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[Effect of beta-Fibrinogen-455 Gene Polymorphism on Plasma Fibrinogen Levels in Patients with Ischemic Stroke]

In large prospective studies, plasma fibrinogen levels have been shown to be an independent risk factor of vascular disease, including ischemic stroke. Elevated plasma fibrinogen in an individual could be due to the presence of predisposing genetic and/or environmental factors, such as smoking. Of the polymorphisms studies to date, the beta-fibrinogen-455 (beta-Fg-455) G-->A substitution in the 5' flanking region is associated with the most consistent difference in plasma fibrinogen levels in both case-control studies and in selected groups of healthy individuals. In order to further elucidate the role of the beta-Fg-455 G-->A substitution in determining fibrinogen levels and susceptibility to ischemic stroke in case-control population, including 104 individuals with verified ischemic stroke and 156 healthy individuals. Turbidimetriy assays were used to measure plasma fibrinogen levels of all samples. The beta-Fg-455 G-->A mutation was identified by the polymerase chain reaction followed by restriction enzyme digestion of the amplified DNA with HaeIII. The plasma fibrinogen level in patients with ischemic stroke [(3.51 +/- 1.09) g/L] was significantly higher than that in the control [(3.08 +/- 0.71) g/L] (P < 0.01). The A-allele is associated with elevated fibrinogen levels in both patients and controls. The plasma fibrinogen levels in controls with A-allele in elder people were higher than in younger people (P < 0.05). Those with A allele in males of ischemic stroke had significantly higher plasma fibrinogen levels in smokers than in non-smokers and ex-smokers (P < 0.05), but it was not significantly difference in subjects of GG genotype (P > 0.05). Our data demonstrates an association of the beta-Fg promoter A-455 allele with higher fibrinogen levels in the general population, and suggests that the A-allele may be a susceptible predictor of ischemic stroke, particularly in aging and smoking.

Journal Article↗

Binding properties on Sepharose insolubilized fibrinogen and fibrin, of various species of fibrinogen and fibrin solubilized in plasma.

Radiolabelled tracers of fibrinogen, fibrin des-AA and fibrin des-AABB were solubilized in recalcified, prothrombin depleted plasma, adding either 125I-fibrin des-AA or 125I-fibrin des-AABB together with 131I-fibrinogen, and subsequently subjected to affinity chromatography, utilizing short columns of Sepharose insolubilized preparations of fibrinogen, fibrin des-AA and fibrin des-AABB, respectively. Two naturally occurring fibrinogen species, of high molecular weight (HMW; m.w. 340.000) and of low molecular weight (LMW; m.w. 305.000) exhibited similar binding characteristics, as judged by adsorption and desorption experiments. In subsequent studies all tracer preparations were derived from HMW-fibrinogen. Sepharose insolubilized fibrinogen favoured the adsorption of soluble fibrins as compared to fibrinogen in solution; the adsorption of soluble des-AA fibrin was similar to that of soluble des-AABB fibrin. To insolubilized fibrin, adsorption of soluble tracers of fibrinogen and fibrins increased considerably, and soluble fibrins were no longer preferentially adsorbed. The latter observation was supported by similar desorption characteristics of these tracers. These findings may indicate that the E-domains of soluble fibrin become largely inaccessible to the D-domains of Sepharose insolubilized fibrinogen, probably due to complexing fibrinogen in plasma. Furthermore, adsorption was largely related to the a-epitope of insolubilized fibrin.

Animals↗

Reversibility of fibrinogen fragment D1 binding to human platelets: comparison with native fibrinogen.

To gain further insight into the mechanism responsible for rendering fibrinogen bound to stimulated platelets irreversible to dissociation by EDTA or excess unlabeled fibrinogen, the present study compared the reversibility of platelet interactions with fibrinogen and its plasmic degradation product, fragment D1. Like fibrinogen binding, the binding of fragment D1 became progressively less sensitive to dissociation by EDTA, PGE1, or excess unlabeled fibrinogen. Thus in the presence of EDTA, 70 +/- 19% and 55 +/- 24% (mean +/- S.D., n = 9) of bound fragment D1 failed to dissociate from platelets 60 min after stimulation with 0.15 U/ml thrombin or the combination of 5 microM ADP and 5 microM epinephrine, respectively, compared to 75 +/- 8% and 52 +/- 17% of platelet-bound, intact fibrinogen. In contrast, platelet stimulation with chymotrypsin or Zn+2 failed to support the development of irreversible fragment D1 or fibrinogen binding. Only 8 +/- 6% and 9 +/- 3% of bound fragment D1 remained associated with chymotrypsin- or Zn+2-treated platelets, respectively, compared to 7 +/- 11% and 15 +/- 6% (mean +/- S.D., n = 3) of platelet-associated fibrinogen. These observations suggest that irreversible fragment D1 and fibrinogen binding to platelets occurs by a similar mechanism that requires neither fibrinogen alpha chain 95-97 or 572-574 RGD sequences nor multivalent ligand-receptor interactions.

Amino Acid Sequence↗

Stimulation of fibrinogen biosynthesis by fibrinogen fragments D and E.

Infusions of either fibrinogen fragment D or fibrinogen fragment E into rabbits were followed by increases in fibrinogen synthesis determined by the rate of incorporation of 75Se-selenomethionine into circulating fibrinogen. The degree of stimulation was proportional to the amount of protein infused. When 4.5 mg of each fibrinogen fragment was administered separately to different groups of animals, fibrinogen fragment D was associated with a fourfold increase in fibrinogen synthesis above that in the control animals compared with 1.5-fold increase induced by fragment E. Fragments D and E were assayed for bound sialic acid, the absence of which facilitates binding, transport and catabolism of many circulating glycoproteins by the liver. Fibrinogen fragment D contained 1.3% sialic acid compared to 1.4% in fragment E. These data indicate conservation of sialic acid during plasmic digestion of fibrinogen. The capacity of these glycopolypeptide fragments to stimulate fibrinogen synthesis appears unrelated to the nearly identical quantities of N-acetyl neuraminic acid found in each fragment.

Animals↗

Fibrinogen is degraded and internalized during incubation with neutrophils, and fibrinogen products localize to electron lucent vesicles.

A biologically relevant relationship exists between neutrophils and coagulation processes. Several studies have focused on the ability of neutrophil proteases (both intracellular and membrane-associated) to degrade fibrinogen. The present study investigates the events following the interaction of activated neutrophils with soluble fibrinogen. During incubation of PMA-stimulated neutrophils with fibrinogen at 37 degrees C, fibrinogenolysis occurred, and degraded fibrinogen became associated with the neutrophil. Immunoelectron microscopy identified these fibrinogen products to be located within electron lucent vesicles, and not on the surface of the cell, suggesting that they are internalized. Although a specific interaction between fibrinogen and the neutrophil membrane might assist uptake, in the presence of physiological concentrations of fibrinogen, internalization occurred largely via a non-specific pinocytic process. Studies at low temperature revealed that both intact and degraded forms of fibrinogen can associate with neutrophils. The fibrinogen products detected intracellularly in experiments performed at 37 degrees C might represent uptake of degraded as well as intact forms of fibrinogen, the latter being rapidly degraded intracellularly. This route of fibrinogenolysis contributes minimally to the overall extent of the degradation process, the majority occurring extracellularly. Neutrophils thus possess a proteolytic mechanism for preventing accumulation of surface ligand, perhaps allowing them to evade the immunomodulatory effects of such ligands during inflammation.

Electrophoresis, Polyacrylamide Gel↗

Abnormal fibrinogens IJmuiden (B beta Arg14----Cys) and Nijmegen (B beta Arg44----Cys) form disulfide-linked fibrinogen-albumin complexes.

The molecular defects in two congenital abnormal fibrinogens, IJmuiden and Nijmegen, were determined by sequence analysis of genomic DNA amplified by the polymerase chain reaction. Both fibrinogens were heterozygous, IJmuiden having a B beta Arg14----Cys substitution and Nijmegen having a B beta Arg44----Cys substitution. Clotting induced by thrombin or Reptilase was impaired in both fibrinogens, indicating defective fibrin polymerization. Immunoblot analysis of both purified fibrinogens demonstrated that some of the abnormal molecules were linked by disulfide bonds to albumin. In addition, abnormal high molecular weight fibrinogen complexes with Mrs between 600,000 and 700,000 were present. Fibrinogen-albumin and high molecular weight complexes were also detected in the patients' plasmas. Quantitative analysis demonstrated that of the total plasma fibrinogen in the IJmuiden patient, 20% was linked to albumin and 10% was present as high molecular weight complexes. In plasma Nijmegen, 13% was linked to albumin and 15% was present as high molecular weight complexes. These results demonstrate that the additional abnormal cysteine in fibrinogens IJmuiden and Nijmegen resulted in the formation of disulfide-linked complexes with other proteins, predominantly albumin. We also found that a significant fraction of the abnormal fibrinogen molecules contained free sulfhydryl groups. These findings complicate interpretation of functional studies of these altered fibrinogens.

Amino Acid Sequence↗

Fibrin but not adsorbed fibrinogen supports fibronectin assembly by spread platelets. Effects of the interaction of alphaIIb beta3 with the C terminus of the fibrinogen gamma-chain.

We investigated the assembly of soluble fibronectin by lysophosphatidic acid-activated platelets adherent to fibrinogen or fibrin. More fibronectin was assembled by activated platelets spread on fibrin matrices than by platelets spread on adsorbed fibrinogen. The difference between platelets adherent to fibrinogen and fibrin occurred under both static and flow conditions. Similar differences were seen in binding of the 70-kDa N-terminal fragment of fibronectin that recognizes fibronectin assembly sites on adherent cells. Antibody and peptide blocking studies demonstrated that alphaIIb beta3 integrin mediates platelet adhesion to fibrinogen, whereas both alphav beta3 and alphaIIb beta3 mediate platelet adhesion to fibrin. The hypothesis that engagement of the C-terminal QAGDV sequence of the fibrinogen gamma-chain by alphaIIb beta3 inhibits the ability of the platelet to assemble fibronectin was tested by several experiments. Activated platelets adherent to adsorbed mutant fibrinogen lacking the QAGDV sequence (gammadelta5FG) were assembly-competent, as were platelets adherent to adsorbed normal fibrinogen that had been pretreated with the 7E9 antibody to the C terminus of the gamma-chain. Moreover, adsorbed normal fibrinogen but not gammadelta5FG suppressed the ability of co-adsorbed fibronectin to direct assembly of soluble fibronectin by spread platelets. The suppressive effect was lost when a surface of co-adsorbed fibronectin and fibrinogen was pretreated with 7E9. These results support a model in which the engagement of alphaIIb beta3 by the C-terminal sequence of the fibrinogen gamma-chain initiates signals that suppress subsequent fibronectin assembly by spread platelets. This interaction is less dominant when platelets adhere to fibrin, resulting in enhanced fibronectin assembly.

Adsorption↗

ClfA(221-550), a fibrinogen-binding segment of Staphylococcus aureus clumping factor A, disrupts fibrinogen function.

Clumping factor A (ClfA) is a surface protein of Staphylococcus aureus bacteria known for its ability to bind the C-terminus of plasma fibrinogen gamma chain, which participates in mediating fibrinogen-platelet interaction and fibrin cross-linking, resulting in thrombus formation. With an aim to develop agents that block fibrinogen gamma chain C-terminus, the fibrinogen-binding segment of ClfA locating at residues 221-550 was produced by recombinant technology and tested for its ability to inhibit platelet functions and fibrin clot formation. Recombinant ClfA(221-550) bound fibrinogen and blocked fibrinogen-platelet interaction, resulting in the inhibition of both ADP- and collagen-induced platelet aggregations. ClfA(221-550) also affected fibrin clot formation, in which factor XIIIa-mediated cross-linking of fibrinogen gamma chains was abrogated by ClfA(221-550) leaving the release of fibrinopeptides A and B from fibrinogen by thrombin unaltered, indicating that ClfA(221-550) interfered with fibrin clot formation without affecting thrombin's catalytic activity. Platelet-mediated clot retraction depends on both platelet-fibrinogen interaction and fibrin clot formation, which makes platelet thrombus less susceptible to fibrinolysis. At the concentration that reduced platelet aggregation by 40%, ClfA(221-550) prevented platelet-mediated clot retraction, whereas the glycoprotein IIb/IIIa antagonist tirofiban needed a higher concentration in inhibiting clot retraction than inhibiting platelet aggregation. By virtue of the multiple effects of ClfA(221-550) on platelet aggregation, fibrin clot formation and platelet-mediated clot retraction, the binding of ClfA(221-550) to fibrinogen merits further investigation for its potential as a new antithrombotic agent.

Adenosine Diphosphate↗

Two common, functional polymorphisms in the promoter region of the beta-fibrinogen gene contribute to regulation of plasma fibrinogen concentration.

Plasma fibrinogen is a major risk factor for coronary heart disease, stroke, and peripheral artery disease. There is evidence that genetic variation in the beta-fibrinogen gene contributes to the rate of synthesis of fibrinogen, but the molecular mechanism underlying the genetic heritability of the plasma fibrinogen concentration is largely unknown. We evaluated the physiological roles of 5 common nucleotide substitutions in the promoter region of the beta-fibrinogen gene at positions -148, -249, -455, -854, and -993 from the transcriptional start site. Electrophoretic mobility shift assays revealed distinct differences in the binding characteristics of nuclear proteins between wild-type and mutant fragments of both the -455G/A and -854G/A polymorphisms, whereas no clear differences were observed for the -148C/T, -249C/T, and -993C/T sites. Transfection studies in HepG2 cells showed increased basal rates of transcription for both the G-to-A substitution at position -455 (+50%, P<0.05) and the G-to-A substitution at -854 (+51%, P<0.05). Additional transfection studies using proximal promoter constructs confirmed that both the -455A and -854A alleles independently enhance the basal rate of transcription of the beta-fibrinogen gene. The rare alleles of the nonrelated -455G/A and -854G/A polymorphisms were also associated with significantly increased plasma fibrinogen levels in healthy middle-aged men. Overall, the 2 polymorphisms together explained approximately 11% of the variation in plasma fibrinogen concentration. It is concluded that the -455G/A and -854G/A polymorphisms of the beta-fibrinogen gene are physiologically relevant mutations with a significant impact on the plasma fibrinogen concentration.

Adult↗

Antibody blockade or mutation of the fibrinogen gamma-chain C-terminus is more effective in inhibiting murine arterial thrombus formation than complete absence of fibrinogen.

An elevated plasma fibrinogen level is a risk factor for thrombotic cardiovascular disease, but which of fibrinogen's functions is responsible for the increased risk is unknown. To define better the contribution of fibrinogen to large vessel thrombus formation, we studied carotid artery thrombosis in wild-type mice, mice lacking fibrinogen (fbg-/-), mice treated with 7E9 (a blocking antibody to the fibrinogen gamma-chain C-terminus), and mice expressing a mutant fibrinogen (gamma delta 5) that lacks the gamma-chain platelet-binding motif QADGV. In control mice, thrombus formation resulted in occlusion in 8 +/- 2 minutes (mean +/- SD). In fbg-/- mice, thrombi grew to large sizes, but then they abruptly embolized, confirming previous observations by others in an arteriolar thrombus model. In contrast, mice treated with 7E9 and gamma delta 5 mice developed only small, nonoclusive mural thrombi and embolization was limited. These findings reveal that a fibrinogen antibody, 7E9, or a fibrinogen mutant retaining clotting function, can limit thrombus formation more effectively than the complete absence of fibrinogen. We hypothesize that the smaller thrombi in these animals result from the ability of fibrin to bind and sequester thrombin and/or the ability of the altered fibrinogen molecules, which cannot recruit platelets, to bind to and passivate the surface.

Animals↗

A monoclonal antibody against the platelet fibrinogen receptor contains a sequence that mimics a receptor recognition domain in fibrinogen.

The binding of fibrinogen to its platelet receptor, the glycoprotein IIb-IIIa complex, is mediated, in part, by an Arg-Gly-Asp (RGD) sequence within the fibrinogen A alpha chain. PAC1 is an IgM-kappa murine monoclonal antibody that binds to the platelet fibrinogen receptor, and its binding is inhibited by both fibrinogen and RGD-containing peptides. To identify the regions of PAC1 that interact with the fibrinogen receptor, we determined the mRNA sequences of PAC1 immunoglobulin heavy and light chain variable regions. Five out of the six complementarity-determining regions (CDRs) of PAC1 had entirely germline sequences with no regions of similarity to fibrinogen. However, CDR3 of the PAC1 heavy chain (H-CDR3) was very large and unique due to the insertion of a novel D region segment. H-CDR3 contained a sequence, Arg-Tyr-Asp (RYD), that, if present in the proper conformation, might behave like the RGD sequence in fibrinogen. A 21-residue synthetic peptide encompassing the H-CDR3 region inhibited fibrinogen-dependent platelet aggregation as well as the binding of PAC1 (Ki = 10 microM) and fibrinogen (Ki = 5 microM) to activated platelets. The RYD region of H-CDR3 appeared to be central to its function, because substitution of the tyrosine with glycine increased the inhibitory potency of the peptide by 10-fold, while replacing the tyrosine with D-alanine or inverting the RYD sequence sharply reduced the inhibitory potency. Thus, the linear sequence, RYD, within H-CDR3 of PAC1 appears to mimic the RGD receptor recognition sequence in fibrinogen. This type of immunologic approach could be useful in studying the structural basis of other receptor-ligand interactions.

Amino Acid Sequence↗

Reconstitution of the purified platelet fibrinogen receptor. Fibrinogen binding properties of the glycoprotein IIb-IIIa complex.

Several lines of evidence indicate that the platelet membrane glycoprotein IIb-IIIa complex (GP IIb-IIIa) is necessary for the expression of platelet fibrinogen receptors. The purpose of the present study was to determine whether purified GP IIb-IIIa retains the properties of the fibrinogen receptor on platelets. Glycoprotein IIb-IIIa was incorporated by detergent dialysis into phospholipid vesicles composed of 30% phosphatidylcholine and 70% phosphatidylserine. 125I-Fibrinogen binding to the GP IIb-IIIa vesicles, as measured by filtration, had many of the characteristics of 125I-fibrinogen binding to whole platelets or isolated platelet plasma membranes: binding was specific, saturable, reversible, time dependent, and Ca2+ dependent. The apparent dissociation constant for 125I-fibrinogen binding to GP IIb-IIIa vesicles was 15 nM, and the maximal binding capacity was 0.1 mol of 125I-fibrinogen/mol of GP IIb-IIIa. 125I-Fibrinogen binding was inhibited by amino sugars, the GP IIb and/or IIIa monoclonal antibody 10E5, and the decapeptide from the carboxyl terminus of the fibrinogen gamma chain. Furthermore, little or no 125I-fibrinogen bound to phospholipid vesicles lacking protein or containing proteins other than GP IIb-IIIa (i.e. bacteriorhodopsin, apolipoprotein A-I, or glycophorin). Also, other 125I-labeled plasma proteins (transferrin, orosomucoid) did not bind to the GP IIb-IIIa vesicles. These results demonstrate that GP IIb-IIIa contains the platelet fibrinogen receptor.

Amino Acids↗

Fibrinogen precursors. Order of assembly of fibrinogen chains.

Hep-G2 cells, incubated with L-[35S]methionine, incorporate radioactivity into fibrinogen and several fibrinogen-related compounds. Pulse-chase experiments indicate that several of these compounds are precursors of fibrinogen and that the cells contain intracellular pools of A alpha and gamma chains which participate in the assembly of fibrinogen. The rate of synthesis of the three component chains of fibrinogen is unequal with that of the B beta chain being less than that of the A alpha and gamma chains. The sequence of events which lead to the assembly of fibrinogen was deduced by determining the appearance of the radioactive chains in each of the fibrinogen precursors and in fibrinogen at various times during a pulse-chase incubation. Fibrinogen assembly commences while nascent incomplete B beta chains are attached at polysomes. Preformed A alpha and gamma chains, drawn from the intracellular pool, combine independently to the growing B beta chains. On completion of the nascent B beta chains, newly formed B beta-A alpha and B beta-gamma complexes are released from the polysomes and enter the luminal space of the endoplasmic reticulum. Later other A alpha and gamma chains are added by ordered disulfide interaction, leading to the eventual formation of dimeric fibrinogen.

Carcinoma, Hepatocellular↗

Fibrinogen depleting agents for acute ischaemic stroke.

BACKGROUND: Fibrinogen depleting agents reduce fibrinogen in blood plasma, reduce blood viscosity and hence increase blood flow. This may help remove the blood clot blocking the artery and re-establish blood flow to the affected area of the brain after an ischaemic stroke. The risk of haemorrhage may be less than with thrombolytic agents. OBJECTIVES: The objective of this review was to assess the effect of fibrinogen depleting agents in people with acute ischaemic stroke. SEARCH STRATEGY: We searched the Cochrane Stroke Group trials register, Embase (to January 1996) and the Index of scientific and technical proceedings (1982 to 1996). We handsearched 10 Chinese journals and the proceedings of the 4th Chinese Stroke Conference (1995). We contacted Chinese and Japanese researchers, and drug companies. SELECTION CRITERIA: Randomised and quasi-randomised trials of fibrinogen depleting agents started within 14 days of stroke onset, compared with control in patients with definite or possible ischaemic stroke. DATA COLLECTION AND ANALYSIS: Two reviewers independently applied the inclusion criteria, assessed trial quality and extracted the data. MAIN RESULTS: Three trials involving 182 patients were included. All trials tested ancrod. Allocation concealment was adequate in two trials. Fibrinolytic therapy appeared to reduce the number of deaths during the scheduled treatment period (odds ratio 0.33, 95% confidence interval 0.13 to 0.85). There was no difference in death from all causes at the end of follow-up (odds ratio 0.57, 95% confidence interval 0.27 to 1.23). The risk of haemorrhage appeared to be small, but there were too few data to be conclusive. One trial in 132 people showed a statistically non-significant decrease in the odds of being dead or disabled at the end of follow-up (odds ratio 0.52, 95% confidence interval 0.26 to 1.03). REVIEWER'S CONCLUSIONS: Although ancrod appears to be promising, it is not possible to draw reliable conclusions from the available data.

Ancrod↗

Competitions between fibrinogen with its degradation products for interactions with the platelet-fibrinogen receptor.

Direct binding of 125-I-labelled plasmic and CNBr-derived fibrin (ogen) fragments (pre-X, X, Y, D, Degta, Efg, E1, N-DSK, N-dsk) to gel-filtered platelets was compared to their ability to support or inhibit ADP-induced aggregation, and to compete with fibrinogen for binding to ADP-stimulated platelets. Pre-X was the only fragment that supported aggregation. All fragments tested except for E derived from fibrinogen (Efg) and Degta bound specifically to the platelets and inhibited ADP-induced aggregation in the presence of fibrinogen. Competitive binding studies with fibrinogen and fragments labelled with different isotopes of iodine, or inhibition of binding of labelled fibrinogen with unlabelled fragments showed that all of the fragments except Efg and Degta were able to compete with fibrinogen for binding. When simultaneous binding of N-dsk and fibrinogen was studied, an increased binding of both ligands was observed probably due to complex formation. The results fully agree with previous findings of binding to immunoprecipitated glycoprotein IIb-IIIa after crossed immunoelectrophoresis. We conclude that the fibrinogen molecule contains at least six sequences responsible for platelet interaction, two in the E domain and two in each of the C-terminal parts of the fibrinogen molecule.

Adenosine Diphosphate↗

Interaction between a genetic variant of the platelet fibrinogen receptor and fibrinogen levels in determining the risk of cardiovascular events.

BACKGROUND: The PlA1A2 polymorphism of glycoprotein IIIa (GPIIIa), which affects postoccupancy signaling by the platelet fibrinogen receptor IIbIIIa, has been investigated as a potential genetic risk factor for cardiovascular events in numerous studies, without consistent results. We investigated whether the effect of this genetic variant of the platelet fibrinogen receptor on the risk of cardiovascular events is affected by fibrinogen plasma levels. METHODS: The GPIIIa PlA1A2 polymorphism and fibrinogen levels were determined in 455 men with angiographically documented coronary atherosclerosis. RESULTS: Neither carriership of the rare PlA2 allele nor fibrinogen plasma levels affected the time to cardiovascular event, as assessed in a proportional hazards model. However, there was a significant interaction between PlA2 carriership and fibrinogen plasma levels (P =.002). Carriership of the variant PlA2 allele significantly affected event-free survival only in individuals within the highest fibrinogen quartile (hazard ratio, 2.7; 95% CI, 1.1 to 7.1; P =.03). CONCLUSIONS: We observed a statistically significant interaction between a genetic variant of the platelet fibrinogen receptor and fibrinogen levels in determining the risk of cardiovascular events. This interaction may account for the inconsistent results of genetic association studies investigating this genotype as a genetic risk factor in thrombotic cardiovascular events.

Coronary Artery Disease↗

A kinetic method for characterization of heterogenous fibrinogen and its application to fibrinogen Grand Rapids, a congenital dysfibrinogenemia.

A kinetic analysis was developed to determine the steady state kinetic parameter Kcat/KM for the thrombin-catalyzed release of FPA from abnormal and normal fibrinogen in mixtures of the two. Such mixtures are likely to comprise the fibrinogen of individuals with congenital dysfibrinogenemia. The analysis was used to characterize fibrinogen Grand Rapids a new congenital dysfibrinogenemia. It indicated that fibrinogen from affected individuals was composed of normal and abnormal fibrinogen in roughly equal amounts, and that the value of kcat/KM for the thrombin-catalyzed release of FPA from the fibrinogen variant was 77-fold lower than that for the release of FPA from the normal fibrinogen. In separate studies, fibrinogen Grand Rapids was found to exhibit a reduced clottability. Additionally, affected individuals appeared to have plasma fibrinogen concentrations which were about one-third the normal value.

Blood Coagulation Disorders↗

Variations in the ability of adsorbed fibrinogen to mediate platelet adhesion to polystyrene-based materials: a multivariate statistical analysis of antibody binding to the platelet binding sites of fibrinogen.

Platelet adhesion to the surfaces of biomaterials preadsorbed with plasma previously has been shown to be mediated exclusively by surface-bound fibrinogen and does not seem to involve the other adhesion proteins in plasma (Tsai et al., J Biomed Mater Res 2002;60:348-359). In this study, the influence of surface-bound fibrinogen on platelet adhesion to five different types of polystyrene-based microtiter plates preadsorbed with plasma was analyzed relative to the amount of adsorbed fibrinogen and monoclonal antibody binding to the adsorbed fibrinogen. There was no significant correlation between platelet adhesion and the absolute amount of adsorbed fibrinogen. However, platelet adhesion was positively correlated to the ability of the adsorbed fibrinogen to bind three types of monoclonal antibodies. The antibodies used bound to the sites on fibrinogen thought to be involved in platelet binding (the two gamma chain C-terminal dodecapeptides and the RGDF and RGDS sequences in each of the Aalpha chains). A partial least-squares calibration model was used to analyze the relative importance of these binding sites in fibrinogen to platelet adhesion. The gamma chain C-terminal dodecapeptide was shown to be the most important site in adsorbed fibrinogen in mediating platelet adhesion.

Adsorption↗