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Biomedical subjects

P K Schick

Publications and source records attributed to P K Schick.

At least 19 recordsLinked to original sources

Differences in thromboxane A2 synthesis by megakaryocytes and platelets.

The capacity for thromboxane A2 synthesis in response to exogenous arachidonic acid, calcium ionophore A23187, thrombin, and collagen was studied during megakaryocyte maturation. Studies were performed in (1) isolated megakaryocytes not separated, (2) isolated megakaryocytes separated into subgroups at different stages of maturation, and (3) washed platelets. When comparisons were based on equal amounts of cell protein (10(5) megakaryocytes vs 10(8) platelets), isolated megakaryocytes, not separated into subgroups, responded to exogenous arachidonic acid with synthesis of thromboxane A2 equal to that of platelets from the same animals at their respective times of maximum synthesis (30 minutes vs 10 minutes). In similar fashion, megakaryocytes and platelets synthesized thromboxane A2 from endogenous arachidonic acid at the same minimum concentration of A23187, 0.1 mumol/L, and showed equal maximum synthesis at 1 mumol/L (167 +/- 9 pmol and 150 +/- 18 pmol, respectively). In contrast, maximum thromboxane A2 synthesis in response to thrombin (10 U/ml) was three times higher in platelets than in megakaryocytes (230 +/- 15 pmol and 74 +/- 5 pmol, respectively), and synthesis in response to collagen (20 micrograms/ml) was 20 times higher in platelets (130 +/- 20 pmol vs 7 +/- 1.2 pmol). When synthesis was studied in isolated megakaryocytes at different stages of maturation, the capacity for thromboxane A2 synthesis was established in immature megakaryocytes but was not fully developed in the most immature megakaryocytes. Synthesis in response to thrombin was not significantly enhanced by megakaryocyte maturation. Thus the ability to metabolize arachidonic acid occurs early during megakaryocyte maturation, but the ability to respond to thrombin and collagen is only fully established in platelets.

Animals

Fatty acylation of heparan sulfate proteoglycan from human colon carcinoma cells.

A number of transmembrane proteins have been recently reported to be modified by the covalent addition of saturated fatty acids which may contribute to membrane targeting and specific protein-lipid interactions. Such modifications have not been reported in cell-associated heparan sulfate proteoglycans, although these macromolecules are known to be hydrophobic. Here, we report that a cell surface heparan sulfate proteoglycan is acylated with both myristate and palmitate, two long-chain saturated fatty acids. When colon carcinoma cells were labeled with [3H]myristic acid, a significant proportion of the label was shown to be specifically incorporated into the protein core of the proteoglycan. Characterization of fatty acyl moiety in the purified proteoglycan by reverse-phase high pressure liquid chromatography revealed that approximately 60% of the covalently bound fatty acids was myristate. We further show that this relatively rare 14-carbon fatty acid was bound to the protein core via a hydroxylamine- and alkali-resistant amide bond. The remaining 40% was the more common 16-carbon palmitate, which was bound via a hydroxylamine- and alkali-sensitive thioester bond. Palmitate appeared to be added post-translationally and derived in part from intracellular elongation of myristate, a process that occurred within the first two hours and was insensitive to inhibition of protein synthesis. Acylation of heparan sulfate proteoglycan represents a novel modification of this gene product and could play a role in a number of biological functions including specific interactions with membrane receptors and ligand stabilization.

Acylation

Effects of marine oil-enriched diets on guinea pig megakaryocyte and platelet lipids: effects on thromboxane synthesis and platelet function.

The effects of marine oil-enriched diets on the fatty acid composition of lipids in guinea pig megakaryocytes (MK) and platelets were studied to obtain a better understanding of the mechanisms for changes in platelet fatty acid composition and platelet function. Animals were fed 2%, 5% and 10% menhaden oil-enriched diets for up to 35 days. Platelets and MK were isolated and MK subpopulations at various stages of development were prepared. The diets did not cause a change in the cholesterol/phospholipid ratio in MK or platelets. The diets induced a dose related incorporation of eicosapentaenoic (20:5) and docosahexaenoic acid (22:6) and an associated decrease in linoleic acid (18:2) in both MK and platelets. However, there was a considerable greater depression of 20:4 in platelets than in MK. These changes were evident with 2% marine oil diets and maximal with 10% diets. Half maximal changes in fatty acid composition occurred after 3 days and maximal changes at 10 days after the initiation of the diets and no further changes occurred up to 35 days. Based on percent of total fatty acids in individual phospholipids, 20:5 had been primarily incorporated into phosphatidylethanolamine (PE) and phosphatidylinositol (PI) and 22:6 into PE and phosphatidylserine (PS) in both MK and platelets. 18:2 was decreased in all phospholipids. 20:4 was decreased only in PI in MK while 20:4 was decreased in PE, PI and PS in platelets. In animals on the 10% marine oil diet, more 20:5 and 22:6 were incorporated into mature than immature MK but the greatest amount of 20:5 and 22:6 had accumulated in platelets. Ingestion of marine oil-enriched diets did not cause thrombocytopenia or affect MK maturation based on the analysis of morphologic stage, ploidy or size. Marine oil-enriched diets caused a decrease in thromboxane synthesis in response to thrombin and calcium ionophore in platelets and MK at all stages of maturation. In platelet-rich plasma, collagen induced platelet aggregation, ATP secretion and thromboxane synthesis were decreased to a greater degree at 35 days than 10 days. Thus, the study indicates that the ingestion of marine oil-enriched diets resulted in the compartmentalization of 20:5 and 22:6 in acidic phospholipids in mature MK and platelets. The observation that marine oil-enriched diet induced maximal changes in lipid composition in MK and platelets within 10 days but caused progressive inhibition of platelet function for up to 35 days indicates that as yet undefined membrane and cellular changes may occur at later time points.

Animals

Lower motor neuron disease in a patient with autoantibodies against Gal(beta 1-3)GalNAc in gangliosides GM1 and GD1b: improvement following immunotherapy.

We followed a patient with a lower motor neuron form of motor neuron disease whose neurologic disorder improved following immunotherapy. The patient did not have an M protein but did have IgM antibodies to ganglioside GM1 detectable at serum titers of 1:2,000 by ELISA. These antibodies were found only in the IgM fraction with lambda light chains and immunoreacted with GD1b and Gal (beta 1-3) GalNAc.

Adult

Lipid composition and metabolism in megakaryocytes at different stages of maturation.

The lipid composition and metabolism of isolated guinea pig megakaryocyte subgroups at various stages of maturation were investigated. Three groups were studied: 1) 67% of megakaryocytes in Group A were immature; 2) Group B was heterogeneous and contained both immature and mature subgroups of megakaryocytes; 3) 92% of megakaryocytes in Group C were mature. Lipid composition was determined by thin-layer chromatography, lipid-phosphorus, and gas-liquid chromatography. Cholesterol, ceramide, and de novo fatty acid synthesis were evaluated with [14C]acetate. [14C]Glycerol was used to assess de novo phospholipid synthesis. 14C-Labeled fatty acids were used to evaluate fatty acid uptake. The phospholipid and cholesterol content was found to be four times greater in mature megakaryocytes than that in immature megakaryocytes, which paralleled the protein content and volume of mature and immature cells. The cholesterol-phospholipid ratio was similar and there were no differences in the phospholipid species in the three groups. Phospholipid and cholesterol synthesis were established in immature megakaryocytes and persisted at about the same level in mature megakaryocytes. The uptake of arachidonic and palmitic acids also occurred primarily in immature cells, while the de novo synthesis of palmitic acid occurs predominantly in mature megakaryocytes. There was an inverse relationship between the uptake of exogenous palmitic acid and fatty acid synthesis, but the uptake of palmitic acid primarily inhibited fatty acid synthesis in mature megakaryocytes. There were differences in the acylation of phospholipid species with arachidonic acid in megakaryocytes at different stages of maturation since the acylation of phosphatidylcholine occurred primarily in immature megakaryocytes.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Composition and synthesis of glycolipids in megakaryocytes and platelets: differences in synthesis in megakaryocytes at different stages of maturation.

The composition and synthesis of megakaryocyte and platelet glycolipids were compared since these lipids are thought to be important for biologic activities such as adhesion and maturation. Highly purified guinea pig megakaryocytes at different stages of maturation and platelets were studied. Glycolipids and gangliosides were extracted, separated by thin-layer chromatography, and the carbohydrate content was analyzed by gas-liquid chromatography (GLC). Synthesis of ceramides and glycolipids was determined by the incubation of megakaryocytes with [14C]acetate, [3H]palmitic acid, and [3H]galactose. A major neutral glycolipid present in guinea pig megakaryocytes and platelets was identified as asialoGM2 by selective enzymatic hydrolysis with beta-N-acetylhexosaminidase, alpha-galactosidase and endo-beta-galactosidase, and carbohydrate analysis by GLC. Trace amounts of asialoGM1 were detected immunologically. The cells also contained glucosyl ceramide and lactosyl ceramide. Several ganglosides were detected of which one was identified as GM1 by its reaction with the beta-subunit of cholera toxin and by the identification of an asialoGM1 core with anti-asialoGM1 antibody after desialylation. The synthesis of ceramides from palmitic acid and acetate was 5 and 10 times greater, respectively, in megakaryocytes than in platelets. Ceramide and glycolipid synthesis from palmitic acid occurred primarily in immature megakaryocytes while synthesis from acetate occurred primarily in more mature megakaryocytes. The glycosylation of ceramides from galactose was 42 times greater in megakaryocytes than in platelets. Thus, ceramides and glycolipids are primarily synthesized in megakaryocytes, but platelets retain the capacity to synthesize significant amounts of free ceramides. The glycosylation of free ceramides occurs almost exclusively in megakaryocytes and only in trace amounts in platelets. These data indicate that megakaryocytes determine the composition of glycolipids in platelets and that there is considerable compartmentalization of glycolipid synthesis and membrane assembly at various stages of megakaryocytes development.

Acetates

Characterization of guinea pig megakaryocyte subpopulations at different phases of maturation prepared with a Celsep separation system.

We introduce a new method for preparing subpopulations of guinea pig megakaryocytes (MK). MK, partially purified by a density gradient, were separated according to size by sedimentation, starting as a monolayer, in an albumin gradient at unit gravity. Twenty-two fractions were collected. Cells were cytocentrifuged, ploidy was assessed by microdensitometry, and small MK were identified with anti-von Willebrand factor (vWF) immunoglobulin. Immaturity was assessed by uptake of 3H thymidine and synthesis of proteoglycans from 35S sulfate. About 88% of cells in fractions 2 through 18 were MK, of which 90% were viable. Fractions containing the largest cells were composed of 98% stage III and IV MK; fractions with the smallest cells contained up to 80% stage I and II MK. Six MK classes were isolated: immature cells, both stage I and II cells, at either the 8N, 16N or 32N ploidy class; mature cells, both stage III and IV cells, at either the 8N, 16N or 32N ploidy class. The fractions were pooled into three groups: (a) 8% of MK in group 1, fractions 2 through 11, were immature, and group 1 was composed of 92% of 16N and 32N mature classes; (b) 29% of MK in group 2, fractions 12 through 15, were immature, and group 2 was composed of 52% 16N mature, 24% 16N immature, and 13% 8N mature classes; 67% of MK in group 3, fractions 16 through 18, were immature, and group 3 contained 51% 8N immature, 14% 16N immature, and 18% mature 16N classes. The mean protein content of the three groups was 1.251, 0.624, and 0.284 mg/10(6) MK, respectively. Nine percent of cells in group 3 but no cells in group 1 took up large amounts of 3H thymidine. The synthesis of high-molecular-weight (high-mol-wt) proteoglycans in group 3 and synthesis of lower mol wt proteoglycans in groups 1 and 2 provided further evidence for differences in MK maturity. Thus, the method can isolate MK subpopulations that are viable and can be used to investigate the biochemical characteristics of MK at different phases of maturation.

Albumins

Arachidonic acid is preferentially incorporated by immature megakaryocytes.

Megakaryocytes are bone marrow cells responsible for the synthesis of circulating platelets. Subgroups of megakaryocytes can be recognized on the bases of morphologic stage, DNA content (ploidy), and size. However, the physiologic roles and biochemical characteristics of these subgroups have not been defined. We have investigated arachidonic acid uptake in megakaryocyte subgroups. Purified guinea pig megakaryocytes were incubated with tritiated arachidonic acid, cytocentrifuged, and subjected to autoradiography. Eight hundred megakaryocytes were analyzed in four experiments by four parameters: (1) grains per cell (arachidonic acid uptake), (2) ploidy, (3) morphologic stage, and (4) size. Lipids were extracted from aliquots of megakaryocytes subjected to autoradiography and were assessed for arachidonic acid metabolism. Arachidonic acid had not been overtly metabolized nor oxygenated, and thus, radioactivity represented arachidonic acid. The capacity for arachidonic acid uptake was dependent primarily on megakaryocyte cytoplasmic maturation as judged by morphologic stage. Stage I and II megakaryocytes, immature cells, took up three times more arachidonic acid than stage III megakaryocytes and four times more than stage IV megakaryocytes, mature megakaryocytes, when calculated as uptake per cell. When uptake was calculated per megakaryocyte area, an approximation of megakaryocyte volume, arachidonic acid uptake was six times greater in stage I and II than in stage III and IV megakaryocytes. Arachidonic acid uptake was related to ploidy to a lesser extent, because 8N megakaryocytes took up two times more arachidonic acid than 32N megakaryocytes when calculated as uptake per cell area. Arachidonic acid uptake was independent of megakaryocyte size when assessed within each morphologic stage group and ploidy class.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Covalent crosslinking of human coagulation factor V by activated factor XIII from guinea pig megakaryocytes and human plasma.

Coagulation factor V (FV) has been shown to be synthesized in both the liver and megakaryocytes. We now present evidence that FV can be covalently crosslinked by an enzyme originating from megakaryocytes to form polymeric multimers of factor V. The guinea pig megakaryocyte enzyme appears to be factor XIIIa since the FV-crosslinking activity (1) had an absolute requirement for Ca++, (2) was completely inhibited by iodoacetamide, 5,5'-dithiobis- (2-nitrobenzoic acid), p-chloromercuribenzene sulfonic acid, and N-ethylmaleimide, all known alkylators of the thiol group at the active site of the factor XIIIa, (3) was blocked by known pseudoamine donor substrates of factor XIIIa including dansylcadaverine and putrescine, and (4) could be directly demonstrated in the guinea pig megakaryocyte lysate by a specific activity staining procedure. No tranglutaminase was detected in guinea pig megakaryocytes in contrast to red cells and liver. A similar pattern of covalent crosslinking of human FV by purified activated human plasma factor XIII was also demonstrated. Analysis of the crosslinked products of FV formed by the guinea pig enzyme by sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) indicates the formation of intermediate as well as higher molecular weight polymers, suggesting that the crosslinking is a stepwise polymerization process.

Amines

Cholesterol exchange in platelets, erythrocytes and megakaryocytes.

Cholesterol exchange between plasma and human platelets and erythrocytes and guinea pig platelets, erythrocytes and megakaryocytes was studied. The characteristics of exchange of cholesterol between [3H]cholesterol-labeled plasma and human platelets and erythrocytes were similar: exchange per cell was independent of cell concentration in whole plasma, decreased only 2-fold over a wide range of cell concentrations in low concentrations of plasma and approached a plateau at 1/3 normal plasma cholesterol concentration, and there was no net change in the cholesterol content of either cell. The activation energy for exchange for both cells was 47 kJ/mol. In all experiments, erythrocyte cholesterol was labeled to approximately twice the specific activity of platelet cholesterol. Guinea pig megakaryocyte cholesterol exchanged at 25-33% of the rate of guinea pig platelet cholesterol in vitro. Similarly, when guinea pigs were fed [3H]cholesterol, erythrocyte cholesterol specific activity after 24 h was 90%, platelet 50-65%, and megakaryocyte 20-26% that of plasma. Guinea pig platelets incubated with plasma radiolabeled in free and esterified cholesterol incorporated radioactivity from free but not esterified cholesterol. The similarity of free cholesterol exchange in platelets and erythrocytes in vitro and in vivo and the apparent inability of platelets to take up cholesterol esters from lipoproteins suggest that the interaction between normal platelets and normocholesterolemic plasma is limited to cholesterol exchange.

Adult

The effect of hypercholesterolemia on guinea pig platelets, erythrocytes and megakaryocytes.

This study has examined the effect of diet-induced hypercholesterolemia on guinea pig platelets, erythrocytes, megakaryocytes and plasma. The cholesterol/phospholipid ratios of plasma and erythrocytes began to increase after one day on the diet and increased steadily for two weeks and more slowly thereafter until 30 days. In contrast, the cholesterol/phospholipid ratio of platelets remained constant for 4-5 days, then increased until reaching a maximum of about 0.85 in two weeks. Thus, the time-course for increase of the cholesterol/phospholipid ratio is different for platelets than for erythrocytes and plasma. The increase in the cholesterol/phospholipid ratio of megakaryocytes was small and not dependent on the degree of increase in the plasma cholesterol/phospholipid ratio. The cholesterol esters of both platelets and megakaryocytes increased with time for two weeks. The increase in megakaryocyte cholesterol esters appeared to precede that of platelets. The protein content of platelets and megakaryocytes and average megakaryocyte size were increased. Normal platelets incubated in plasma from hypercholesterolemic guinea pigs did not accumulate excess cholesterol, but erythrocyte cholesterol increased 45% in 6 h under the same conditions. Cholesterol synthesis in megakaryocytes was depressed 50-80% by cholesterol feeding and by in vitro incubation of the cells in hypercholesterolemic plasma. The data suggest that the platelets and erythrocytes may accumulate excess cholesterol by different mechanisms. The effects of cholesterol feeding on megakaryocytes and the lag in accumulation of cholesterol in platelets relative to erythrocytes and plasma suggest that a defect in the megakaryocyte may be a primary determinant of accumulation of cholesterol in platelets.

Animals

Biosynthesis of factor V in isolated guinea pig megakaryocytes.

Although platelets contain Factor V, localized primarily in the alpha-granules, the origin of this coagulation cofactor in these cells is not known. We therefore explored whether isolated megakaryocytes could biosynthesize Factor V. Guinea pig plasma Factor V coagulant activity was demonstrated to be neutralized by human monoclonal and rabbit polyclonal antibodies directed monospecifically against human Factor V. These antibodies had been used earlier to purify human Factor V. These antibodies had been used earlier to purify human Factor V and to quantify Factor V antigen concentration, respectively (1983. Chiu, H. C., E. Whitaker, and R. W. Colman. J. Clin. Invest. 72:493-503). As determined by a competitive enzyme-linked immunosorbent assay with guinea pig plasma as a standard, Factor V solubilized from guinea pig megakaryocytes was present at 0.098 +/- 0.018 micrograms/10(5) cells. Each megakaryocyte contained about 500 times as much Factor V as is in a platelet (0.234 +/- 0.180 micrograms/10(8) platelets). The content of Factor V antigen in guinea pig plasma was greater (27.0 +/- 3.0 micrograms/ml) than that of Factor V antigen in human plasma (11.1 +/- 0.4 micrograms/ml). In contrast, human platelets contain ninefold more Factor V antigen (2.01 +/- 1.09 micrograms/10(8) platelets) than do guinea pig were 2.85 +/- 0.30 U/ml plasma, 0.022 +/- 0.012 U/10(8) platelets, and 0.032 +/- 0.03 U/10(5) megakaryocytes, compared with human values of 0.98 +/- 0.02 U/ml plasma and 0.124 +/- 0.064 U/10(8) platelets. Isolated megakaryocytes were found to contain Factor V by cytoimmunofluorescence. The megakaryocytes were incubated with [35S]methionine, and radiolabeled intracellular proteins purified were on a human anti-Factor V immunoaffinity column. The purified protein exhibited Factor V coagulant activity and neutralized the inhibitory activity of a rabbit antihuman Factor V antibody, which suggests that megakaryocyte Factor V is functionally and antigenically intact. These results indicate that Factor V is synthesized by guinea pig megakaryocytes. Nonetheless, megakaryocyte Factor V was more slowly activated by thrombin and in the absence of calcium was more stable after activation than was plasma Factor Va. Electrophoresis in sodium dodecyl sulfate and autoradiography of the purified molecule showed a major band of Mr 380,000 and a minor band of Mr 350,000, as compared with guinea pig and human plasma Factor V, where the protein had an Mr of 350,000. Both forms of Factor V were substrates for thrombin. Possible explanations for the higher molecular weight and different thrombin sensitivity and stability observed are that a precursor of Factor V was isolated or that the megakaryocyte Factor V had not been fully processed before isolation.

Animals

Sialic acid in mature megakaryocytes: detection by wheat germ agglutinin.

The characteristics of the surface of guinea pig megakaryocytes were investigated with wheat germ agglutinin (WGA). Purified guinea pig megakaryocytes and platelets were incubated with WGA conjugated with rhodamine, cytocentrifuged, and then exposed to Chromomycin A3 for the assessment of ploidy. The fluorescence emission of the DNA-Chromomycin complex was similar to that of fluorescein, and thus both rhodamine-WGA and Chromomycin A3 fluorescence could be analyzed in the same cell. Ploidy was assessed by microdensitometry of Chromomycin A3 fluorescence. Eight hundred megakaryocytes were analyzed by four parameters: (1) labeling by WGA, (2) ploidy, (3) morphological stage, and (4) size. The results were analyzed by a computer-assisted program. Although all platelets had reacted with WGA, only about half of the isolated megakaryocytes had been labeled by the lectin. The analysis of the megakaryocytes that had reacted revealed that 72% of stage III and 77% of stage IV megakaryocytes as compared with 35% of stage I and 29% of stage II cells had been labeled by the lectin. WGA reacted with 44% of 8N megakaryocytes and 60% and 59% of 16N and 32N cells. However, WGA labeling was independent of megakaryocyte size. The digestion of 15% and 48% of megakaryocyte sialic acid with neuraminidase from Vibrio cholera resulted in a 67% and 89% decrease in the binding of rhodamine-WGA, respectively, as determined by microdensitometry. The study indicated that sialic acid serves as a receptor for WGA and that sialoglycoproteins and possibly gangliosides become exposed on the surface of mature megakaryocytes. WGA can recognize mature megakaryocytes by biochemical criteria and the assessment of lectin binding could complement the morphological staging of megakaryocytes.

Animals

Fibrinogen biosynthesis in isolated guinea pig megakaryocytes.

Fibrinogen synthesis was investigated in guinea pig megakaryocytes. Purified megakaryocytes were incubated with 35S-methionine in methionine-free incubation medium for 18 hours. Newly synthesized fibrinogen in megakaryocyte lysates enriched with purified carrier guinea pig fibrinogen was immunoprecipitated with a specific anti-guinea pig fibrinogen antiserum produced in rabbits. Proteins in the immunoprecipitates were analyzed with a 3.5% to 10.0% gradient polyacrylamide slab gel electrophoresis and auto-radiography. Radioactivity was detected in a protein band of 340,000 daltons. In order to verify fibrinogen synthesis, immunoprecipitate was analyzed by two-dimensional slab gel electrophoresis: (1) the first dimension separated unreduced fibrinogen using a 3.5% to 10.0% gradient gel; (2) following reduction by 2-beta-mercaptoethanol, fibrinogen chains were separated in the second dimension using a 10% gel. Alpha, beta, and gamma fibrinogen chains, which represented carrier guinea pig plasma fibrinogen, were visualized by Coomassie brilliant blue. Autoradiography identified the incorporation of radioactivity into the three fibrinogen chains. In control experiments, immunoprecipitates, produced by exposing megakaryocyte lysates to preimmune rabbit serum and goat anti-rabbit IgG, were also analyzed by the two-dimensional gel system. Radioactivity was not detected in sites corresponding to the migration of fibrinogen subunits. The study demonstrates that isolated guinea pig megakaryocytes can synthesize fibrinogen. The electrophoretic mobility of newly synthesized fibrinogen and subunits is similar to that of guinea pig plasma fibrinogen.

Animals