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Epitope mapping of human factor VIII inhibitor antibodies by deletion analysis of factor VIII fragments expressed in Escherichia coli.

Epitopes for antibodies that inhibit factor VIII procoagulant protein were analyzed by deletion mapping of factor VIII protein fragments expressed in Escherichia coli. A human factor VIII cDNA clone was used to generate E. coli expression vectors encoding fragments containing the 80-kDa factor VIII light chain (A3, C1, and C2 domains) and the 44-kDa carboxyl-terminal half of the factor VIII heavy chain (A2 domain). A series of deletions of each fragment was constructed and tested by immunoblotting for the binding of alloantibody and autoantibody inhibitors. Analysis of derivatives of the 80-kDa fragment showed that six inhibitors recognized a major epitope(s) within the carboxyl-terminal 17.3 kDa of factor VIII. These inhibitors also recognized weaker epitopes nearby and one inhibitor recognized epitopes scattered throughout the 80-kDa fragment. Deletions within the heavy chain fragment revealed one epitope-containing region confined to the amino-terminal 18.3 kDa recognized by six inhibitors. Bacterially produced factor VIII fragments containing the major epitopes were capable of neutralizing inhibitors in vitro but fragments containing weaker or no epitopes did not. These data suggest a potential therapeutic use of factor VIII fragments for neutralization of inhibitor antibodies.

Autoantibodies↗

Molecular defects in coagulation Factor VIII and their impact on Factor VIII function.

Molecular defects in Factor VIII (FVIII), such as haemophilia A-related mutations or denaturative conformational changes, may affect the stability of FVIII as well as its interactions with physiological activators, von Willebrand Factor, phospholipid, or conformationally sensitive antibodies. We summarize the contemporary assays which allow identification of impaired functional interactions of FVIII that cause a reduction or loss of its cofactor activity and/or increased immunogenicity. These assays can potentially be used for detection of molecular defects in FVIII and elucidation of the function impaired by these defects.

Blood Coagulation↗

Plasma exchange and human factor VIII concentrate in managing haemophilia A with factor VIII inhibitors.

Plasma exchanges were combined with human factor VIII concentrate therapy in the treatment of major bleeding episodes in five patients with haemophilia A and factor VIII inhibitors. All patients had a good clinical response to combined treatment. Inhibitor levels showed satisfactory falls before rapid secondary increases of inhibitor levels took place. A sixth patient with von Willebrand's disease and a factor VIII clotting activity inhibitor was successfully prepared for operation using plasma exchange. Postoperative haemostasis and healing were normal. In two patients the plasma exchanges were relatively more effective than the administered human factor VIII in reducing the levels of factor VIII inhibitor. Combined plasma exchange and human factor VIII treatment may offer a rapidly effective means of reducing factor VIII inhibitor levels in this group of patients, together with significant saving of costs.

Factor VIII↗

The effect of carbohydrate depletion on procoagulant activity and in vivo survival of highly purified human factor VIII.

Human factor VIII procoagulant protein (factor VIII) was purified using a modification of our previously described method, in which Sephacryl S-400 elution, rather than QAE-cellulose chromatography, served as the final purification step. The protein had a specific activity of more than 2500 U/mg and consisted of a single polypeptide (Mr 100 000) when analyzed by SDS-polyacrylamide gel electrophoresis. Factor VIII was shown to be a glycoprotein by staining with periodic acid-Schiff's reagent following electrophoresis. Treatment of factor VIII with a mixture of exo- and endoglycosidases caused a reduction by about 50% in the intensity of periodic acid-Schiff staining, as determined by scanning densitometry, and an increase in electrophoretic mobility (equivalent to a new Mr 95 000). Removal of this portion of the total carbohydrate had no significant effect on factor VIII clotting activity or on thrombin potentiation of clotting activity. The in vivo survival curves of a native and sugar-depleted 125I-labeled factor VIII both showed similar patterns of initial rapid decay to 60 and 40% activity, respectively, followed by a one-half decay time of 4 h for both. These results suggest that the carbohydrate portion of human factor VIII does not contribute significantly to either clotting function in vitro or to biological turnover in vivo.

Animals↗

Influence of factor VIII:C and factor IX activity in plasmas of haemophilic dogs on the activated partial thromboplastin time measured with two commercial reagents.

The present study is based on 145 plasma samples with a reduced activity of factor VIII:C (range: 0.009-0.62 IU mL-1) and 28 samples with a reduced factor IX activity (range: 0.035-0.55 IU mL-1). The samples were collected from dogs with haemophilia A (n=22) or haemophilia B (n=3), some of these during substitution therapy. For all samples the activated partial thromboplastin time (APTT) was measured with two commercial reagents containing kaolin as a contact activator. In each case, the deficiency of factor VIII:C or IX was reflected in abnormal results of the APTT. This was true for both reagents. A significant correlation (P < 0.001) was found between factor VIII:C activity and APTT (reagent 1, Pathromtin(R); Spearman's rank correlation coefficient, rS=-0.731, reagent 2, PTT-Reagenz; rS=-0.875) as well as between factor IX activity and APTT (reagent 1, rS=-0.819; reagent 2, rS=-0.955]. In each case, the relationship between coagulation factor activity and APTT could be proven most precisely by geometric regression. The results of this study illustrate the applicability of commercial APTT test kits as a sensitive screening test of factor VIII:C and IX deficiencies in canine plasma.

Animals↗

In vivo characterization of recombinant factor VIII in a canine model of hemophilia A (factor VIII deficiency).

Infusion studies of recombinant factor VIII were performed in hemophilic (factor VIII-deficient) animals. Functional activity was determined using a standardized model of bleeding and kinetic characteristics charted by performing assays of factor VIII functional and antigenic activities over time. To obtain an adequate comparison with plasma-derived factor VIII, a crossover study in two animals was performed in which each animal received either recombinant factor VIII or a highly purified plasma-derived factor VIII on day 1 and the alternative three days later (day 4). Both factor VIII preparations were functionally effective with complete correction of the cuticle bleeding time occurring one hour after infusion. The observed recovery was full and close to predicted for both preparations. The survival curves obtained for both functional and antigenic activities for both preparations were virtually identical and within the anticipated range determined from previous experiments using infusions of conventional factor VIII preparations. The plasma half-disappearance time (T 1/2) for recombinant factor VIII and plasma-derived factor VIII was 9.2 and 7.9 hours, respectively. Plasma samples obtained following infusion were subjected to chromatography on Sepharose 4B. The elution profile of factor VIII antigen activity was compared with that obtained with the infusates. A clear shift in profile was observed with the plasma samples, suggesting complexing of the infused factor VIII material with circulating canine von Willebrand factor (vWF). The elution profile of vWF antigen was superimposable, thus providing further evidence in support of this assumption. The study provided evidence that recombinant factor VIII possesses full functional activity in vivo, binds to circulating vWF, and exhibits normal recovery and survival characteristics.

Animals↗

Ultracentrifugal analysis of factor VIII and von Willebrand factor in therapeutic preparations.

Plasma and therapeutic preparations of factor VIII (1 recombinant factor VIII and two monoclonally purified plasma-derived factor VIII preparations, Kogenate, and AHF-M and Monoclate, respectively) were centrifuged in a sucrose density gradient, and the fractions were analyzed for factor VIII and von Willebrand factor (vWF). The residual vWF in the monoclonally purified factor VIII preparations sediments more slowly than the vWF of plasma. In the absence of added vWF, the factor VIII in all preparations sediments more slowly than plasma factor VIII. These same preparations of factor VIII added to hemophilic plasma as a source of vWF sediment differently. The addition of either recombinant factor VIII or AHF-M results in sedimentation of the factor VIII with the plasma vFW and in a position indistinguishable from factor VIII in plasma. In contrast, when Monoclate is added to hemophilic plasma in vitro, the factor VIII sediments more slowly than the vWF of the hemophilic plasma. However, 5 min after the infusion of Monoclate into a patient with hemophilia A, the factor VIII sediments with the plasma vWF. These results indicate that the addition of recombinant factor VIII and AHF-M results in random binding to all vWF multimers of plasma, while there is little exchange between the added factor VIII in Monoclate and the plasma vWF in vitro. In contrast, when the Monoclate is infused, there is rapid binding of factor VIII to the plasma vWF.(ABSTRACT TRUNCATED AT 250 WORDS)

Antibodies, Monoclonal↗

Discrepant In Vivo Recovery of Factor VIII:C Following Infusion of Two Different Monoclonal Factor VIII Preparations.

Background: We experienced decreased recovery of factor VIII:C after commercial monoclonal factor VIII infusions. We report the recovery data obtained from infusing two brands of monoclonal factor VIII. Methods: Factor VIII:C activity was measured before and after an infusion of one of two monoclonal factor VIII preparations. The increments were calculated and expressed as a function of units of factor VIII administered per kilogram. Results: Monoclate increments averaged 2.3% (range: 1.6-3.2%). Antihemophilic factor (human) method M (AHFM) yielded an average increment of 1.4% (range: 1-1.7%). Conclusions: The two monoclonal factor VIII preparations used are not equivalent in activity. In switching brands, one must recalculate the prescribed dose based on the institution's experience in recovery of VIII:C from the particular brand to be prescribed. Cost calculations and comparisons should be based on the recovered factor VIII:C increments rather the unit purchase price.

Journal Article↗

[Remission of a non-haemophilic patient with acquired factor VIII inhibitor treated with infusion of factor VIII and corticosteroid].

A 61-years old woman who had been healthy without history of abnormal bleeding, developed widely spread ecchymosis and intramuscular bleeding in March, 1987. She was hospitalized for this hemorrhagic diathesis in May, 1987 and the following laboratory data were revealed: activated partial thromboplastin time (APTT), 76.7 seconds; factor VIII procoagulant activity, 2%; factor VIII inhibitor, 27 Bethesda units/ml. The inhibitor was an immunoglobulin of IgG type. Her clinical data of the blood were normal, and tests for antibodies, such as RA test, LE test and thyroid test were negative. Physical examination revealed ecchymosis over her right arm and swelling and pain in the right arm. She was first treated with a large dose of factor VIII concentrates, but the effect was insufficient. Then prednisolone was given, which resulted in decreasing of the inhibitor and improvement of the coagulation profiles. This treatment appeared to offer effective control on severe hemorrhage in patients with factor VIII inhibitors.

Autoantibodies↗

Heterogeneity of human factor VIII. III. Transitions between forms of factor VIII present in cryoprecipitate and in cryosupernatant plasma.

Human factor VIII in plasma is a disperse protein consisting of a series of aggregates wih different molecular weight. VIIR:Ag and VIII:C are present in all forms, but VIIR:WF is confined to the highest molecular weight forms only. After cryoprecipitation of plasma the latter are recovered in the precipitate, and the lowest molecular weight forms remain in the supernatant. Disaggregation of high molecular weight forms of factor VIII was found in vitro upon repeated cryoprecipitations. The disaggregation was detected only when the original low molecular weight forms were removed. The additional low molecular weight forms possessed VIII:C and VIIR:WF was lacking. The reverse process of aggregation of low molecular weight factor VIII to more highly aggregated forms was not observed. Exchange of VIII:C between high and low molecular weight fractions was demonstrated by gel chromatography of mixtures of hemophilic cryoprecipitate and normal concentrated cryosupernatant, and vice versa, at physiologic ionic strength. This suggests that VIII:C and VIIR:Ag are weakly and noncovalently linked in normal conditions. This was further supported by the dissociation of VIII:C from VIIIR:Ag and VIIIR:WF upon gel chromatography and cryoprecipitation at pH 6.2 The dissociation could be reversed by readjustment of the pH.

Blood Coagulation↗

Inactivation of human factor VIII by activated protein C: evidence that the factor VIII light chain contains the activated protein C binding site.

Factor VIII is represented as a series of heterodimers composed of an 83(81) kDa light chain noncovalently bound to a variable size (93 to 210 kDa) heavy chain. Activated protein C inactivates factor VIII causing several cleavages of the factor VIII heavy chain(s). When factor VIII subunits were dissociated and component heavy and light chains isolated, the heavy chains were no longer a substrate for proteolysis by activated protein C. However, when factor VIII heavy chains were recombined with light chain, the reconstituted factor VIII activity was inactivated by activated protein C. The rate of factor VIII inactivation catalyzed by activated protein C was reduced by the presence of free light chain. The extent of this inhibition was dependent upon the concentration of light chain. Control experiments indicated that this protective effect of free light chain was not the result of inhibition of the activated protein C - lipid interaction. Fluorescence analysis demonstrated binding between the factor VIII light chain, chemically modified with eosin maleimide, and activated protein C, modified at its active site by dansyl-Glu-Gly-Arg chloromethyl ketone. Similar to proteolysis of factor VIII by activated protein C, this binding was dependent upon a lipid surface. Based upon the degree of fluorescence quenching, a spatial distance of 26 A was calculated separating the two fluorophores. These results demonstrate direct binding of activated protein C to the factor VIII light chain and suggest that this binding is an obligate step for activated protein C-catalyzed inactivation of factor VIII.

Binding Sites↗

A Tyr346-->Cys substitution in the interdomain acidic region a1 of factor VIII in an individual with factor VIII:C assay discrepancy.

The interdomain acidic region a1 is a unique structural feature of coagulation factor VIII (FVIII) and may mediate the proteolytic activation of FVIII and the inactivation of FVIIIa. We report an individual with a Tyr346-->Cys substitution within region a1, who presented with a one-stage FVIII activity (FVIII:C) of 0.34 iu/ml (normal range 0.5-2.0) but normal two-stage FVIII:C and FVIII antigen values. In a factor Xa (FXa)-generation assay for FVIII in which the activation time with thrombin was varied, the variant plasma showed normal FVIII:C at both short and long activation times. However, at intermediate activation times the FXa generation of the variant plasma was less than that of normal pooled plasma. In a modified one-stage FVIII:C assay in which partially purified FVIII was activated with thrombin at low concentrations, the variant FVIII showed less activation than wild-type FVIII, although this defect corrected with increasing concentrations of thrombin. When partially purified variant FVIII was activated with a large molar excess of thrombin, the subsequent rate of decay of FVIII:C was greater for variant FVIII. The complex defects in activation and inactivation displayed by FVIII Tyr346-->Cys support the hypothesis that the a1 sequence is a key regulator of FVIII activity.

Aged↗

Development of factor VIII:C antibodies in dogs with hemophilia A (factor VIII:C deficiency).

Classic hemophilia A (factor VIII:C deficiency) was diagnosed in a miniature Schnauzer dog and a breeding program established. Inbreeding and crossbreeding produced 16 hemophilic animals. All were initially treated with canine cryoprecipitate, as required, for sporadic hemorrhagic events. Five animals developed potent antibodies to canine factor VIII:C. All were the offspring of obligate carriers, resulting from the mating of a hemophilic purebred miniature Schnauzer male to a normal female Brittany spaniel. The mean age at first treatment and factor VIII exposure at the time of inhibitor development was 10.3 wk and 286.3 U, respectively. The remaining hemophilic animals have not developed antibodies, despite receiving a mean factor VIII dosage of 1.5 X 10(3) U. This group includes animals derived from a mating between the same purebred miniature Schnauzer hemophilic male and a purebred miniature Schnauzer carrier female. In each case, the antibodies recognize both canine and human but not porcine VIII:C. They are non-precipitating IgG immunoglobulins. Following inhibitor development, infusion of canine cryoprecipitate was hemostatically ineffective and factor VIII:C recovery at 30 min was negligible. Infusion of a concentrate of porcine factor VIII resulted in a correction of the hemostatic defect and optimal factor VIII:C recovery. All animals receiving porcine factor VIII:C subsequently developed antibodies to this protein. The chance occurrence of this complication should facilitate further studies directed at elucidating the pathogenesis and management of hemophilia complicated by the development of antibodies to factor VIII:C.

Animals↗

Human recombinant DNA-derived antihemophilic factor (factor VIII) in the treatment of hemophilia A. recombinant Factor VIII Study Group.

BACKGROUND: Current treatment of hemophilia A, a hereditary disorder affecting approximately 1 in 10,000 males, relies on plasma-derived factor VIII concentrates. We tested the safety and efficacy of a recombinant factor VIII preparation for the treatment of this disorder. METHODS: We conducted the investigation in three stages: comparing the pharmacokinetics of plasma-derived and recombinant factor VIII, assessing the efficacy of recombinant factor VIII for home therapy, and assessing its efficacy for major surgical procedures and hemorrhage. A total of 107 subjects with hemophilia, 20 of whom had not been treated previously, enrolled in the investigation. RESULTS: The in vivo recovery and elimination half-lives of recombinant factor VIII equaled or exceeded those of plasma-derived factor VIII. Seventy-six subjects participated in a home-treatment program, using recombinant factor VIII for 69 to 807 days (median, 618); home diaries of 56 subjects treated for 5 months were analyzed. Of 540 bleeding episodes, 399 (73.9 percent) required only one treatment with recombinant factor VIII. The projected annual consumption of recombinant factor VIII was similar to that of plasma-derived factor VIII concentrate. Twenty-six subjects received recombinant factor VIII for 22 surgical procedures and 10 serious hemorrhages; hemostasis was excellent in all cases. De novo formation of inhibitors occurred in only 1 of 85 previously treated subjects. Inhibitor antibodies also developed in 6 of 21 children, 20 of whom had not previously been treated; 5 had low levels (less than or equal to 7.5 Bethesda units) despite continued treatment with recombinant factor VIII. There was no evidence of new formation of antibody to foreign proteins, and recombinant factor VIII was well tolerated. CONCLUSIONS: Recombinant factor VIII has biologic activity comparable to that of plasma factor VIII and is safe and efficacious for the treatment of hemophilia A.

Adult↗