- 2.7 in E-NAC, 108 +/- 51 in CD34+ cells and 112 +/- 109 in CD33-CD34+ cells. The enrichment procedures were not specific for CFU-BL but also resulted in a similar increase of multilineage and single lineage progenitors. The relative proportions of CFU-BL and other progenitors remained unchanged among these subpopulations. The size of individual blast cell colonies on day 16 varied from 20 to 1,600 cells. After 14 to 21 days, cells within blast cell colonies acquired mature morphological features. The majority of blast cell colonies developed into multilineage colonies (62%); some (38%) were restricted to a single hemopoietic lineage. Larger blast cell colonies had a higher probability of developing into multilineage colonies than smaller blast cell colonies.

Antigens, CD

Constitutive production of the interleukins IL-5 and IL-6 by the lymphoma cell line OCI-Ly 17 derived from a patient with malignant lymphoma and hypereosinophilia.

Peripheral blood cells of a patient with diffuse large cell non-Hodgkin's lymphoma presenting with hypereosinophilia were used to establish an EBV negative lymphoma cell line termed OCI-Ly17. Cells of the line stained positive for CD2 and CD5 determinants and demonstrated rearrangement of the T-cell receptor beta chain. The immunoglobulin heavy chain gene was found to be in germ line configuration. Northern blot studies using probes for IL-1 alpha, IL-3, IL-4, IL-5, IL-6, and GM-CSF showed message for IL-5 and IL-6. Supernatants of the cell line were evaluated on normal non-adherent, E-rosette depleted bone marrow cells to determine the presence of growth promoting activities for clonogenic eosinophilic progenitors. Eosinophilic colonies were observed. Their frequency depended upon the amount of supernatant added to the cultures. The growth promoting activity in the supernatant was reduced in a dose dependent manner by preincubation with increasing concentrations of anti-IL-5 antibodies. The supernatants of the cell line were also tested on the IL-6 sensitive human myeloma line OCI-My4 and myeloma colonies grew in response. This stimulatory activity within the supernatant was neutralized by addition of increasing concentrations of anti-IL-6 antibodies. Although producing IL-5 and IL-6 constitutively, the lymphoma line did not increase proliferation in response to either interleukin, nor did it show a reduced proliferative rate when antibodies to IL-5 or IL-6 were added to the cultures.

Aged

Growth and detection of human bone marrow B-lineage colonies.

A reproducible method for growing normal human bone marrow B-lineage colonies in agar is described. The clonogenic cells require a rich medium, Opti-MEM (GIBCO/BRL, Burlington, Ontario, Canada), and a source of T-cell-derived factors for growth. The conditions described appear to be limiting for the colony progenitor, suggesting assay clonality. Three novel methods that permit routine and rapid detection of these human B-cell colonies are also described. Colonies containing cells that secrete immunoglobulin are detected by plaquing and protein immunoblotting, while RNA transcripts can be detected by RNA colony blotting. The detection of more than one secreted immunoglobulin isotype or RNA species in a single colony can also be achieved. This B-cell colony assay and the associated detection methods will allow the further delineation of human B lymphopoiesis in both normal and disease states.

B-Lymphocytes

Production of growth factors by malignant lymphoma cell lines.

Fourteen Epstein-Barr virus (EBV)-negative cell lines were raised from bone marrow (BM), peripheral blood (PB), or lymph node samples of patients with intermediate- or high-grade malignant lymphoma. The cell lines were propagated in liquid suspension culture. They contain clonogenic progenitors capable of forming lymphoma colonies in semi-solid culture medium. Cells of these lines were used to examine the growth factor requirements of their clonogenic progenitors and to assess their ability to produce their own growth factors. Two of the cell lines (OCI-Ly9 and OCI-Ly13.1) required addition of exogenous factors for colony growth. These factors were routinely provided by media conditioned by phytohemagglutinin-stimulated leukocytes (PHA-LCM). Three lines formed some and nine lines gave rise to optimal numbers of colonies without addition of growth factors. Eight of these factor-independent lines were able to function as feeder cells and promoted colony formation by both factor-dependent lines. Cell lines that displayed feeder cell function released activities into supernatants able to replace their cellular source. Some of these endogenously produced growth-promoting activities could be replaced by known hematopoietic growth factors. Both factor-dependent cell lines were cultured with recombinant IL-1 alpha, IL-2, IL-3, IL-6, and GM colony-stimulating factor (CSF) and semipurified B-cell growth factor (BCGF) interleukin-4 (IL-4). A heterogeneous response pattern was observed. Both lines formed colonies with IL-4. The colonies were comparable in frequency and size with colonies observed with (PHA-LCM). OCI-Ly9 responded to IL-6 but showed no growth with IL-2. In contrast, the TAC-positive line OCI-Ly13.1 gave rise to colonies with IL-2 while remaining unresponsive to IL-6. A moderate number of colonies was observed when cells of this line were cultured with GM-CSF. Colony formation of both lines was uninfluenced by IL1 alpha or IL-3.

Cell Division

Hemopoietic colony growth-promoting activities in the plasma of bone marrow transplant recipients.

Plasma samples were obtained from 34 bone marrow transplant (BMT) recipients before and after administration of the preparative regimen and tested for their ability to promote and/or support growth of hemopoietic colonies. The ability of plasma samples to promote colony formation on their own was tested on normal nonadherent target cells without addition of exogenous growth factors. The growth-supporting activity was examined in the presence of medium conditioned by phytohemagglutinin-stimulated leukocytes (PHA-LCM) and/or erythropoietin (EPO). A series of kinetic changes was routinely observed. Pretransplant samples rarely gave rise to colonies without addition of exogenous growth factors. Plasma samples obtained after completion of the preparative regimen demonstrated increments of growth-promoting activities for megakaryocyte and granulocyte-macrophage progenitors (CFU-Meg and CFU-GM), respectively, that peaked between 7 and 21 d after transplantation. By day 30, activity levels of some patients had returned to pretransplant values, whereas in other patients, activities remained elevated. Persisting activity levels were associated with delayed engraftment. In contrast, activities for progenitors committed to erythropoiesis (BFU-E) and pluripotent precursors (CFU-GEMM) were only rarely observed. The activities were independent of febrile episodes. Their growth-promoting influence on CFU-GM could be neutralized completely by anti-granulocyte-macrophage colony-stimulating factor (GM-CSF) antibodies. These data suggest that at least some of the observed activities in post-BMT plasma are related to GM-CSF. The growth-supporting activities of pretransplant plasma samples are lower than normal plasma when tested on CFU-Meg and CFU-GM. The growth-supporting activities improved transiently within the first month after BMT. A decline during the second and third month was followed by a gradual return to activity levels that were comparable to normal plasma. The effects of these plasma samples on BFU-E and CFU-GEMM were assessed with PHA-LCM and EPO. Similar to CFU-Meg- and CFU-GM-supporting capabilities, they improved transiently after BMT with a return of normal support function after 5-6 mo. The observed endogenous production of growth-promoting and growth-supporting activities for hemopoietic progenitors may serve as a background to design clinical trials for the timely administration of recombinant hemopoietic growth factors to BMT recipients.

Animals

Megakaryocyte colony growth-supporting activities in human plasma: modification by platelets and platelet membranes.

Human megakaryocyte colonies are grown in methylcellulose with platelet-poor plasma and medium conditioned by phytohemagglutinin-stimulated leukocytes (PHA-LCM) as a source of megakaryocyte colony stimulating factor (MEG-CSF). The megakaryocyte colony growth-supporting activity in human plasma can be absorbed by intact platelets or degranulated platelet membranes. It was possible to recover the activity by solubilizing platelet membranes with cholic acid. Filtration of the solubilized platelet membrane preparations through a Sephadex G-100 column yielded at least two activity peaks. The molecular weight of these two activities differs from that of the growth-promoting activity in PHA-LCM.

Blood Physiological Phenomena

Growth of human hemopoietic colonies in response to recombinant gibbon interleukin 3: comparison with human recombinant granulocyte and granulocyte-macrophage colony-stimulating factor.

Supernatants of COS-1 cells transfected with gibbon cDNA encoding interleukin 3 (IL-3) with homology to sequences for human IL-3 were tested for ability to promote growth of various human hemopoietic progenitors. The effect of these supernatants as a source of recombinant IL-3 was compared to that of recombinant human granulocyte-macrophage colony-stimulating factor (GM-CSF) and granulocyte colony-stimulating factor (G-CSF) as well as to that of medium conditioned by phytohemagglutinin-stimulated leukocytes. The frequency of multilineage colonies, erythroid bursts, and megakaryocyte colonies in cultures containing the COS-1 cell supernatant was equivalent to the frequency observed in the controls and significantly higher than found in cultures plated with recombinant GM-CSF. G-CSF did not support the formation of multilineage colonies, erythroid bursts, and megakaryocyte colonies. In contrast, growth of granulocyte-macrophage colonies was best supported with GM-CSF, while recombinant IL-3 yielded colonies at lower or at best equivalent frequency. The simultaneous addition of higher concentrations of GM-CSF to cultures containing IL-3 in optimal amounts did not enhance the formation of multilineage colonies, erythroid bursts, and megakaryocyte colonies. However, the frequency of such colonies and bursts increased with GM-CSF when cultures were plated with suboptimal concentrations of IL-3. Growth of colonies within the granulocyte-macrophage lineage is optimally supported by GM-CSF and does not increase with further addition of IL-3.

Animals

Clonogenic hemopoietic precursors in bone marrow transplantation.

Multilineage and single-lineage hemopoietic precursors were studied in 102 bone marrow transplant recipients and their respective donors to determine their contribution to clinical outcome as measured by time to engraftment and survival. The patient population was heterogenous with respect to diagnosis and disease status. They included individuals with acute myeloid leukemia (AML), chronic myeloid leukemia (CML), acute lymphoblastic leukemia (ALL), aplastic anemia, and a few other hematopoietic malignancies. The frequency of various clonogenic precursors in the normal donor population varied considerably. The data yielded a symmetrical distribution. In contrast, most bone marrow transplant recipients presented with significantly reduced numbers of clonogenic cells before transplantation, resulting in skewed distribution profiles. Serial studies of recipients demonstrated a significantly lower than normal level of clonogenic precursors even 3 and 4 years after transplantation. The median values and distribution profiles approximated those observed before transplantation but did not return to measurements obtained for normal donors. Patients with ALL deviated from this pattern. The median values and distribution profiles of clonogenic precursors before transplantation approximated the pattern of normal donors. The frequency of clonogenic progenitors after transplantation, however, remained significantly lower than that of their respective donor or pretransplant values. Cell cycle studies performed after normalization of peripheral blood hematopoietic parameters demonstrated for most recipients that a higher than normal proportion of multipotent cells was in S-phase (P = .011). By univariate and multivariate approaches, clonogenic precursors and clinical parameters were assessed for their contributions to clinical outcome as measured by time to engraftment and survival time. The number of nucleated cells in the transplant inoculum contributed to survival independent of other risk factors. Patients with a higher cell load had a higher probability of surviving than did patients with a lower cell concentration in the transplant inoculum (P = .042). The frequency of clonogenic precursors in the transplant inoculum altered neither survival nor time to engraftment. The time to engraftment was significantly influenced by the frequency of clonogenic megakaryocyte precursors (CFU-M) observed in recipients prior to transplantation (P = .003). Patients with high values engrafted faster than did patients with a low frequency of CFU-M. This was independent of both diagnosis and disease status of the patients at time of transplantation.

Adolescent

The presence of clonogenic cells in high-grade malignant lymphoma: a prognostic factor.

A culture system has been developed that promotes growth of clonogenic lymphoma cells of some patients with intermediate and high-grade malignant lymphoma. The formation of colonies in bone marrow, lymph nodes, and peripheral blood samples is best supported by human plasma. Colony formation of some patients was dependent upon growth factors, which in this study were added in the form of medium conditioned by phytohemagglutinin (PHA)-stimulated leukocytes (PHA-LCM). Some gave rise to lymphoma colonies without PHA-LCM but improved their frequency with PHA-LCM; others were completely independent of PHA-LCM. Colonies grown in primary cultures were routinely recloned and propagated as Epstein-Barr virus (EBV)-negative cell lines with stable B cell phenotype. The cell lines showed the same immunoglobulin rearrangement pattern as that observed in the primary lymphoma sample. In addition, a significant clinical correlation was observed between culture data and clinical outcome. Survival of patients who formed lymphoma colonies at any time during their clinical course was significantly shorter than survival of patients who did not give rise to colonies (P = 0.0009). The same observation was made when the survival assessment was performed for the subset of patients studied at diagnosis (P = 0.0014).

Adult

Characterization of human megakaryocytic colony formation in human plasma.

We have analysed the contribution to megakaryocyte colony formation in methylcellulose made by human plasma, serum, media conditioned by phytohemagglutinin (PHA) stimulated leukocytes (PHA-LCM), erythropoietin (EPO) preparations, and platelets. The culture system was used as a bioassay for megakaryocyte colony stimulating activity (Meg-CSA) in plasma samples of patients with perturbed megakaryocytopoiesis. Preparations of heparinized platelet-poor plasma yielded the most consistent results. Platelet-poor plasma of normal subjects will at best facilitate the occasional growth of small megakaryocyte colonies. Colony frequency and size are reproducibly enhanced in the presence of PHA-LCM as a source of exogenous Meg-CSA. Commercially available EPO preparations may vary in their content of activities that influence megakaryocyte colony formation. Addition of these preparations to cultures that contain plasma and PHA-LCM usually does not enhance colony formation. In contrast to platelet-poor plasma, platelet rich plasma and serum are less supportive of megakaryocyte colony growth. It is suggested that this loss of activity may be related to the release of inhibitors by activated platelets or alternatively caused by absorption of activities by platelets. Plasma samples from patients with megakaryocytopoietic dysfunction may contain components that promote colony formation without addition of PHA-LCM or EPO. This phenomenon is consistently observed for patients with severe aplastic anemia and bone marrow transplant recipients after completion of their ablative preparative regimen.

Anemia, Aplastic

Colony growth and self renewal of plasma cell precursors in multiple myeloma.

Culture conditions that support the growth of multi-and single-lineage hemopoietic colonies are also able to give rise to large myeloma colonies from bone marrow and peripheral blood samples of some patients with multiple myeloma. The culture system was used to determine the frequency of hemopoietic precursors and clonogenic myeloma progenitors in 71 patients with multiple myeloma studied in various clinical phases of the disease. The frequency of normal hemopoietic precursors in patients with benign monoclonal gammopathy and smoldering myeloma were indistinguishable from normal controls. Myeloma colonies were not observed in these subgroups. In contrast, patients with active disease showed significantly reduced hemopoietic colony formation, even before the initiation of therapy. A further reduction was demonstrated for patients with acute phase disease. A correlation between the frequency of hemopoietic colonies and the concentration of plasma cells in the plated sample was not observed. Large myeloma colonies with recloning potential were identified in cultures of specimens derived from 14 of the studied patients. These colonies were most frequently (ten cases) obtained from patients who had entered the acute phase of the disease. These patients manifested marrow failure (pancytopenia) and their marrow had a limited capacity to generate normal hemopoietic colonies. Three of the patients that formed myeloma colonies were studied in chronic phase following chemotherapy and one patient was examined at diagnosis. The myeloma colonies were composed exclusively of cells characterized by the same M protein as the patient. Some of the cells within the colonies retained their ability to self renew extensively, as demonstrated by serial recloning studies. Colonies derived from six of the patients are now propagated in semisolid and liquid medium for as many as nine to 34 generations. Patients that form myeloma colonies under these culture conditions represent a high-risk group with significantly shorter survival than patients not able to give rise to myeloma colonies. A Cox proportional hazards model was fitted to the data to determine the prognostic role of myeloma colony growth in culture after accounting for the influence of other well established risk factors, such as concentration of plasma cells and disease status. The analysis indicated that myeloma colony growth in culture serves as a strong and independent predictive indicator of poor clinical prognosis.

Actuarial Analysis

Heterogeneity of human peripheral blood eosinophil-type colonies: evidence for a common basophil-eosinophil progenitor.

We have recently shown that a proportion of previously designated human eosinophil "(Eo)-type" colonies in methylcellulose contain basophils and histamine (Denburg et al Blood 61:775, 1983). In the present studies, individual Eo-type colonies have been analyzed by cell morphology as well as by biochemical assays for histamine, Charcot-Leyden crystal protein (CLC), and eosinophil granule major basic protein (MBP). Clonal origin of single Eo-type colonies was confirmed by G6PD isoenzyme analysis. Morphological observations of such colonies revealed the existence of two distinct colony types: (1) Eo type containing 100% basophils and (2) Eo type containing mixtures of basophils and eosinophils, including cells with mixed basophil-eosinophil granulation. Histamine was not detected in pure, mature peripheral blood eosinophils. Immunofluorescent studies demonstrated bright staining for CLC and MBP in 95% +/- 3% of cells in Eo-type colonies but only in 5% +/- 4% of cells in GM-type colonies. Radioimmunoassay for MBP was positive in 5/9 Eo-type and 0/10 neutrophil-macrophage ("GM-type") colonies, with a mean level (nanogram/colony) of 11.6 +/- 4.2 per Eo-type colony; four of the latter colonies were doubly positive for both histamine and MBP. These and previous findings point out the morphological and biochemical heterogeneity of peripheral blood Eo-type colonies and provide direct evidence for the existence of a common, circulating basophil-eosinophil progenitor.

Basophils

Human megakaryocytopoiesis in cell culture.

In conclusion, a culture system is now available that reproducibly facilitates the development of megakaryocyte colonies and the emergence of megakaryocytes within multilineage colonies. The assay is dependent upon the use of human plasma and a source of exogeneous MEG-CSA. Patients with perturbed hemopoiesis plasma may contain activities able to replace exogeneous MEG-CSA. This system can therefore be used to evaluate MEG-CSA activities. In addition it is now feasible to study blast populations of patients with leukemia characterized by a megakaryocyte phenotype.

Bone Marrow Transplantation

Clonal origin of human basophil/mast cells from circulating multipotent hemopoietic progenitors.

The origin of the human basophil/mast cell lineage from a pluripotent hematopoietic stem cell has been surmised but never demonstrated. By examining individual hemopoietic colonies in methylcellulose under inverted microscopy and using histochemical stains in conjunction with single-colony histamine assays, we have previously identified basophil/mast cell progenitors in human peripheral blood. We now report that a large proportion of normal human peripheral blood mixed granuloerythropoietic (GEMM) colonies contain histamine, in contrast to a significantly lower frequency of histamine positivity among normal neutrophil-macrophage, eosinophil, erythroid, macrophage, or megakaryocyte colonies. Morphological observations confirmed the presence of basophil/mast cells in the majority of GEMM colonies. In our work, the clonal derivation of basophils/mast cells from circulating multipotent (CFU-GEMM) hemopoietic stem cells was formally demonstrated, using combined histamine and G6PD isoenzyme analysis of single colonies grown in methylcellulose from a normal G6PD heterozygote.

Basophils

Diastolic mitral regurgitation in patients with hypertrophic cardiomyopathy.

An analysis of the left ventricular angiograms of 31 patients with hypertrophic cardiomyopathy revealed diastolic mitral regurgitation in 4, a prevalence of 12.9%. The clinical, echocardiographic, angiographic, and hemodynamic data of these patients were reviewed. Diastolic mitral regurgitation could not be attributed to arrhythmia, PR interval prolongation, atrioventricular dissociation, aortic insufficiency, or aortic stenosis. Reduced left ventricular compliance was evidenced by elevated end-diastolic pressure following angiography and reduced diastolic E-F slope on echocardiography. It is speculated that the rapid inflow of blood into a poorly compliant ventricle established a turbulent flow pattern that resulted in the "floating" of blood back into the left atrium.

Angiocardiography

A simple and rapid method for the isolation of cholesterol from spinal cord of cattle.

A method is described for the large scale isolation of cholesterol from cattle spinal cord. Cholesterol is released from the lipo-protein by drying the wet tissues with calcium oxide. This treatment appears to prevent the extraction of polar lipids with acetone, which reduces the lipophylic properties of the solution and thus provides a method for almost exclusive extraction of cholesterol. The further role of calcium oxide is also discussed. The method evolved is simple, rapid and eliminates several previously required steps.

Animals