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Impact of residual moisture and formulation on Factor VIII and Factor V recovery in lyophilized plasma reference materials.

Residual moisture content and formulation are important parameters when preparing lyophilized reference materials containing labile proteins. The protection of Factor VIII and Factor V activities were monitored in a lyophilized plasma preparation following formulation with either no additional excipient, 40 mM Hepes (4-(2-hydroxyethyl)piperazine-1-ethanesulfonic acid), 10 mg/mL glycine or a combination of 40 mM Hepes and 10 mg/mL glycine. The preservation of Factor VIII activity during freeze-drying was improved by the addition of either stabiliser and improved most, amongst the options studied, by the addition of both glycine and Hepes. The predicted stability at -20 degrees C and 20 degrees C was estimated using accelerated degradation studies. Although for plasma lyophilized alone there was some benefit from further desiccation over phosphorus pentoxide, resulting in very low moistures, for suitably formulated samples the predicted stability was as good for freeze-dried only samples as for those with further desiccation. This study emphasises the importance of optimum formulation on the stability of lyophilized proteins.

Chemistry Techniques, Analytical↗

Multicenter retrospective study on the utilization of FEIBA in France in patients with factor VIII and factor IX inhibitors. French FEIBA Study Group. Factor Eight Bypassing Activity.

Factor VIII or factor IX replacement is frequently impossible in inhibitor-developing hemophiliacs, because of the level of the inhibitor titer. Activated prothrombin complex concentrates are one of the available options to treat the bleeding episodes in such patients. However, the efficacy of these products and the associated thrombogenic risk, particularly in prolonged administration such as employed during surgeries, are important concerns for hemophilia care providers. We performed a multicenter retrospective study to evaluate the use of FEIBA (Factor Eight Bypassing Activity) in France, and data is presented on 433 bleeding episodes, including surgical procedures, concerning 60 patients from 15 hemophilia centers. The efficacy was judged as good or excellent in 352 episodes (81.3%), poor in 73 episodes (16.9%) and non-existent in 8 episodes (1.8%). Minor and major surgical procedures were successfully performed using FEIBA as a second-line therapy after human or porcine factor VIII, and in some occasions FEIBA was utilized as the only substitution product. The tolerance was assessed as good in 428 episodes (98.8%), but in 5 cases adverse effects were reported. Only 3 patients out of 52 regularly evaluated (5.8%) were HIV-seropositive, and for two of them the seroconversion occurred prior to the first use of FEIBA. In contrast, 80.4% of the patients were HCV-seropositive. An anamnestic response after the administration of FEIBA was noted in 31.5% of cases. This study points out the main features of the use of FEIBA in France, and particularly the low HIV seroprevalence in the patients treated. The good efficacy and the excellent tolerance still confer to this product a place to consider in the therapeutic options for the treatment of inhibitor-developing hemophiliacs or in acquired hemophilia.

Adolescent↗

Purified complex of factor VIII coagulant moiety and phospholipid: high factor VIII coagulant activity in factor VIII inhibitor plasma.

A complex of factor VIII coagulant moiety and phospholipid was purified by means of immunoadsorbent chromatography of factor VIII concentrate and consecutive dissociation of the immobilized factor VIII complex by human placental phospholipid (Fibraccel). The complex of factor VIII coagulant moiety and phospholipid displayed factor VIII coagulant activity (VIII C) and factor VIII coagulant antigen (VIII C:Ag), but no factor VIII related antigen (VIII R:Ag). When incubated with factor VIII inhibitor plasma, the complex of factor VIII coagulant moiety and phospholipid exerted higher factor VIII coagulant activity than native factor VIII complex, and than purified factor VIII coagulant moiety alone. Our results prove that in activated prothrombin complex concentrates a complex of factor VIII coagulant moiety and phospholipid is the active mechanism exerting procoagulant activity in factor VIII inhibitor plasma.

Blood Coagulation↗

Dibucaine elicits platelet procoagulant activity in factor VIII and factor X activation by a mechanism involving a sulfhydryl-dependent enzyme.

Dibucaine, a potent inhibitor of platelet aggregation and platelet release, was found to enhance the ability of fresh gel-filtered or washed human platelets to support factor VIII activation and factor X activation. Dibucaine-treated platelets increased the peak of factor VIII clotting activity by 2-fold compared to activity with untreated platelets. Similarly platelets optimally stimulated by dibucaine (1.0-1.5 mM for 5 min at 37 degrees C) supported as much factor X activation by factors IXa and VIII (measured in a chromogenic assay) as platelets optimally stimulated by ionophore A23187 (15 microM). An assay of platelet calcium-dependent sulfhydryl proteases was devised and used to test the effect of various inhibitors on these platelet proteases. The membrane-permeable sulfhydryl inhibitor Thiolyte MB inhibited platelet calcium-dependent protease activity; whereas, membrane-impermeable Thiolyte MQ did not. Thiolyte MB also blocked the ability of dibucaine-stimulated platelets to support factor X activation. Incubation of fresh, gel-filtered platelets with calpain inhibitor II (N-Ac-L-L-Normethioninal) completely inhibited the calcium-dependent sulfhydryl protease activity of these platelets but did not affect their ability to support factor X activation after subsequent incubation with dibucaine. These data support the interpretation that an intracellular SH-dependent enzyme, which may not be calpain, is involved in the expression of platelet procoagulant activity in dibucaine-treated platelets.

Bridged Bicyclo Compounds↗

Suppression of autoantibodies to factor VIII and correction of factor VIII deficiency with a combined steroid-cyclophosphamide-porcine factor VIII treatment in a patient with rheumatoid arthritis.

The presence of autoantibodies against factor VIII is an unusual but serious complication in rheumatoid arthritis. We describe the case of a patient who developed this kind of complication, with spontaneous bleeding and marked changes in the haematological parameters, that was unsuccessfully treated with a high dose of intravenous gammaglobulin. Subsequently, combined therapy with porcine factor VIII concentrate, cyclophosphamide and steroids led to the disappearance of the anti-factor VIII autoantibodies.

Aged↗

[A new thrombophilia risk factor: the increase of plasma factor VIII].

Factor VIII (FVIII) is key component of the fluid phase of the blood coagulation system. Recent evidence suggests a direct relationship between high plasma levels of FVIII and an increased risk for arterial and venous thrombosis. Thus material reviews the most important clinical and epidemiological evidence about this prothrombotic association. Main function of FVIII is to activate FX functioning as a cofactor for activated FIX in the presence of phospholipids and calcium. Since its deficiency has been historically associated with a hemorrhagic disease (namely hemophilia A), it was never studied its role in thrombosis. In order to explain the association FVIII and thrombosis, defects in its synthesis that increase its plasma concentration as well as postranslational modifications that allow a higher activity, have been proposed. Since 1977 it was suggested that increased plasma concentrations of FVIII and thrombosis may be associated. Shortly after, several other studies confirmed this association. Indeed, patients with stroke of acute myocardial infarction having high plasma levels of FVIII have a shorter survival. On the other hand, deep venous thrombosis is more frequent in patients with high plasma levels of FVIII. This rise in plasma FVIII concentration is also associated with recurrent venous thrombosis. The increment of plasma FVIII concentration is not due to an acute phase reaction. Plasma concentrations of FVIII above 100-150 IU/dL increase 3-fold the risk of thrombosis while concentrations above 150 IU/dL increase the the same risk 6-fold. While it is established the real importance of FVIII as a cause of thrombosis, every patient at risk of thrombosis must have a quantification of this factor. Evaluation of plasma FVIII concentration must be performed in patients with suspected thrombophilia since there is evidence that shows that high plasma FVIII levels is an independent thrombophilic risk factor. There are not effective therapeutic interventions able to normalize the high concentrations of FVIII. Therefore, appropriate prophylaxis during high thrombosis risk clinical episodes is the best alternative for the patient.

Factor VIII↗

Effect of dextran on factor VIII (antihemophilic factor) and platelet function.

Three different properties of factor VIII (antihemophilic globulin) were studied after infusion of 500 ml of six per cent Dextran 70 to healthy volunteers. This dose caused no change in the factor VIII coagulant activity while there was a significant but temporary decrease of factor VIII related antigen. The Ristocetin induced platelet aggregation analysed with native as well as with formalin-fixed platelets, also decreased significantly. The maximal decrease was found a few hours after the infusion. The decrease was seen only if Dextran was infused in vivo and not if Dextran was added to blood in vitro. The dysfunction of factor VIII caused by Dextran resembles that found in one variant of von Willebrand's disease. This finding probably explains the platelet function inhibiting properties of Dextran, and may be of significance for its antithrombotic effects.

Adolescent↗

Structural model of porcine factor VIII and factor VIIIa molecules based on scanning transmission electron microscope (STEM) images and STEM mass analysis.

Porcine plasma factor VIII (fVIII) molecules are heterodimers composed of a 76,000-mol wt light chain (-A3-C1-C2) and a heavy chain ranging in molecular weight from 82,000 (A1-A2) to 166,000 (A1-A2-B). Proteolytic activation of fVIII by thrombin results in fVIIIa heterotrimers lacking B domains (A1, A2, A3-C1-C2). In this study, immunoaffinity purified fVIII was further fractionated by mono S or mono Q chromatography to prepare heterodimers containing a light chain and an A1-A2-B heavy chain (fVIII 166/76) or an A1-A2 heavy chain (fVIII 82/76). Mass analysis of scanning transmission electron microscopic (STEM) images of fVIII 166/76 indicated that heterodimers (mass 237 +/- 20 kD) had irregularly globular core structures 10-12 nm across, and frequently displayed a diffuse, occasionally globular to ovoid satellite structure extending 5-14 nm from the core, and attached to it by a thin stalk. Factor VIII 82/76 molecules (mass 176 +/- 20 kD) had the same core structures as fVIII 166/76 molecules, but lacked the satellite structure. These findings indicate that A1-A2 domains of heavy chains and the light chains of the fVIII procofactor molecule are closely associated and constitute the globular core structure, whereas the B domainal portion of heavy chains comprises the peripheral satellite appendage. Factor VIII core structures commonly displayed a finger-like projection near the origin of the B domainal stalk that was also a consistent feature of the free heavy chains (mass 128-162 kD) found in fVIII 166/76 preparations. Factor VIII light chain monomers (mass, 76 +/- 16 kD) were globular to c-shaped particles 6-8 nm across. These chains commonly possessed a v-shaped projection originating from its middle region, that could also be observed at the periphery of fVIII core molecules. Factor VIIIa preparations contained heterotrimers (mass 162 +/- 13 kD) that had the same dimensions as fVIII core structures, lacked the B domainal appendage, and sometimes possessed the same core features as fVIII molecules. Molecular species corresponding to heterodimers (mass, 128 +/- 13 kD) and unassociated subunit chains (40-100 kD) were also observed in fVIIIa preparations, suggesting that heterotrimers have an appreciable tendency to dissociate, a phenomenon that could explain the decay of fVIIIa activity after thrombin activation of fVIII.

Animals↗

Molecular pathology and immunology of factor VIII (hemophilia A and factor VIII inhibitors).

Factor VIII is a large procoagulant glycoprotein that circulates in plasma in a noncovalent complex with von Willebrand factor. It is essential for the efficient cleavage of coagulation factor X by factor IXa, and its absence causes a severe bleeding disorder. Plasma factor VIII is reduced from the normal range of approximately 100 to 200 ng/ml in patients with the hereditary coagulation defect, hemophilia A, as well as in patients who develop autoantibodies that inactivate factor VIII. The understanding of factor VIII structure has been enhanced by recent studies that have characterized the X chromosome gene responsible for its synthesis, and preliminary information is now available about specific genetic defects. The basis for antibody formation in approximately 15 per cent of repeatedly transfused hemophilic patients is less clear at this time, however, for these individuals appear to have a variety of genetic defects that are not characteristically different from the patients who do not develop inhibitors. Although the antibodies cause a serious problem for affected individuals, they have been very useful in characterizing normal factor VIII and nonfunctional factor VIII-like protein that is found in the plasmas of 10 per cent of patients with mild hemophilia. Moreover, they are very useful reagents that can be used for immunoassay of factor VIII that has been modified in ways that have destroyed its procoagulant function.

Chemical Phenomena↗

Factor VIII: C and factor VIII R: Ag in Argentine hemorrhagic fever.

Factor VIII procoagulant activity (F VIII:C) and factor VIII related antigen (F VIII R: Ag) were investigated in 35 patients with Argentine hemorrhagic fever. Since the results obtained in the three clinical forms of the disease were not significantly different, they were tabulated altogether. F VIII:C was low in early stages of the disease but increased progressively in later days (days 5-6: 0.54 +/- 0.10 I. U/ml; days 13-14: 0.95 +/- 0.13 I.U./ml). In contrast, the levels of F VIII R: Ag were high all along the disease and they returned to normal values during the convalescence period (days 5-6; 2.58 +/- 0.54 I.U./ml; day 30: 1.30 +/- 0.14 I.U./ml). The levels of F VIII R: ag were similar in samples drawn before (11 cases) or after (10 cases) the treatment with immune plasma infusion. Plasma samples from 12 patients were studied by two-dimensional immunoelectrophoresis. The only abnormality found was increased height of the immune precipitation arc.

Antigens↗

The protein structure and effect of factor VIII.

Factor VIII (FVIII) is a key component of the fluid phase of the blood coagulation system. The proteases efficiently cleave FVIII at three sites, two within the heavy and one within the light chain resulting in alteration of its covalent structure and conformation and yielding the active cofactor, FVIIIa. FVIIIa is a trimer composed of A1, A2 and A3-C1-C2 subunits. The role of FVIIIa is to markedly increase the catalytic efficiency of factor IXa in the activation of factor X. Variants of these factors frequently also lead to severe bleeding disorders.

Blood Coagulation↗

Fatal iron intoxication with multiple coagulation defects and degradation of factor VIII and factor XIII.

A severe iron intoxication in a 15-year-old girl resulted in profound damage to vital organs and multiple clotting defects, but no haemorrhagic diathesis. Investigation revealed not only impaired synthesis of coagulation factors but also abnormal proteolysis by plasmin as well as by other proteolytic enzymes liberated from leucocytes and damaged tissue cells affecting especially factor VIII and factor XIII.

Adolescent↗

The molecular basis for cross-reacting material-positive hemophilia A due to missense mutations within the A2-domain of factor VIII.

Factor VIII (FVIII) is the protein defective in the bleeding disorder hemophilia A. Approximately 5% of hemophilia A patients have normal amounts of a dysfunctional FVIII protein and are termed cross-reacting material (CRM)-positive. The majority of genetic alterations that result in CRM-positive hemophilia A are missense mutations within the A2-domain. To determine the mechanistic basis of the genetic defects within the A2-domain for FVIII function we constructed six mutations within the FVIII cDNA that were previously found in five CRM-positive hemophilia A patients (R527W, S558F, I566T, V634A, and V634M) and one CRM-reduced hemophilia A patient (DeltaF652/3). The specific activity for each mutant secreted into the conditioned medium from transiently transfected COS-1 cells correlated with published data for the patients plasma-derived FVIII, confirming the basis of the genetic defect. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis analysis of immunoprecipitated FVIII protein radiolabeled in COS-1 cells showed that all CRM-positive mutant proteins were synthesized and secreted into the medium at rates similar to wild-type FVIII. The majority of the DeltaF652/3 mutant was defective in secretion and was degraded within the cell. All mutant FVIII proteins were susceptible to thrombin cleavage, and the A2-domain fragment from the I566T mutant had a reduced mobility because of use of an introduced potential N-linked glycosylation site that was confirmed by N-glycanase digestion. To evaluate interaction of FVIII with factor IXa, we performed an inhibition assay using a synthetic peptide corresponding to FVIII residues 558 to 565, previously shown to be a factor IXa interaction site. The concentration of peptide required for 50% inhibition of FVIII activity (IC50) was reduced for the I566T (800 mumol/L) and the S558F (960 mumol/L) mutants compared with wild-type FVIII (> 2,000 mumol/L). N-glycanase digestion increased I566T mutant FVIII activity and increased its IC50 for the peptide (1,400 mumol/L). In comparison to S558F, a more conservative mutant (S558A) had a sixfold increased specific activity that also correlated with an increased IC50 for the peptide. These results provided support that the defects in the I566T and S558F FVIII molecules are caused by steric hindrance for interaction with factor IXa.

Animals↗

Subunit structure of thrombin-activated porcine factor VIII.

Factor VIII (fVIII) is synthesized as a single chain having a domainal sequence A1-A2-B-A3-C1-C2. Analysis of the proteolyic cleavage of fVIII by thrombin by sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) identifies three fragments designated fVIIIA1, fVIIIA2, and fVIIIA3-C1-C2 with fragment(s) derived from the B domain being difficult to visualize. The appearance of these fragments is associated with the development of coagulant activity, but the activity is labile without further apparent proteolysis. In this study, porcine fVIII was reacted with thrombin until peak coagulant activity was obtained and then subjected to cation-exchange (Mono S) high-pressure liquid chromatography. Coagulant activity was recovered in a single peak that contained all three fragments and was stable for weeks at 20 degrees C in 0.65 M NaCl/0.01 M His-HCl/0.005 M CaCl2 at pH 6.0. Analytical ultracentrifugation of activated fVIII was done to test whether all three fragments were associated. The apparent molecular weight of activated fVIII from equilibrium sedimentation increased from 148,000 to 161,000 as the loading concentration was increased from 0.06 to 0.16 mg/mL. This agrees well with the summed apparent molecular weights of fVIIIA1, fVIIIA2, and fVIIIA3-C1-C2 calculated from SDS-PAGE analysis (148,000) or from the amino acid sequence of human fVIII (159,000). This establishes the major species in the preparation as a fVIIIA1/A2/A3-C1-C2 heterotrimer and additionally indicates either weak self-association of the trimer and/or incomplete association of the individual subunits to form the trimer. Velocity sedimentation of activated fViii revealed a single boundry (S020,w = 7.2 S).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Factor VIII and factor-VIII-related antigen in multiple myelomatosis and related conditions.

Factor VIII and factor-VIII-related antigen (FVIIIRA) were estimated in 19 patients with paraproteinaemia. The FVIIIRA levels were above the normal range in 12 cases with II of these showing an abnormal FVIII/FVIIIRA ratio. The patients could be subdivied into three groups according to their FVIIIRA levels: normal levels, levels greater than normal but less than 200%, greater than 200%. This subdivision correlated with the degree of bone involvement as assessed by radiological skeletal survey.

Adult↗

A monoclonal antibody (NMC-VIII/10) to factor VIII light chain recognizing Glu1675-Glu1684 inhibits factor VIII binding to endogenous von Willebrand factor in human umbilical vein endothelial cells.

The monoclonal antibody NMC-VIII/10 is a neutralizing antibody which recognizes the Glu1675-Glu1684 sequence of the factor VIII light chain and inhibits factor VIII (FVIII) binding to immobilized von Willebrand factor (vWf). In this study we immunohistochemically determined, using human umbilical cord tissue, whether or not NMC-VIII/10 has an inhibitory effect on FVIII binding to endogenous vWF in endothelial cells. Tissue sections were reacted with purified FVIII followed by peroxidase-conjugated monoclonal antibody (C5) recognizing the 54 kD fragment of the FVIII heavy chain. The labelling pattern of bound FVIII was similar to that of endogenous vWF and appeared as a fine granular deposit in the endothelial cells. Addition of purified vWF completely inhibited the binding of FVIII to endothelial cells. Furthermore, FVIII did not bind to endothelium in the presence of 0.25 M CaCl2, and similarly, thrombin-treated FVIII did not bind to the vascular site. These findings suggested that FVIII was bound to endogenous vWF in the endothelial cells. The binding reaction was completely inhibited by NMC-VIII/10, confirming that the monoclonal antibody recognizes the specific epitope responsible for FVIII binding to endogenous vWF.

Antibodies, Monoclonal↗

A comparison of the allelic frequencies of ten DNA polymorphisms associated with factor VIII and factor IX genes in Thai and Western European populations.

The frequency of five factor VIII gene intragenic and linked DNA polymorphisms and five factor IX gene intragenic polymorphisms was studied in Thai females. The polymorphisms in the FVIII gene were detected by restriction enzymes BclI, XbaI, BglI and at linked loci DX13 (DXS15) and St14 (DXS52) by BglII and TaqI, respectively, and in the FIX gene by MseI, DdeI, XmnI, TaqI and HhaI. With the exception of the BglI restriction fragment length polymorphism (RFLP), which is absent in Thais, factor VIII polymorphism frequencies were similar in Thais and Caucasians. Combined use of XbaI and TaqI/St14 resulted in a heterozygosity rate of greater than 90% in Thai females. For FIX, the recently described MseI RFLP in the 5' flanking region was the most informative polymorphism in Thais, 43% of females being heterozygous. The other four polymorphisms added little to the overall heterozygosity rate. The appropriate polymorphisms were used to track defective factor VIII and IX genes through 22 Thai pedigrees with haemophilia to enable carrier status to be assigned to female family members. The information obtained during this study will form the basis for carrier detection and prenatal diagnosis of haemophilia A and B by DNA polymorphism analysis in Thailand.

Alleles↗