PubMed Health⌕ Search

Biomedical subjects

B Rucinski

Publications and source records attributed to B Rucinski.

At least 37 records · Page 2Linked to original sources

Occurrence of platelet basic protein, a precursor of low affinity platelet factor 4 and beta-thromboglobulin, in human platelets and megakaryocytes.

beta-thromboglobulin antigen, a platelet-specific secreted protein, occurs in three forms: platelet basic protein, low affinity platelet factor 4, and beta-thromboglobulin. The combined level of beta-thromboglobulin antigen in megakaryocytes, measured by radioimmunoassay, was 13 +/- 7 micrograms/10(6) cells (SD, n = 6). The relative proportions of the three forms of beta-thromboglobulin antigen present within platelets and megakaryocytes were determined in cells lysed with trichloroacetic acid to minimize artifactual proteolysis. Samples were analyzed by isoelectric focusing in polyacrylamide gel with quantitative immunological detection on a nitrocellulose transfer of the gel. In platelets, the major species found was low affinity platelet factor 4 with precursor platelet basic protein as only 25% +/- 11% (SD, n = 16) of total beta-thromboglobulin antigen. In megakaryocytes partially purified both from normal bone marrow aspirates and from whole marrow specimens obtained after surgery, platelet basic protein was a higher proportion of beta-thromboglobulin antigen (49% +/- 13% SD, n = 11) than was the case in platelets. beta-thromboglobulin itself was never detected under the conditions of cell lysis used. Our results suggest that platelet basic protein is synthesized in megakaryocytes and that its cleavage is associated with an earlier stage of cell development than simply maturation to platelets. Further support for the precursor status of platelet basic protein was found in the expression of predominantly this antigenic form in a human erythroleukemia cell line.

Antigens, Human Platelet↗

Quantitation and characterization of human platelet glycoprotein IIIa by radioimmunoassay.

Glycoprotein IIIa was quantitated in human platelets by radioimmunoassay using antisera specific to platelet membranes and purified glycoprotein IIIa. Glycoprotein IIIa and glycoprotein IIb were isolated from washed platelets by Triton X-114 extraction followed by preparative sodium dodecyl sulfate-polyacrylamide gel electrophoresis. Radioiodinated glycoprotein IIIa was further purified by affinity chromatography on Lentil lectin-Sepharose 4B. Purified glycoprotein IIb showed little crossreactivity with 125I-labeled glycoprotein IIIa using the anti-platelet membrane or anti-glycoprotein IIIa antisera on a competition inhibition radioimmunoassay. The expression of glycoprotein IIIa epitopes were the same for the purified glycoprotein IIIa and glycoprotein IIIa in Triton X-100 solubilized platelets. A 66 kDa protein derived from glycoprotein IIIa by limited proteolysis of platelet membranes also expressed the same epitopes as intact glycoprotein IIIa. Solubilized platelets contained approximately 16 micrograms of total glycoprotein IIIa antigen per 10(9) cells. The level of glycoprotein IIIa determined by radioimmunoassay in one patient with Glanzmann's thrombasthenia amounted to 6.7% of normal and it was close to the values obtained by other methods.

Antigen-Antibody Complex↗

Fibrinogen receptors in platelet adhesion to surfaces of extracorporeal circuit.

The role of platelet fibrinogen receptors and platelet-protein interaction in platelet consumption during simulated cardiopulmonary bypass was investigated. In five recirculation experiments, with whole blood, the platelet count fell to 13% of initial values and in two experiments, with blood from patients with Bernard-Soulier syndrome, to 3% of normal values. However, in three experiments with blood from the patients with Glanzmann's thrombasthenia, the platelet count decreased to 69% of initial values. The extent of platelet consumption in normal blood was diminished to only 72% by addition of 0.5 microM prostaglandin E1 (PGE1) (5 experiments) and to 80% by precoating surfaces of the circuit with 2.5% human albumin (5 experiments). beta-Thromboglobulin antigen (beta TG) loss from platelets was associated with thrombocytopenia. The extent of beta TG loss was significantly reduced by the addition of PGE1 to blood or precoating surfaces with albumin. Proteins adsorbed on the surface of the circuit exposed to normal blood were removed with 0.5% Triton X-100. Some of these proteins were identified to be glycoprotein IIIa (GPIIIa) (3.4-4.3 micrograms/ml), beta TG (1.0-1.6 micrograms/ml), and fibrinogen (1.9-3.7 micrograms/ml). The amount of GPIIIa recovered in the Triton X-100 eluates correlated with the number of platelets lost during recirculation. These studies indicate that exposure of fibrinogen receptors associated with GPIIb-GPIIIa complex contributes to platelet consumption during cardiopulmonary bypass.

Blood Platelets↗

Uptake and processing of human platelet factor 4 by hepatocytes.

We previously demonstrated rapid clearance of human platelet factor 4 (PF4) from rabbit and rat blood, its accumulation in the liver, and elimination of PF4 degradation products in urine. The purpose of the present experiments was to characterize interaction of PF4 with cultured rat hepatocytes. 125I-PF4 was taken up by hepatocytes reaching maximum at 180 min. The association of 125I-PF4 with hepatocytes was two times greater at 37 degrees C than at 4 degrees C. At 37 degrees C degradation of 125I-PF4 by hepatocytes was also observed as indicated by the increase of 125I-PF4 radioactivity soluble in 6% trichloroacetic acid. By contrast, no uptake of 125I-beta-thromboglobulin antigen was observed. Autoradiography demonstrated that short incubation (5-20 min) of 125I-PF4 with hepatocytes results in the association of 125I-radioactivity with cell membranes while after longer incubation (60 min) radioactivity was also localized in the endosomes. Heparin inhibited binding and uptake of 125I-PF4 radioactivity by hepatocytes. We propose that part of PF4 released in the circulating blood by activated platelets is bound to the surface of hepatocytes and that it is further processed by these cells.

Animals↗

Human neutrophil degranulation during extracorporeal circulation.

Cardiopulmonary bypass, especially when prolonged, may result in hemostatic failure and pulmonary dysfunction, which has been attributed to changes in platelets and leukocytes, respectively. It has been well documented that contact of blood with synthetic surfaces causes platelet activation. In this report, we explore mechanisms of the activation of neutrophils during simulated in vitro extracorporeal circulation and document the release of neutrophil lactoferrin and elastase during clinical cardiopulmonary bypass (CCB). Inhibition in the simulated circuit by prostaglandin E1 (PGE1) and lidocaine suggests different mechanisms for release of neutrophil-specific proteins. During CCB with a bubble oxygenator it was observed that platelet counts fell to 42% +/- 2% of baseline. In addition, beta-thromboglobulin antigen (beta TG), a platelet-specific, alpha-granule protein marker reflecting the release reaction, increased from 0.15 +/- 0.05 to 0.84 +/- 0.11 microgram/mL. Neutrophil counts decreased to 67% +/- 7% of prebypass levels but then gradually rose as bypass continued. Both lactoferrin, a neutrophil-specific granule marker, and neutrophil elastase, an azurophilic granule marker, increased in plasma threefold to 1.66 +/- 0.33 micrograms/mL and 1.65 +/- 0.68 microgram/mL, respectively, just before bypass was stopped. When fresh heparinized human blood was recirculated within an extracorporeal membrane oxygenator bypass circuit for 120 minutes, plasma beta-TG rose to 5.13 micrograms/mL, lactoferrin increased from 0.13 +/- 0.04 to 1.62 +/- 0.22 micrograms/mL, and neutrophil elastase rose from 0.05 +/- 0.02 to 1.86 +/- 0.41 micrograms/mL. At 120 minutes, lidocaine (100 mumol/L), which inhibits neutrophil activation, delayed release of lactoferrin (1.33 +/- 0.26 micrograms/mL) and markedly inhibited release of elastase (0.24 +/- 0.05 microgram/mL) but did not inhibit release of beta-TG antigen (5.66 micrograms/mL at 120 minutes). PGE1 (0.3 mumol/L) inhibited significantly the release of beta-TG (0.31 microgram/mL) and elastase (0.52 +/- 0.11 microgram/mL) and attenuated the release of lactoferrin (1.57 +/- 0.45 micrograms/mL).

Alprostadil↗

Clearance of human platelet factor 4 by liver and kidney: its alteration by heparin.

Human 125I-labeled platelet factor 4 (PF4) injected into rabbits showed a biphasic exponential pattern of disappearance from the circulation [half-life of the fast components was 0.75 min, that of the slow components was 20 min] that was not affected by a 1,000-fold excess of unlabeled PF4. Heparin resulted in a single-compartment disappearance of 125I-labeled PF4 (half-life = 25-40 min). Five minutes after injection of 125I-labeled PF4 greater than 40% radioactivity had accumulated in the liver and 4% in the kidney. At that time, accumulation of 125I-labeled beta-thromboglobulin (beta-TG) in the organs was low, approximately 4% in the kidneys and less than 3.0% in the liver. Nuclear imaging studies revealed rapid clearance of 131I-labeled PF4 from blood and its predominant accumulation in the liver. The half-lives of 131I-labeled PF4 radioactivity in liver and kidney were 96 and 252 min, fitting a single-compartment model. 131I-labeled beta-TG accumulated predominantly in the kidney. The half-lives of 131I-labeled beta-TG radioactivity in the kidney and in the liver were 84 and 414 min. Simultaneous or subsequent injection of heparin did not affect the distribution of 131I-labeled beta-TG but caused partial loss of 131I-labeled PF4 radioactivity from the liver and accelerated its appearance in the urinary bladder. Injection of heparin resulted in a 100-fold increase of excretion in the urine of 125I-labeled Pf4 precipitable by 10% trichloroacetic acid.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Interaction of platelet factor 4 with human platelets.

Human washed resting platelets bound 125I-labeled platelet factor 4 in a reaction which was saturable and approached equilibrium within 15-30 min. Scatchard plot analysis of the binding isotherms suggested a single class of specific binding sites. Excess of unlabeled protein and low- and high-affinity heparin competed for platelet factor 4 binding sites on the platelet surface and caused a partial displacement of this molecule. Anti-platelet factor 4 Fab fragments caused inhibition of binding of 125I-platelet factor 4 to platelets. Most of the labeled platelet factor 4 which was bound to intact platelets was recovered in the Triton X-100-insoluble cytoskeletal fraction prepared from the same platelets after their stimulation by thrombin. The association with the cytoskeleton was inhibited by anti-platelet factor 4 Fab fragments and by low-affinity heparin. Anti-platelet factor 4 125I-labeled Fab fragments bound to resting platelets, and this binding was greatly increased following platelet stimulation with thrombin. This suggested that endogenously secreted platelet factor 4 also binds to the platelet surface. No significant binding to platelets of 125I-labeled beta-thromboglobulin and 125I-labeled anti-beta-thromboglobulin Fab fragments was observed. Fab fragments of monospecific anti-human platelet factor 4 antibody raised in rabbits inhibited platelet aggregation and secretion induced by low concentrations of thrombin. Fab fragments of anti-beta-thromboglobulin antibody had no inhibitory effect. We suggest that the binding of alpha-granule-derived platelet factor 4 to the specific sites on the surface of platelets may modulate platelet aggregation and secretion induced by low levels of platelet agonists.

Adenosine Diphosphate↗

Radioimmunoassay of human platelet thrombospondin: different patterns of thrombospondin and beta-thromboglobulin antigen secretion and clearance from the circulation.

A method for radioimmunoassay of human thrombospondin was developed. Monospecific precipitating anti-human thrombospondin antibody was raised in rabbits after injection of thrombospondin purified by fibrinogen-agarose chromatography and preparative sodium dodecyl sulfate-polyacrylamide gel electrophoresis. The linear portion of the thrombospondin radioimmunoassay standard curve was 0.5 to 20 ng/ml. Normal platelets and platelet-poor plasma contained 28,900 +/- 14,500 ng thrombospondin per 10(9) platelets and 60.6 +/- 10.7 ng/ml (mean +/- SD), respectively. Using radioimmunoassays for beta-thromboglobulin and thrombospondin antigens, we compared platelet location and secretion of these proteins. Both antigens shared similar distributions in platelet subcellular fractions with the largest amount localized to platelet alpha-granules. With thrombin (0.25 U/ml) as a platelet agonist, 62.4% and 19.5% of total beta-thromboglobulin and thrombospondin, respectively, were secreted from suspensions of washed human platelets. Because only 20% of the total platelet thrombospondin was secreted, further studies were initiated to determine whether the remaining thrombospondin became localized on the activated platelets membrane. 125I-Fab antithrombospondin specifically bound to activated platelets but not to unstimulated platelets. In contrast, 125I-Fab anti-beta-thromboglobulin did not bind to activated platelets. Plasma clearance of human beta-thromboglobulin (half-life fast 7.6 minutes, slow 56.6 minutes) and of human thrombospondin (half-life fast 29.9 minutes, slow 190 minutes) followed a biphasic exponential curve. In conclusion, both beta-thromboglobulin and thrombospondin are located in platelet alpha-granules, but they show a different pattern of secretion and expression on the platelet membrane and plasma clearance.

Animals↗

Partial purification and characterization of porcine platelet-derived growth factor (PDGF).

Platelet derived growth factor (PDGF) has been partially purified from porcine platelets. Purification steps included heparin-agarose chromatography of the material released by thrombin-stimulated washed porcine platelets and Blue-Sepharose chromatography. Preparative isoelectric focusing showed that isoelectric point of porcine PDGF is at pH 10.0-11.0 and elution experiments from sodium dodecyl sulfate (SDS) polyacrylamide gels indicated that its molecular weight is close to 30 kD. The immunoglobulin fraction prepared from anti-human PDGF serum inhibited the mitogenic activity of porcine PDGF. These experiments suggest a homology of porcine and human PDGF. Porcine platelet factor 4 and porcine platelet basic protein were devoid of significant mitogenic activity.

Animals↗

Purification of two heparin-binding proteins from porcine platelets and their homology with human secreted platelet proteins.

Two heparin-neutralizing proteins secreted by thrombin-stimulated platelets were purified to homogeneity by means of heparin-agarose affinity chromatography. These proteins, termed porcine platelet basic protein (PBP) and porcine platelet factor 4 (PF4), were eluted from a heparin-agarose column at 0.6-0.9 M NaCl and at 1-1.4 M NaCl, respectively. The molecular weight of porcine platelet basic protein was 7,000-7,700 daltons, as estimated by sodium dodecyl sulfate polyacrylamide gel electrophoresis and amino acid analysis. The isoelectric point of this protein was at pH 9.0. The amino acid composition of porcine platelet basic protein resembled that of human low affinity platelet factor 4 (LA-PF4), except that the porcine protein did not contain tyrosine. The molecular weight of porcine platelet factor 4 ranged from 10,000 (estimated from amino acid analysis) to 14,000 (estimated by sodium dodecyl sulfate polyacrylamide gel electrophoresis). The amino acid compositions of human platelet factor 4 and of porcine platelet factor 4 were similar. Monospecific antibodies against porcine platelet factor 4 and porcine platelet basic protein were raised in rabbits. Competitive radioimmunoassay demonstrated a low but significant immunologic cross-reactivity between human and porcine platelet factor 4, and between porcine platelet basic protein and a group of human secreted platelet proteins that bind to heparin with low affinity (beta-thromboglobulin [beta TG] and low affinity platelet factor 4). Experiments with direct immuno-precipitation of 125I-labeled antigens suggested that all four proteins investigated (human platelet factor 4, porcine platelet factor 4, human low affinity platelet factor 4 or human beta-thromboglobulin, and porcine platelet basic protein) share common antigenic determinants. However, there was a higher degree of immunologic cross-reactivity between heterologous antigens with similar heparin binding affinity (human platelet factor 4 and porcine platelet factor 4) than between heterologous antigens with different binding affinity (human platelet factor 4 and porcine platelet basic protein). In conclusion, our finding suggests a significant structural homology among the four proteins.

Animals↗

Human platelet basic protein. Its relation to low affinity platelet factor 4 and beta-thromboglobulin.

Human beta-thromboglobulin, low affinity platelet factor 4 and platelet basic protein have been purified to homogeneity from the material released by thrombin-stimulated platelets. Purification steps included isoelectric focusing and heparin-agarose chromatography. Antibodies against each of these proteins have been raised in rabbits. Antigenic identity of the proteins has been demonstrated in radioimmunoassay using 125I-labelled platelet basic protein or 125I-labelled low affinity platelet factor 4 and a variety of antibodies. The molecular weight of platelet basic protein estimated by gel filtration in 6 M guanidine hydrochloride using Sepharose 6B corresponded to approx. 10 000 daltons, slightly higher than that of beta-thromboglobulin (8851 daltons) and low affinity platelet factor 4 (9278 daltons). These findings raise the possibility that the formation of low affinity platelet factor 4 beta-thromboglobulin may be a consequence of the action of proteolytic enzymes on platelet basic protein.

Amino Acid Sequence↗

Human platelet basic protein associated with antiheparin and mitogenic activities: purification and partial characterization.

Platelet basic protein (PBP) (isoelectric point, 10.0-10.5; apparent Mr, 11,000-15,000) has been purified to homogeneity from material secreted by fresh human platelets after stimulation by thrombin. The purification, using preparative isoelectric focusing and chromatography on heparin-Sepharose, yielded two additional peptides with antiheparin activity that were immunologically identical with PBP: low-affinity platelet factor 4 and beta-thromboglubulin. The purity of the peptides was confirmed by immuoelectrophoresis and by NH2-terminal amino acid analysis. Dansyl chloride-treated PBP yielded a single dansylated amino acid residue (glycine). By using a specific radioimmunoassay it was shown that 10(9) human platelets contain 2-3 microgram of PBP which can be released in response to specific stimulation. PBP is associated with mitogenic activity as assayed in Swiss 3T3 mouse cells cultured in low-serum (0.4-1.5%) medium at levels of about 1 ng/ml and saturating at 10-40 ng/ml. The biological activity of different PBP preparations was variable, presumably due to inhibition by the varying amounts of ampholytes that interfered with the mitogenic activity of the peptide. Mitogenic activity was eluted from NaDodSO4/polyacrylamide gels and shown to comigrate with immunoreactive material and with conventional marker proteins of 14,000-17,000 daltons or with histones of 11,000-15,000 daltons. Evidence is presented that PBP is different from cationic platelet-derived growth factor which has an apparent Mr of 30,000.

Amino Acid Sequence↗

Identification and separation of secreted platelet proteins by isoelectric focusing. Evidence that low-affinity platelet factor 4 is converted to beta-thromboglobulin by limited proteolysis.

Low-affinity platelet factor 4 and beta-thromboglobulin are low molecular weight platelet secretory proteins that have common antigenic determinants. Four amino acids (Asn-Leu-Ala-Lys) at the amino terminus of beta-thromboglobulin are deleted, but the remaining sequences of the two peptides appear to be identical. Low-affinity platelet factor 4 and beta-thromboglobulin have respective isoelectric points at pH 8.0 and at pH 7.0. Identification, quantitation, and separation of both proteins was achieved by a method combining preparative isoelectric focusing and specific radioimmunoassay with anti-low-affinity platelet factor 4 antibody. It has been determined that the supernate processes immediately after platelet aggregation induced by ionophore A23187 or thrombin contains approximately 80% low-affinity platelet factor 4, 8% beta-thromboglobulin, and 12% highly cationic immunoreactive material (platelet basic protein). Experimental evidence suggests that low-affinity platelet factor 4 is originally secreted by platelets and then converted to beta-thromboglobulin by a platelet-derived, heat-labile protease that is inhibited by phenylmethylsulfonyl fluoride.

Amino Acid Sequence↗