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Biomedical subjects

B Everson

Publications and source records attributed to B Everson.

12 recordsLinked to original sources

Induction of expression of monocyte interleukin 1 by Hageman factor (factor XII).

The results reported here indicate that activated species of Hageman factor (HF, factor XII), a protein that mediates blood clotting, fibrinolysis, and activation of the complement cascade, induce elaboration of interleukin 1 (IL-1) by human monocytes. Augmentation of IL-1 production in mononuclear cell cultures was observed when HF was present along with lipopolysaccharide (LPS) but was not observed with HF alone. Furthermore, antiserum to HF abrogated the enhancement of IL-1 in cultures containing HF and LPS. Total IL-1 activity, which represents secreted and cell-associated IL-1, was enhanced in LPS-stimulated mononuclear cultures by HF. In the absence of LPS, the initial activation product of HF, HFa, which contains the serine protease enzyme activity and the surface-binding domains of the protein, induced IL-1 beta protein and mRNA. In the presence of LPS, the enzymatic moiety (HFf), which is also contained in HF and HFa, amplified IL-1 production. Induction and amplification of monocyte IL-1 by HF provides further evidence for establishing a role for HF in the acute-phase reaction and the cellular immune response.

Enzyme Activation

Inhibition of the activation of Hageman factor (factor XII) by aprotinin (Trasylol)

Aprotinin (Trasylol; Bayer AG, Leverkusen, Germany), a protease inhibitor resembling or identical with Kunitz' pancreatic trypsin inhibitor, is said to have anticoagulant properties, but these are not clearly defined. The present study provides evidence that one action of aprotinin is inhibition of the activation of Hageman factor (factor XII).

Aprotinin

Inhibition of the activation of Hageman factor (factor XII) by human vascular endothelial cell culture supernates.

The supernatant fluid (conditioned medium) of cultured human vascular endothelial cells inhibits activation of Hageman factor (factor XII), whether by ellagic acid, bovine brain sulfatides, or bismuth subgallate; inhibition appears to be a property of one or more proteins in the culture supernates. This phenomenon may contribute to maintaining the fluidity of circulating blood by inhibiting surface activation of the intrinsic pathway of coagulation.

Cells, Cultured

Interactions of C1(-)-inhibitors from normal persons and patients with type II hereditary angioneurotic edema with purified activated Hageman factor (factor XIIa).

Activated high molecular weight Hageman factor (75 Kd) and Hageman factor carboxy-terminal fragments both formed complexes with purified C1(-)-inhibitor, but the Hageman factor fragments appeared to have a higher affinity for the C1(-)-inhibitor than activated Hageman factor. Therefore, the clot-promoting activity of activated Hageman factor might be relatively unimpaired if Hageman factor fragments are also present. Normal C1(-)-inhibitor was cleaved by Hageman factor fragments. Clot-promoting activity was not generated in Hageman factor by exposure to Hageman factor fragments, nor was Hageman factor cleaved by Hageman factor fragments. When Hageman factor was cleaved by streptokinase-activated plasminogen, a 40 Kd fragment was released. In contrast to their interactions with other proteinases, which are blocked by normal C1(-)-inhibitor, Type II C1(-)-inhibitors from plasmas of affected members of eight different kindred with this form of hereditary angioneurotic edema all inhibited the specific coagulant activity of activated Hageman factor to some degree. They did not all form complexes with activated Hageman factor that were stable during sodium dodecyl sulfate-polyacrylamide gel electrophoresis.

Angioedema

Notes on clotting in a Burmese python (Python molurus bivittatus).

Studies of the clotting mechanisms in the plasma of a Burmese python (Python molurus bivittatus) confirm earlier information that both extrinsic and intrinsic pathways of thrombin formation participate in reptilian hemostasis. Plasma fibrinogen was present at a concentration comparable to that in human plasma. Other assays were hampered by the need to use nonreptilian reagents. The activated partial thromboplastin time was shorter than was that of human plasma, thus implying the presence of prothrombin in python plasma; however, this protein could be demonstrated only in trace amounts. Similarly, only small amounts of Hageman factor (factor XII) and antihemophilic factor (factor VIII) were detected, and none of plasma prekallikrein, high-molecular-weight kininogen, and Christmas factor (factor IX). The prothrombin time was slower than that of human plasma. Factor VII was not detected, but both proaccelerin (factor V) and Stuart factor (factor X) were present. Python plasma inhibited bovine thrombin and human plasmin, but it was deficient in fibrinolytic capacity.

Animals

Inhibition of the activation of Hageman factor (factor XII) by platelet factor 4.

Platelet factor 4 is a polypeptide constituent of platelet alpha granules that is released during platelet aggregation and inhibits heparin-mediated reactions. Hageman factor (factor XII) is a plasma proenzyme that, when activated by certain negatively charged agents, initiates clotting via the intrinsic pathway of thrombin formation. In earlier studies using crude systems, platelet factor 4 inhibited activation of Hageman factor by dextran sulfate or cerebrosides, but not activation of Hageman factor by kaolin or ellagic acid. In the present study we examined the mechanisms of inhibition by platelet factor 4, using purified reagents. Platelet factor 4 inhibited activation of Hageman factor by ellagic acid, as measured by amidolysis of a synthetic substrate of activated Hageman factor, an effect inhibited by heparin or by an anti-platelet factor 4 antiserum. Coating glass tubes with platelet factor 4 before addition of normal plasma significantly lengthened the partial thromboplastin time of normal plasma. In addition, the clot-promoting properties of kaolin were inhibited by its prior exposure to platelet factor 4. Thus, the inhibitory properties of platelet factor 4 directed against the activation of Hageman factor were confirmed in a purified system. In this purified system, in contrast to earlier studies using crude systems, platelet factor 4 inhibited activation of Hageman factor by glass, ellagic acid, or kaolin.

Blood Coagulation

Inhibition of the activation of Hageman factor (factor XII) by beta 2-glycoprotein I.

beta 2-Glycoprotein I (apolipoprotein H), a constituent of normal human plasma, has been shown to inhibit the generation of amidolytic activity in plasma that has been exposed to negatively charged agents. Studies with purified Hageman factor (factor XII) demonstrate that this inhibitory property is directed against the activation of Hageman factor. In this study beta 2-glycoprotein I inhibited the kaolin-induced generation of clot-promoting properties in solutions of Hageman factor. This effect was localized to an interaction between beta 2-glycoprotein I and kaolin. In contrast, once Hageman factor was activated by kaolin, its clot-promoting properties were not inhibited by beta 2-glycoprotein I. Further, beta 2-glycoprotein inhibited the generation of amidolytic activity against H-D-prolyl-L-phenylalanyl-L-arginine p-nitroanilide dihydrochloride in mixtures of Hageman factor and ellagic acid. The specificity of the action of beta 2-glycoprotein I was confirmed by its neutralization by immunoglobulin fractions of antiserums directed against this protein.

Adolescent

Studies on a circulating anticoagulant inhibiting factor XI in a patient with congenital deficiency and carcinoma of the prostate.

An inhibitor of plasma thromboplastin antecedent (PTA, factor XI), measured in coagulant and radioimmunoassays, was detected in a 60-year-old man with carcinoma of the prostate who had no evidence of a bleeding tendency. Family studies indicated that the patient was either a homozygote or a heterozygote for hereditary factor XI deficiency. In contrast to earlier described patients with factor XI deficiency in whom inhibitors were detected, the patient was unaware of having been transfused with blood or blood products at any time before the discovery of the inhibitor. The inhibitor of factor XI in the patient's plasma appeared to be predominantly in the IgG4 fraction and to be directed at a locus on the factor XI molecule other than the active site; it did not block the amidolytic properties of activated factor XI (XIa). Rather, it appeared to block adsorption of factor XI to negatively charged surfaces. The inhibitor interfered with measurement of other components of the intrinsic pathway of thrombin formation, perhaps explaining the low titres of other coagulation factors of the intrinsic system reported in patients with strong inhibitors directed against factor XI.

Factor XI

Antihemophilic factor [factor VIII] preparations inhibit lymphocyte proliferation and production of interleukin-2.

To examine the role of antihemophilic factor (factor VIII) preparations in the pathogenesis of subclinical immunodeficiency in hemophilia, we tested the in vitro effects of these products on immune function. Both lyophilized antihemophilic factor (LAHF) and cryoprecipitates inhibited lymphocyte proliferation in a dose-dependent fashion. Further studies indicated that LAHF interfered with an early event in proliferation and also that prolonged incubation of human lymphocytes with LAHF resulted in an irreversible inhibition of lymphocyte proliferation without detectable cytotoxic effects. LAHF also inhibited the production of interleukin-2 (IL-2) by human lymphocytes and by Jurkat tumor cells, suggesting that inhibition of IL-2 production was not mediated through effects on interleukin-1. Gel filtration of LAHF revealed two peaks of inhibitory activity; one with mol wt greater than 2 X 10(6) comigrated with factor VIII coagulant activity and antigen, whereas another with mol wt approximately 6 X 10(5) was devoid of factor VIII activity and antigen. Further study will ascertain whether administration of factor VIII-containing preparations contributes to the subclinical immunodeficiency seen in patients with hemophilia or serves as a cofactor in the development of clinical immunodeficiency after exposure to the retrovirus human T-lymphotropic virus type III.

Acquired Immunodeficiency Syndrome

Purification of Hageman factor (factor XII) on columns of popcorn-agarose.

Purification of Hageman factor (HF, factor XII) from human plasma is a tedious procedure and the product is not always in the precursor form. Hojima has described a protein derived from corn kernels that inhibits the enzymatic properties of HF. This inhibitor binds to the precursor form of HF. Rapid purification of HF was achieved by using as the major purification step adsorption of this clotting factor to popcorn inhibitor bound to agarose. The product had a specific activity of 50.0 to 67.1 coagulant units of HF per milligram protein, and the yield was 33% to 40% of the HF content of the starting plasma. The purified protein displayed a single band upon unreduced or reduced sodium dodecyl sulfate polyacrylamide gel electrophoresis and less than 0.1% was in an activated form, as measured in coagulant assays. The technique described is more rapid and reliable than methods described earlier.

Adsorption

A monoclonal antibody that inhibits activation of human Hageman factor (factor XII).

A monoclonal antibody to human Hageman factor (HF, factor XII) was derived from BALB/c mouse spleen cells fused with NS-1 mouse myeloma cells. This antibody, purified from ascites fluid, reacted with HF to inhibit the activation of HF, purified or in normal pooled plasma, as measured by a coagulation assay. The antibody did not inhibit the coagulant activity of activated HF. The antibody also inhibited the generation of amidolytic activity in HF-ellagic acid mixtures, but failed to inhibit the amidolytic properties of the carboxy-terminal fragment of HF (HFf). Amidolytic activity, absent in an HF-monoclonal antibody mixture, was generated upon treatment with insoluble trypsin. Monoclonal antibody, bound to CNBr Sepharose 4B gel (Pharmacia Fine Chemicals, Piscataway, NJ), reversibly bound HF in plasma or in buffer, without activating it. HF was then eluted with 4 mol/L guanidine HCI. The passage of 125I-labeled HF enzymatically cleaved by trypsin through a column of monoclonal antibody-CNBr Sepharose 4B gel resulted in flow-through of HFf with a molecular weight (mol wt) of 30,000 and HF fragments of mol wt 12,000. Elution with 4 mol/L guanidine HCI yielded several HF fragments (mol wt 80,000, 52,000, and 40,000) but not HFf. These data suggest that the single determinant recognized by the murine monoclonal antibody is not on HFf, but rather on the amino-terminal fragment thought to be involved in the binding activity of HF. The monoclonal anti-HF bound to CNBr-activated Sepharose 4B gel could be used to artificially deplete plasma samples of HF.

Animals

Inhibition of Hageman factor (factor XII) by popcorn inhibitor.

A protein derived from sweet corn or popcorn inhibits the enzymatic activity of the carboxy-terminal fragment of Hageman factor (HFf) and of ellagic acid-activated Hageman factor (HF, factor XII). Not clarified is whether the inhibitor is directed at the active site of HF. Filtration of normal plasma or purified HF through columns of popcorn inhibitor bound to agarose gels demonstrated that HF was bound to these gels and could then be eluted by buffers containing 2.0 mol/L sodium chloride. The eluted HF was in the precursor form. Thus, popcorn inhibitor appeared to attach to a point on the carboxy-terminal HFf that was distinct from the enzymatically active site of this clotting factor.

Binding Sites