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Biomedical subjects

R F Levine

Publications and source records attributed to R F Levine.

At least 19 recordsLinked to original sources

Megakaryocytes and megakaryocyte progenitors in human cord blood.

Thrombocytopenia contributes significantly to morbidity in the sick term or preterm infant. However, few data exist on newborn's megakaryocytes and megakaryocyte progenitor cells (CFU-MK). We therefore studied CFU-MK in term and preterm infant cord blood and compared the results with data on CFU-MK from adult bone marrow and adult peripheral blood in a plasma clot culture with postirradiated aplastic canine serum (PIACS) as a source of megakaryocyte colony-stimulating activity. The number of CFU-MK and the number of cells per CFU-MK were counted with an immunofluorescent method at day 12. The effect of T-lymphocyte depletion on cord blood cultures for CFU-MK was studied with PIACS and a partially purified product of PIACS. We also studied individual megakaryocytes from newborns. The number and sizes of circulating megakaryocytes, isolated from adult peripheral blood and term venous cord blood by elutriation, were compared. Term and preterm cord blood contained more CFU-MK than adult peripheral blood. The numbers of CFU-MK in preterm cord blood were comparable to those in adult bone marrow. When the number of cells per colony were compared, cord blood contained significantly more cells than adult marrow CFU-MK. The depletion of T lymphocytes did not significantly change the growth of CFU-MK compared to nondepleted cultures. A substantial number of circulating megakaryocytes were obtained from venous cord blood, though they were significantly smaller than adult peripheral blood megakaryocytes. Since cord blood is easily obtained and contains large numbers of megakaryocytes and CFU-MK, it may provide a convenient model for studying the regulation of fetal megakaryocytopoiesis.

Animals

Familial thrombocytopenia with micromegakaryocytes.

Chronic thrombocytopenia was noted in two siblings and a first cousin. The initial impression was of immune thrombocytopenic purpura (ITP) with decreased megakaryocytes. One patient had splenectomy for presumed chronic ITP but showed no improvement. Bone marrow buffy coat slides were examined in the three children with thrombocytopenia, four normal controls, and five children with "classic" acute ITP. Megakaryocyte size, maturation, and ploidy were determined with Wright-Giemsa and Feulgen-stained material. Mean megakaryocyte diameters were 23.1 microns in the three related patients, 30.8 microns in normal controls, and 63.1 microns in children with "classic" acute ITP. Many "micromegakaryocytes" were noted in the three related children with chronic thrombocytopenia. An exhaustive family history was obtained, which showed multiple points of consanguinity. These patients represent an apparently new autosomal recessive disorder of megakaryocytopoiesis, characterized by disturbed megakaryocyte ploidization and maturation. More sensitive recognition of micromegakaryocytes should be attempted in children with atypical chronic thrombocytopenia, familial history of thrombocytopenia, or patients who have ITP and who have not responded to initial therapy.

Bone Marrow Examination

Thrombocytopenia and absent radii syndrome: defective megakaryocytopoiesis-thrombocytopoiesis.

Thrombocytopenia and absent radii (TAR) syndrome is a congenital defect with osseous abnormalities and thrombocytopenia. It is inherited as an autosomal recessive trait, but the mechanism of thrombocytopenia in this disorder is not clear. We have had the opportunity to study the mechanism of thrombocytopenia in an infant with TAR syndrome. The infant had normal levels of thrombopoietin and megakaryocyte colony-stimulating activity in spite of marked thrombocytopenia. However, the megakaryocyte progenitor cells in the bone marrow produced abnormal colonies with increased numbers of megakaryocytes per colony and small megakaryocytes similar to the small megakaryocyte seen in vivo. These findings suggest that the TAR syndrome in this infant is due to a failure in the production of thrombopoietin or to an abnormal progenitor cell with a maturational defect.

Animals

The effect of flow on the interaction of isolated megakaryocytes with subendothelial extracellular matrix.

We have previously shown that human, guinea pig, or rat megakaryocytes, incubated under static conditions on an extracellular matrix (ECM) produced by endothelial cells, readily adhered to the matrix and underwent platelet-like shape change and thromboxane A2 secretion. We have now exposed megakaryocytes to ECM in a perfusion system similar to that used to study platelets circulated over aortic subendothelium. We used a continuous flow circuit incorporating a parallel plate perfusion chamber. Megakaryocytes were isolated to high purity from guinea pig marrow by centrifugal elutriation and velocity sedimentation. The cells were introduced into the flowing medium while the surface of an ECM-coated coverslip mounted in the chamber was observed continuously by phase-contrast video microscopy for up to 18 hours. Megakaryocytes from the flowing suspension started to adhere to the ECM within seconds. Significant adhesion occurred over a range of shear rates, from 10 to 190 seconds-1, did not appear above 300 seconds-1 and was greatest at a shear rate of 60 seconds-1. Adhesion to the ECM was specific, since there was no adherence to glass coverslips, glutaraldehyde-fixed ECM-coated coverslips, or to endothelial cells cultured on ECM-coated coverslips. At low shear rates large aggregates of megakaryocytes formed on the ECM surface; these could be detached and washed away by higher shear forces. Megakaryocytes thus acquire, even before platelet formation, an adhesive capacity similar to that of platelets. In addition, a significant fraction of the adherent megakaryocytes underwent elongation and pseudopod formation similar to that seen in marrow sinusoids.

Animals

Megakaryocyte function and dysfunction.

More than a hundred years have passed since platelets were recognized as cells and their haemostatic functions discovered. However, the process of platelet production is still not understood. The location, the mechanism and the regulation of thrombopoiesis remain elusive. Megakaryocytes are known to be the source of platelets. Investigations of megakaryocytes have revealed their normal functions and some of the abnormalities present in various diseases which affect platelets. In recent years, new techniques of cell isolation and tissue culture have been developed and have made possible advances in characterizing megakaryocyte precursors and differentiation. The primary function of megakaryocytes is to synthesize and assemble platelet components and organelles. Although debated for a long time, new data seems to indicate that the lung may be a central locus of platelet production. The new techniques for megakaryocyte investigations have barely begun to be of use in the study of abnormal platelet production in disease.

Animals

Elutriation for isolation of megakaryocytes.

Successful isolation of guinea pig megakaryocytes in large numbers was first achieved with a combination of techniques, taking sequential advantage of the low relative densities and large diameters of most megakaryocytes. Several laboratories have made minor improvements, but this approach retains the disadvantage of losing a significant fraction of the megakaryocyte population, the small immature ones. Counterflow centrifugal elutriation has been shown to eject cells from a chamber progressively, according to their sizes. Because almost all the megakaryocytes are bigger than the other marrow cells, the megakaryocytes can be retained while rejecting the contaminants. With this technology, yields of 1.4-2.0 x 10(6) megakaryocytes from one guinea pig are routine, recoveries have been 93%-94% of the input number of megakaryocytes, and final purities now average 72%. A split-specimen comparison with our previous method found elutriation to provide much greater yield and recovery with at least as great a purification as the density-velocity combination. This new technique was easily adapted to isolation of megakaryocytes in single aspirates from normal human marrow. Fifty-fold purification with near total recovery and a yield of 27,000 megakaryocytes per donor allows easy and reliable cytologic studies. Elutriation appears to be the current method of choice for isolation of megakaryocytes.

Animals

Genetics of resistance to the African trypanosomes. VI. Heredity of resistance and variable surface glycoprotein-specific immune responses.

The question of genetic linkage of parasite-specific immune responses to resistance to infection in experimental African trypanosomiasis was addressed. For this purpose, major histocompatibility complex-compatible resistant and susceptible inbred mouse strains and their F1 hybrid, F2 hybrid, and backcross offspring were infected with Trypanosoma brucei rhodesiense LouTat 1. Immunologic control of the first peak of parasitemia and survival times were the parameters measured. As we have reported previously (R. F. Levine and J. M. Mansfield, J. Immunol. 133:1564, 1984), B10.BR/SgSnJ mice are relatively resistant and controlled the growth of the infecting variant antigenic type (VAT) by mounting an antibody response to exposed epitopes of the variable surface glycoprotein (VSG). Fluctuating parasitemias resulting from sequential growth of different variable antigenic types occurred subsequently, and these mice died with a median survival time of 48 days. C3HeB/FeJ mice, relatively susceptible, did not control the infecting VAT and did not exhibit VSG-specific antibodies. These mice died with a median survival time of 22 days. The (B10.BR X C3H)F1 hybrids derived from crosses between resistant and susceptible mice all exhibited VSG-specific antibody responses and controlled the infecting VAT population. However, the median survival time of the F1 hybrids (24 days) was not significantly different from the survival time of the susceptible C3H parent. These findings demonstrate for the first time that antibody-mediated control of parasitemia is inherited as a dominant trait; that overall resistance, as measured by survival time, is inherited as a recessive trait (e.g., susceptibility is dominant); and that the two events segregate independently of one another. Further analyses of the inheritance of immunity and resistance (survival time) were made in which the F2 hybrid and backcross studies revealed that there are multiple genes controlling the VSG-specific antibody response as well as determining susceptibility. An extension of the present studies to a similar but non-major histocompatibility complex-mouse model system of resistance and susceptibility (C57BL/6J and C3H/HeJ mice, F1 hybrids, and 11 recombinant inbred B X H strains derived from them) was made in order to link the strain distribution patterns of known genetic markers with control of VSG-specific antibody responses or with control of susceptibility. Results of this study showed that resistance varied independently of the ability to control parasitemia with VSG-specific B cell responses.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Effect of ethanol on thrombopoiesis.

Chronic ethanol abuse causes thrombocytopenia but the underlying mechanism is unknown. To determine the target cells involved, we examined the effects of the drug in vitro on both megakaryocyte progenitor cells (CFU-Meg) and isolated, maturing megakaryocytes. In the presence of ethanol concentrations of 0.05-2.0 g/dl, megakaryocyte colony formation by mouse CFU-Meg in soft agar was normal. At 5 g/dl ethanol, colony formation was reduced by 50%; with 7 g/dl ethanol, no megakaryocyte colonies were formed. Acetaldehyde did not inhibit colony formation unless very high concentrations (100 mg/dl) were employed. Isolated guinea-pig megakaryocytes can maintain their viability and incorporate 3H-leucine into TCA-precipitable protein for at least 24 h. Incubation of these maturing megakaryocytes with ethanol did not affect their viability, but at concentrations greater than 120 mg/dl ethanol progressively inhibited protein synthesis. At 0.5 g/dl ethanol, protein synthesis was decreased by 23% while viability was still 93% of control. Like CFU-Meg, maturing megakaryocytes were resistant to the toxic effects of acetaldehyde. To determine the in vivo correlates of these results, guinea-pigs were fed 5 g/dl ethanol in a liquid diet. By 11 d, when blood ethanol levels were 20-150 mg/dl, platelet counts in the animals were reduced by 17-29%, while the number of marrow megakaryocytes was unaltered. These data indicate that the site of action of ethanol in suppressing thrombopoiesis is at the level of the maturing megakaryocyte.

Acetaldehyde

A non-programmatic approach to hemopoiesis.

The currently prevailing concept of hemopoietic differentiation is that the pathway starts at the multipotential stem cell and proceeds in a programmatic, relatively fixed fashion to the development of circulating blood cells. We have presented considerations supporting a more dynamic regulation. Self-renewal capacity within a compartment is seen as a measure of the cell's resistance to differentiation pressures. Mutable environmental factors, including feedback interactions, are proposed to regulate in each compartment the relative probabilities of renewal and maturation. We question the rigid distinction between multipotential and committed cells, generally believed to be separated by a discrete "determination" event. We prefer to see commitment as a manifestation of a gradually increasing bias for a given developmental fate. Such commitment might be modulated under different environmental conditions. Multipotency and stemness are two aspects of cellular resistance to maturation pressures.

Adaptation, Physiological

Adhesion, spreading and fragmentation of human megakaryocytes exposed to subendothelial extracellular matrix: a scanning electron microscopy study.

Platelet agonists and subendothelial extracellular matrix (ECM) induce morphological and biochemical changes in animal megakaryocytes, reminiscent of the response of platelets to the same substances. We have examined the behavior of human megakaryocytes exposed for up to 36 hours to the ECM produced by cultured bovine corneal endothelial cells. By phase contrast and scanning electron microscopy these megakaryocytes demonstrated non-reversible adherence and flattening with formation of long filopodia, thus confirming that human megakaryocytes acquire platelet functional capacities. In addition, megakaryocyte fragmentation into prospective platelets was apparently induced by the ECM. Up to 50% of the adherent megakaryocytes underwent spontaneous fragmentation into small particles which individually reacted like platelets on the ECM. The interaction of the megakaryocytes with the ECM was specific since no adherence, flattening or fragmentation occurred upon incubation of the megakaryocytes on regular tissue culture plastic or glutaraldehyde fixed ECM. Thus we have demonstrated platelet like behaviour of human megakaryocytes in response to this physiological basement membrane and a possible role of the subendothelium in platelet production which may occur in vivo as megakaryocytes cross the sinusoid walls and enter the blood stream.

Animals

Megakaryocyte interaction with subendothelial extracellular matrix is associated with adhesion, platelet-like shape change, and thromboxane A2 production.

We have examined the morphological and secretory behavior of rat and guinea pig megakaryocytes exposed for up to 24 hours to extracellular matrix produced by cultured bovine endothelial cells. By phase-contrast microscopy of living cells and in more detail by scanning electron microscopy, the megakaryocytes showed a nonreversible adherence, an extensive formation of filopodia around the periphery like the rays of the sun, and a tendency toward flattening. These filopodia were generally linear with attenuated tips and were larger than, but resembled the filopodia of, rat or guinea pig platelets exposed to this extracellular matrix. In contrast, isolated megakaryocytes on glass or on uncoated plastic surfaces did not show these responses; adherence, in the face of gentle agitation before fixation, was minimal, with rare filopodia and no flattening. Megakaryocytes that interacted with the extracellular matrix produced significant amounts of thromboxane A2, but this did not occur on uncoated surfaces and could not be attributed to other contaminating cells in the megakaryocyte suspensions. The appearance in megakaryocytes of these typical platelet responses indicates that megakaryocytes acquire the functional capabilities of platelets by the synthesis and assembly of platelet substances and organelles. Thromboxane production by megakaryocytes stimulated by the extracellular matrix is a readily quantifiable measure of this capacity.

Animals

Culture in vitro of isolated guinea pig megakaryocytes: recovery, survival, morphologic changes, and maturation.

Isolated guinea pig megakaryocytes were maintained in liquid cultures for up to 4 days. Megakaryocytes were incubated in siliconized glass vials in Dulbecco's Modified Eagle Medium with 5%-10% guinea pig serum and 2.3% bovine serum albumin. Cultured megakaryocytes did not adhere to glass vials and were almost entirely recovered by aspiration. No reproduction or cell division of megakaryocytes occurred. A small decline in viability occurred promptly on placing the freshly isolated cells in culture medium and could be attributed to reexposure to calcium. On incubation there was little further cell death. Up to 2 days in culture the megakaryocytes remained morphologically intact and appeared similar to megakaryocytes in situ. Megakaryocytes matured in culture with a loss of cytoplasmic basophilia, an increase in granule content, and progressive changes in nuclear configuration. The most mature megakaryocytes developed pseudopod formation but large-scale platelet liberation was not seen. The ability to culture megakaryocytes in vitro will allow more extensive biochemical and physiologic studies of this cell than previously possible.

Animals

Isolation of intact megakaryocytes from guinea pig femoral marrow. Successful harvest made possible with inhibitions of platelet aggregation; enrichment achieved with a two-step separation technique.

Methods have been devised to harvest megakaryocytes from guinea pig femoral marrow and to isolate them in high yield. When marrow tissue was disaggregated the megakaryocytes underwent degenerative changes characterized by the loss of cytoplasmic granules and alterations in membrane topography, similar to the changes seen in aggregating platelets. These morphologic changes were interpreted to mean that megakaryocytes possessed functional attributes of platelets. The use of agents which inhibit platelt aggregation (0.38% sodium citrate. 10(-3) M adenosine, and 2 x 10(-3) M theophylline) in a medium free of bivalent cations prevented these changes. This solution resulted in both an excellent morphologic preservation and a significantly increased recovery of megakaryocytes from marrow tissue. A two-step purification of the intact megakaryocytes was carried out on the basis of their low density and large size, with equilibrium density gradient centrifugation followed by velocity sedimentation. This sequence gave approximately a 100-fold enrichment of megakaryocytes, significantly better than that achieved with either method alone. These techniques for harvesting and concentrating megakaryocytes make it possible for the first time to study megakaryocytes in vitro.

Adenosine