Pathways of procoagulation in discordant xenografting.
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Human coagulation factor XI has been purified, and upon activation with Hageman factor fragments, was found to convert the fibrinolytic proenzyme plasminogen to plasmin. This proactivator activity was shown to be functionally and antigenically distinct from prekallikrein. When the gamma-globulin fractions of plasma deficient in Hageman factor, prekallikrein and factor XI were isolated, factor-XI-deficient plasma possessed two-thirds of the plasminogen proactivator activity of the Hageman-factor-deficient plasma, while prekallikrein deficient plasma had only one-third of the plasminogen proactivator activity. Thus, the Hageman-factor-dependent plasminogen proactivator previously reported to be present in the gamma-globulin fraction of normal human plasma is a function of prekallikrein and factor XI, while the activity observed in prekallikrein-deficient plasma is attributable to factor XI. When compared utilizing digestion of iodinated fibrin, prekallikrein and factor XIa had similar potency per active site; they were, however, far less active than urokinase.
Elastase is released from human neutrophils during the early events of blood coagulation. Human plasma kallikrein has been shown to stimulate neutrophil chemotaxis, aggregation, and oxygen consumption. Therefore, the ability of kallikrein to release neutrophil elastase was investigated. Neutrophils were isolated by dextran sedimentation, and elastase release was measured by both an enzyme-linked immunosorbent assay, and an enzymatic assay using t-butoxy-carbonyl-Ala-Ala-Pro-Val-amino methyl coumarin as the substrate. Kallikrein, 0.1-1.0 U/ml, (0.045-0.45 microM), was incubated with neutrophils that were preincubated with cytochalasin B (5 micrograms/ml). The release of elastase was found to be proportional to the kallikrein concentration. Kallikrein released a maximum of 34% of the total elastase content, as measured by solubilizing the neutrophils in the nonionic detergent Triton X-100. A series of experiments was carried out to determine if kallikrein was a major enzyme involved in neutrophil elastase release during blood coagulation. When 10 million neutrophils were incubated in 1 ml of normal plasma in the presence of 30 mM CaCl2 for 90 min, 2.75 micrograms of elastase was released. In contrast, neutrophils incubated in prekallikrein-deficient or Factor XII-deficient plasma released less than half of the elastase, as compared with normal plasma. The addition of purified prekallikrein to prekallikrein-deficient plasma restored neutrophil elastase release to normal levels. Moreover, release of elastase was enhanced in plasma deficient in C1-inhibitor, the major plasma inhibitor of kallikrein. This release was not dependent upon further steps in the coagulation pathway, or on C5a, since levels of elastase, released in Factor XI- or C5-deficient plasma, were similar to that in normal plasma, and an antibody to C5 failed to inhibit elastase release. These data suggest that kallikrein may be a major enzyme responsible for the release of elastase during blood coagulation.
Factor XII (FXII) deficiency has been reported to be a risk factor for the development of arterial and venous thromboembolism. However, no data are available on the prevalence of FXII deficiency within the normal population. Measuring APTT and FXII activity, seven FXII deficiencies could be detected among 300 healthy blood donors. This corresponds to an incidence of FXII deficiency of 2.3%. On the basis of these data the prevalence of severe and mild FXII deficiency in the normal population can be estimated to be 1.5-3.0%. Assessment of FXII antigen levels revealed, that all seven FXII deficient individuals had FXII antigen levels matching the activity. One presented a severe FXII deficiency (1/300, 0.3%) without detectable FXII activity and an APTT prolongation of more than 120 s. The remaining six FXII deficiencies (6/300, 2.0%) were moderate variations with FXII activities ranging from 20-45% and less prolonged APTTs. Among the 300 healthy donors 16 (5.3%) subjects with prolonged APTTs were identified. Causes for APTT-prolongation were FXII deficiency (7/16), lupus anticoagulant (6/16), mild FVIII deficiency (1/16) and hepatic disorder (1/16). In the remaining sample (1/16) the cause for the prolongation of the APTT remained unexplained. Although 8.7% (26/300) of the donors had a positive family-history of thromboembolism (TE-FHx), none of the FXII deficient subjects were among those with positive TE-FHx.
Activation of the plasma kallikrein-kinin forming cascade takes place upon incubation with human umbilical vein endothelial cells. The mechanism by which initiation occurs is uncertain. Zinc-dependent binding of plasma proteins to gC1qR, cytokeratin 1, and perhaps u-PAR is requisite for activation to take place. We demonstrate here that during a 2 hour incubation time plasma deficient in either factor XII or high molecular weight kininogen (HK) fails to activate, as compared to normal plasma, but with more prolonged incubation, factor XII-deficient plasma gradually activates while HK-deficient plasma does not. Our data support both factor XII-dependent (rapid) and factor XII-independent (slow) mechanisms; the latter may require a cell-derived protease to activate prekallikrein and the presence of zinc ions and HK.
The transient detection of fibrinogen on surfaces has been described (Vroman effect) and high-mol-wt kininogen (HK) has been shown to play a role in this reaction. In this study, we attempted to identify the form of HK responsible for preventing detection of the fibrinogen initially adsorbed from plasma to various artificial surfaces and to determine if other plasma components were involved. We compared 125I-fibrinogen adsorption in the presence of normal plasma to plasma deficient in specific proteins. On all surfaces tested, we found that fibrinogen was displaced from the surface. The extent of displacement was greatly reduced, however, but not eliminated in HK-deficient plasma. Factor XII-deficient plasma also showed reduced fibrinogen displacement. These data indicate that HK can actually displace fibrinogen; however, factor XII, or a factor XII-mediated reaction also appears to be necessary for this displacement to occur. Furthermore, when normal plasma was first subjected to extensive contact activation by dextran sulfate, during which the HK was extensively degraded to components smaller than the light chain (as assessed by Western blotting), we observed greatly reduced displacement of fibrinogen. Extensive contact activation of Factor XI-deficient plasma failed to show low-mol-wt derivatives, however, and displacement of fibrinogen was similar to normal plasma that had not undergone extensive activation. These data indicate that HKa (active cofactor produced during contact activation by factor XIIa or kallikrein) is primarily responsible for displacing fibrinogen, and that HKi (inactive cofactor generated by factor XIa) cannot displace fibrinogen. The fibrinogen from all plasma samples looked similar by Western blot analysis, suggesting that fibrinogenolysis was not a component of the Vroman effect. In addition, experiments performed with plasma prechromatographed on lysine agarose showed that a lysine-agarose adsorbable protein may be minimally involved in fibrinogen desorption and a synergism may exist between HK and that protein.
Acquired deficiencies of functional Hageman factor (factor XII) and prekallikrein, proteins involved in the plasma kinin-generating system, have been previously reported in the nephrotic syndrome. The basis for these changes, however, is not fully understood. We have examined the levels of Hageman factor and prekallikrein by functional and radioimmunoassays in plasmas and urines of 11 patients with the nephrotic syndrome. All 11 patients had decreased titers of plasma Hageman factor activity (mean +/- standard deviation (SD), 0.29 +/- 0.15 U/ml), but essentially normal titers of immunoreactive Hageman factor (0.68 +/- 0.23 U/ml). The ratio of immunoreactive Hageman factor to functional Hageman factor (2.63 +/- 0.86) was significantly higher than that in nine control patients (1.08 +/- 0.17). Since no circulating anticoagulants against Hageman factor were detected, these data suggest the presence of nonfunctional (altered) Hageman factor in plasmas of patients with the nephrotic syndrome. Urinary excretion of Hageman factor was present in six patients but did not appear to account for the reduced plasma Hageman factor activity. Urinary Hageman factor in one patient had the same size as plasma Hageman factor as assessed by gel filtration and sucrose density gradient centrifugation. The titers of plasma prekallikrein were within the normal range. These studies indicate urinary excretion of Hageman factor and alterations in the functional sites of plasma Hageman factor molecules in the nephrotic syndrome. Whether these changes are related to the pathogenesis of the nephrotic syndrome remains to be determined.
A patient with Hodgkin's disease is described in whom deficiencies of coagulation factors VII and XII were discovered. Depressed levels of these factors appear to reflect increased Hodgkin's disease activity and returned to normal when chemotherapy was instituted. There was no evidence of accelerated fibrinolysis, intravascular coagulation, or circulating anticoagulants in the patient. Possible mechanisms for the abnormality include impaired production and/or increased consumption of coagulation factors. This observation suggests that all patients with lymphoreticular neoplasms should be screened carefully for clotting disturbances prior to treatment.
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We have used activation peptide release assays to compare factor VII and activated factor VII (VIIa) activation of factor X, normal factor IX (IXN), and a variant factor IX (IXBmLE), which, after activation, is unable to back-activate factor VII. In purified systems, factor VII and VIIa each rapidly activated factor X, but after a one minute lag for factor VII. VIIa also readily activated both IXN and IXBmLE. Factor VII initially failed to activate substantial amounts of either IXN or IXBmLE; on further incubation factor VII activated IXN but not IXBmLE. Activation of IXN began when approximately 10% of factor VII had been converted to VIIa, as measured by 125I-factor VII radioactivity profiles. Adding factor VII to VIIa slowed its activation of IXBmLE. However, in the presence of factor X, factor VII alone rapidly activated IXBmLE. Unlike purified systems, 1 nmol/L VIIa added to factor VII-deficient plasma failed to activate factor IX. Increasing factor VII to 10 nmol/L (plasma concentration) either as native VII or VIIa yielded similar activation curves for factor IX and similar activation curves for factor X. Adding 5% VIIa to factor X-deficient plasma and to factor XII-deficient plasma substantially shortened the dilute tissue factor clotting time of only the former. These data support the hypothesis that factor VII/tissue factor complex initiates tissue factor-dependent clotting through a minimal generation of Xa. This Xa then rapidly back-activates a small amount of factor VII, following which the rates of activation of both factors IX and X increase dramatically.
The isolation and characterization of the first component of the kinin-forming system in human and rabbit plasma are presented. Functionally, the molecule is the precursor of the activator of prekallikrein (Pre-PKA) and evidence is presented that it is identical with Hageman factor (clotting factor XII). The component from each plasma possessed similar characteristics. This molecule was found to have a mol wt of 110,000 and sedimentation rate of 4.6S. It migrated in electrophoresis as a beta-globulin, having an isoelectric point of 6.1. Upon activation with glass, kaolin, diatomaceous earth, ellagic acid, or trypsin, the activated molecule converted purified prekallikrein (prokininogenase) to the active enzyme. Clot-promoting activity was associated with the capacity to activate prekallikrein through each procedure of isolation. The clot-promoting factor was in precursor form, requiring treatment with kaolin or trypsin to gain activity. Evidence indicated that the protein was Hageman factor (factor XII): it promoted clotting of factor XII-deficient, but not Factor XI- or IX-deficient plasma, and did not convert fibrinogen to fibrin it bound to and was activated by kaolin or other negatively charged particles in the presence of chelating agents; the activation by kaolin could be prevented by pretreating the kaolin with hexadimethrine bromide (H Br); prekallikrein-activating and clot-promoting activities were identical in their physical properties; and the prekallikrein activator could not be detected in Hageman factor-deficient plasma. Activation of Hageman factor was accompanied by cleavage of the molecule into several fragments, one of which possessed prekallikrein-activating (PKA) and clot-promoting properties. The PKA fragment sedimented at 2.6S and by gel filtration was found to have a molecular weight of 32,000. The PKA possessed only 1/50 the clot-promoting capacity of the freshly activated native molecule.
INTRODUCTION: Hereditary thrombophilia is caused by various inherited disorders which lead to familial tendency to recurrent venous thrombosis usually at an early age and with spontaneous onset. In the studies reported so far, the different prevalence of hereditary thrombophilia among patients with venous thrombosis was found, greatly depending on criteria for selection of patients. Arterial thrombosis is most often the consequence of arteriosclerosis but the prevalence of hereditary thrombophilia among young patients with arterial thrombosis and without recognized risk factors for arteriosclerosis is not known . In this study, the frequency of hereditary deficiencies of antithrombin III (AT III), protein C (PC), protein S (PS), plasminogen (PLMG), factor XII (F XII) and dysfibrinogenaemia was investigated over a 2-year period in 121 patients with venous or arterial thrombosis selected according to the recommendations of the British Committee for Standards in Haematology. PATIENTS AND METHODS: The study included total a of 121 patients (58 males and 63 females) with documented venous or arterial thrombosis. Table 1 shows patient's characteristics regarding gender, age and clinical manifestation of thrombosis. Each patient fulfilled at least one of the following criteria: a) venous thrombosis prior to the age of 45; b) arterial thrombosis prior to the age of 30, without risk factors for arteriosclerosis; c) recurrent thrombosis; d) familial tendency to thrombosis; e) thrombosis of unusual localization. A detailed history was taken from each patient on earlier personal or familial occurrence of thrombosis. For the purpose of this study, thrombophilia was characterized as congenital when the deficient protein was constantly below normal value and when the same deficiency was confirmed in a close family member; acquired when the acquired disorder predisposing to thrombosis was present in absence of constant protein deficiency; and idiopathic when the cause of thrombosis was unknown. All tests were performed in plasma obtained after centrifugation of venous blood anticoagulated with 0.129 mol/1 sodium citrate. Concentrations of fibrinogen, PT, PTT and F XII were measured by standard clotting methods. At III, PC and plasminogen activity were determined by chromogenic methods using commercial reagents (Boehring, Marburg, Germany). AT III, PC and total PS antigen were assayed by Laurell immunoelectrophoresis. The presence of lupus anticoagulant was investigated by recommended tests. RESULTS: A total of 15 patients (12.4%) fulfilled criteria for hereditary thrombophilia. Seven of them (5.8%) had AT III deficiency, five (4.1%) PC deficiency, two (1.6%) PS deficiency, and one patient had F XII deficiency. Secondary thrombophilia was found in 21.5% of patients and the cause of thrombosis in 66.1% of patients was not elucidated. A high frequency of hereditary thrombophilia has been found in patients with arterial thrombosis (40%). Among patients with hereditary thrombophilia thrombosis occurred at significantly younger age (29.9 vs. 42.2 and 40.9 yr.) compared to the patients with secondary and idiopathic thrombophilia, respectively. Patients with hereditary thrombophilia had also a higher occurrence of positive family history related to thrombosis (66.7% vs. 7.7% and 27.5%). DISCUSSION: The prevalence of hereditary thrombophilia in nonselected patients with venous thrombosis is relatively low, and for that reason the selection of patients, according recommended criteria, in whom the screening tests for congenital thrombophilia should be performed, is strongly suggested by many authors. In our study we used the generally accepted recommendations for investigation of patients with venous and arterial thrombosis. The presence of congenital thrombophilia was found in 15 (12.4%) of 121 studied patients, what is in accordance with results of other similarly designed studies. (ABSTRACT TRUNCATED)
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Williams-Beuren syndrome is a genetic disorder caused by a heterozygous deletion at 7q11.23. The present report describes a female patient with Williams-Beuren syndrome combined with caudal regression syndrome and two forms of coagulopathy. Besides the typical developmental abnormalities such as mental and growth retardation, a distinctive facial appearance, and cardiovascular anomalies, our patient showed fusion of fourth and fifth lumbar vertebra and a sacrococcygeal agenesis. Blood coagulation tests revealed a deficiency of coagulation factor XI and XII. Magnetic resonance imaging angiography showed multiple vascular stenoses mainly in the abdominal aorta and its major branches as a consequence of the insufficient elastin gene. Previous reports identified a deletion of HLXB9 as a possible genetic cause of the caudal regression syndrome, which could not be identified in the present case. This unusual combination of the above-mentioned genetic disorders has not been published so far.
According to our personal experience and to the study of the literature, 11 cases of venous thrombosis have been described as sporadic reports in patients with severe (homozygous) factor XII (FXII) deficiencies. In every cases but 4, associated risk factors were found to be present (pregnancy, post-partum period, surgery, trauma, in dwelling catheter, AT deficiency, heterozygous factor V Leiden, Burger's disease). In some instances more then one condition was present. The four patients for whom no information is supplied, were cases gathered from old and logically incomplete files and therefore the existence of associated risk factors cannot be excluded. The papers which investigated the presence of venous thrombosis in cohorts of patients with homoxygous FXII deficiency demonstrated the occurrence of venous thrombosis in 2 additional cases out of a total of 63 patients investigated. In these latter cases thrombosis occurred during pregnancy. This brings the total number of patients with FXII deficiency who showed a venous thrombosis to 13. Only a few of these patients were investigated for the presence of concomitant congenital prothrombotic conditions. The conclusion of the study seem to suggest that the role played by FXII deficiency in the pathogenesis of venous thrombosis is minor, if any.