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Biomedical subjects

F A Ofosu

Publications and source records attributed to F A Ofosu.

At least 37 records · Page 2Linked to original sources

Delivery of human factor IX in mice by encapsulated recombinant myoblasts: a novel approach towards allogeneic gene therapy of hemophilia B.

A potentially cost-effective strategy for gene therapy of hemophilia B is to create universal factor IX-secreting cell lines suitable for implantation into different patients. To avoid graft rejection, the implanted cells are enclosed in alginate-polylysine-alginate microcapsules that are permeable to factor IX diffusion, but impermeable to the hosts' immune mediators. This nonautologous approach was assessed by implanting encapsulated mouse myoblasts secreting human factor IX into allogeneic mice. Human factor IX was detected in the mouse plasma for up to 14 days maximally at approximately 4 ng/mL. Antibodies to human factor IX were detected after 3 weeks at escalating levels, which were sustained throughout the entire experiment (213 days). The antibodies accelerated the clearance of human factor IX from the circulation of the implanted mice and inhibited the detection of human factor IX in the mice plasma in vitro. The encapsulated myoblasts retrieved periodically from the implanted mice up to 213 days postimplantation were viable and continued to secrete human factor IX ex vivo at undiminished rates, hence suggesting continued factor IX gene expression in vivo. Thus, this allogeneic gene therapy strategy represents a potentially feasible alternative to autologous approaches for the treatment of hemophilia B.

Alginates↗

Plasmin accelerates platelet-dependent prothrombinase formation without activating the platelets.

Patients with acute myocardial infarction who undergo thrombolytic therapy may shortly thereafter present evidence for increased platelet activation and thrombin activity, and recurrent thrombosis. This study investigated whether plasmin activates platelets and prothrombin in recalcified platelet-rich plasma (RPRP) to cause (at least in part) these side-effects of thrombolytic therapy. Plasmin (0.1 and 1.0 CU/ml) addition to RPRP with microM r-tick anticoagulant peptide (the latter a factor Xa inhibitor which abrogates prothrombin activation by prothrombinase at the concentration used) resulted in no change in the concentration of prothrombin fragment 1 + 2, or in the expression of GMP-140, the resting and activated GP IIb-IIIa conformers, and GPIb on platelets. Thus, plasmin neither activates platelets nor prothrombin in RPRP. However, plasmin accelerated platelet activation and secretion, and prothrombin fragment 1 + 2 production in RPRP. When combined with 1 microM r-tick anticoagulant peptide and 1 or 10 mM alpha-thrombin to RPRP, plasmin also increased the number of GMP-140 molecules expressed/platelet without enhancing alpha-thrombin binding to the platelets. Additionally, plasmin accelerated prothrombin activation when it was added to washed platelets resuspended in factor V depleted plasma simultaneously with 10 mM CaCl2, 10 nM alpha-thrombin for 10 s (to activate platelets and platelet factor V), followed by 4 microM hirudin and 1 nM factor Xa. Thus, plasmin potentiates the platelet release reaction in response to alpha-thrombin (probably by increasing the availability of factor V on the platelets) to enhance prothrombin activation in RPRP. These actions of plasmin may contribute to the increased platelet activation and thrombotic side-effects that can occur after thrombolytic therapy.

Blood Platelets↗

Age-related changes in factor VII proteolysis in vivo.

Previous studies have reported that pre-operative plasmas of patients over the age of 40 years who developed post-operative deep vein thrombosis (DVT) had approximately twice the amount of proteolysed factor VII found in plasmas of patients in whom prophylaxis with heparin or low M(r) heparin was successful. These and other studies also reported higher concentrations of thrombin-antithrombin III in pre- and post-operative plasmas of patients who developed post-operative thrombosis than in plasmas of patients in whom prophylaxis was successful. Whether the extent of factor VII proteolysis seen in the patients who developed post-operative DVT is related to the severity of their disease or age is not known. This report investigated age-related changes in the concentrations of total factor VII protein, factor VII zymogen, factor VIIa, tissue factor pathway inhibitor, thrombin-antithrombin III, and prothrombin fragment 1 + 2 in normal plasmas and the relationships between these parameters. With the exception of thrombin-antithrombin III, statistically significant increases in the concentrations of these parameters with age were found. Additionally, the differences between the concentrations of total factor VII protein and factor VII zymogen, an index factor VII proteolysis in vivo, were statistically significant only for individuals over age 40. Using linear regression analysis, a significant correlation was found to exist between the concentrations of plasma factor VIIa and prothrombin fragment 1 + 2. Since factor VIIa-tissue factor probably initiates coagulation in vivo, we hypothesize that the elevated plasma factor VIIa (reflecting a less tightly regulated tissue factor activity and therefore increased thrombin production in vivo) accounts for the high risk for post-operative thrombosis seen in individuals over the age of 40.

Adolescent↗

Probable regulation of factor VIIa-tissue factor and prothrombinase by factor Xa-TFPI and TFPI in vivo.

Given that factor VIIa-tissue factor (TF) probably initiates coagulation in vivo, this study investigated the relationship between plasma concentrations of factor VIIa and prothrombin fragment 1 + 2 in plasma (the latter as an index of prothrombinase activity in vivo). The relationships between these two parameters and the concentrations of tissue factor pathway inhibitor (TFPI) and factor Xa-TFPI in plasma were also investigated. TFPI inactivates factor Xa in a reaction accelerated by heparin, whereas factor Xa-TFPI inactivates factor VIIa-TF and prothrombinase. Established enzyme-linked immunosorbent assays (ELISAs) were used to quantify TFPI and prothrombin fragment 1 + 2, whereas we developed an ELISA to quantify factor Xa-TFPI using affinity purified rabbit (anti-human TFPI)-IgG and chicken anti-(human factor Xa-TFPI)-IgY as the capture and detector antibodies, respectively. Plasma factor VIIa was quantified using truncated tissue factor. The concentrations of factor VIIa and prothrombin fragment 1 + 2 increased in parallel in the plasmas of up to 145 healthy adults assayed (P = 0.007), as did the concentrations of factor VIIa and TFPI (P = 0.0039), and prothrombin fragment 1 + 2 and TFPI (P = 0.013). In contrast, there was an inverse relationship between the concentrations of free factor Xa-TFPI and factor VIIa (P < 0.0001) and free factor Xa-TFPI and prothrombin fragment 1 + 2 (P = 0.0095). These results are consistent with factor Xa-TFPI regulating factor VIIa-tissue factor and prothrombinase in vivo.

Adult↗

Control mechanisms in thrombin generation.

Thrombin accelerates its own production by activating platelets (and perhaps other cells) to provide coagulant surfaces on which prothrombinase, the enzyme complex that activates prothrombin in plasma and consists of equimolar factor Xa (serine protease) and factor Va (cofactor), assembles in a Ca(2+)-dependent reaction. Thrombin also activates factor V to provide the cofactor for factor Xa in prothrombinase, and factor VIII to provide the cofactor for factor X activation by factor IXa. Even when factor X activation is initiated by tissue factor, efficient propagation of factor X activation is critically dependent on intrinsic tenase (the factor IXa and factor VIIIa enzyme complex). These procoagulant actions of thrombin explain why good antithrombins can inhibit both intrinsic and extrinsic prothrombin activation. Because of the low level of thrombin (1 nM) required to initiate platelet activation and the activation of platelet-bound factor V, only highly efficient antithrombins, such as hirudin, can abrogate platelet-dependent prothrombinase assembly.

Animals↗

Prolonged antithrombin activity of low-molecular-weight heparins. Clinical implications for the treatment of thromboembolic diseases.

BACKGROUND: The mechanism for the efficacy of once- or twice-daily subcutaneous injections of low-molecular-weight heparins (LMWHs) for the treatment of venous thromboembolism has been difficult to explain. The confusion exists because the observation from experimental studies that the antithrombin activity of LMWHs is necessary for their antithrombotic effect is inconsistent with the reported short half-life of the antithrombin activity of LMWHs. Previous pharmacokinetic studies were performed with lower doses of LMWHs than have been used in contemporary trials, and antithrombin activity was assessed with the barely sensitive chromogenic assay. METHODS AND RESULTS: We performed a pharmacokinetic study to compare the relative half-lives of prophylactic and therapeutic doses of LMWHs assessing antithrombin activity with both the chromogenic and a more sensitive assay (plasma thrombin neutralization assay). An eight-way cross-over randomized study in healthy volunteers was performed. Enoxaparin (20 and 40 mg and 1 and 2 mg/kg) and nadroparin (7500 and 10,000 ICU and 225 and 450 ICU/kg) were administered subcutaneously. The maximal peak activity for aPTT ratio was 1.7. A dose-dependent peak activity was found for both antifactor Xa and antithrombin activities. Disappearance time of these activities after the highest dose of both LMWHs was longer than 16 hours. Overall mean antifactor Xa activity half-life was 4.6 hours. Overall mean antithrombin activity half-life was longer than 4 hours. CONCLUSIONS: Our results provide an explanation for the effectiveness of LMWHs administered either once or twice daily. High and sustained plasma antithrombin activity is achieved when LMWHs are administered in therapeutic doses used in contemporary trials with only a moderate prolongation of the aPTT.

Adult↗

Anticoagulant actions of tissue factor pathway inhibitor on tissue-factor-dependent plasma coagulation.

The initiation and propagation of in vivo coagulation are thought to be catalyzed by factor VIIa-tissue factor (an activator of factor X and factor IX) and factor IXa-factor VIIIa (an activator of factor IX), respectively. The enzymatic activity of factor VIIa-tissue factor is abrogated by tissue factor pathway inhibitor (TFPI), which anchors a quaternary complex consisting of equimolar TFPI, factor Xa, factor VIIa, and tissue factor in which both factor Xa and factor VIIa are inactive. This study compared the anticoagulant effectiveness of TFPI (which also inactivates prothrombinase-bound factor Xa), hirudin (which inactivates thrombin), and heparin (which catalyzes the inactivation of factor Xa and thrombin by antithrombin III). Factor X and prothrombin activation were initiated by adding 5 pM r-tissue factor in a suspension of coagulant phospholipids and CaCl2 to defibrinated plasma. Compared on the basis of their ability to delay the initiation of and inhibit factor X and prothrombin activation, the anticoagulant effectiveness of 0.5 nM TFPI was greater than those of 10 nM hirudin and approximately 100 nM (0.1 unit/mL) heparin. However, a 100-fold molar excess of TFPI over tissue factor could not abrogate factor X and prothrombin activation in plasma. These results suggest that propagation of tissue-factor dependent coagulation is catalyzed by factor IXa-factor VIIIa, which unlike factor VIIa-tissue factor, is not inactivated by TFPI.

Animals↗

Measurement of factor Xa-antithrombin III in plasma: relationship to prothrombin activation in vivo.

The M(r) of the complexes formed when factor Xa reacts with antithrombin III (ATIII) in plasma were estimated by gel filtration and SDS-polyacrylamide electrophoresis. The predominant species of factor Xa-ATIII detected after plasma and plasma to which factor Xa had been added were gel filtered on Sephadex G-200 and Sepharose 4B had apparent M(r) > 200,000, in which factor Xa-ATIII was associated with vitronectin. Addition of factor Xa-ATIII to ATIII-depleted plasma also resulted in the formation of factor Xa-ATIII-vitronectin complexes with M(r) > 200,000. Using polyclonal antibodies to human factor Xa-ATIII and ATIII as the capture and detector antibodies, respectively, a sensitive and specific enzyme-linked immunosorbent assay was developed to quantify factor Xa-ATIII in plasma. The relationship between factor Xa-ATIII production and prothrombinase activity in vivo was investigated by quantifying factor Xa-ATIII and prothrombin fragment 1 + 2 endogenous to the plasmas of blood donors and patients with Hodgkin's and non-Hodgkin's lymphoma. Whereas the concentrations of prothrombin fragment 1 + 2 in the 84 normal plasmas increased with age, those of factor Xa-ATIII (mean +/- SD of 34.7 +/- 13.8 pM) did not, and no correlation existed between the concentrations of the two parameters in normal plasmas. In contrast, a highly significant correlation between the concentrations of these two parameters was found in the plasmas of the cancer patients which coincidentally also had higher concentrations of both factor Xa-ATIII and prothrombin fragment 1 + 2 than the normal plasmas. Thus, ATIII may differentially influence prothrombinase formation and activity in normal individuals and cancer patients.

Adult↗

Prevention of thrombus formation and growth by antithrombin III and heparin cofactor II-dependent thrombin inhibitors: importance of heparin cofactor II.

Heparin (HEP) prevents thrombus formation (TF) and thrombus growth (TG), by accelerating thrombin (THR) inhibition by antithrombin III (ATIII). Recent studies suggest that dermatan sulphate which catalyzes thrombin inhibition by heparin cofactor II (HCII), can inhibit TF and TG as effectively as HEP. This study compared the antithrombotic effects of HEP and another agent, Sulodexide (SLX) which catalyzes thrombin inhibition by ATIII and HCII simultaneously. TF was induced in rabbit jugular veins, using the stasis/hypercoagulation model. TG was measured as the accretion of 125I-fibrin onto existing thrombi in rabbit jugular veins. HEP and SLX inhibited TF when given in doses of 10 and 5 anti-thrombin U/kg, respectively. SLX (16 anti-thrombin U/kg or 260 micrograms/kg) was more effective than HEP (120 anti-thrombin U/kg or 800 micrograms/kg) in preventing TG when administered either as a bolus or by continuous infusion. These data suggest that agents which accelerate THR inhibition by both ATIII and HCII simultaneously, can inhibit TF and TG with less systemic anticoagulation than comparable antithrombotic doses of HEP.

Animals↗

Hemostatic system activation in patients with lupus anticoagulant and essential thrombocythemia.

Hemostatic system activation was estimated in the plasmas of 39 patients with LAC and 19 patients with ET by measuring concentrations of TAT complex and prothrombin F1+2. The concentrations of FVII, recognized previously as a risk factor for arterial thrombosis, were also measured. None of the patients had active thrombosis during this study. The mean TAT and F1+2 levels in LAC and ET plasmas were higher than the respective values in the plasmas of healthy control subjects. Compared with their respective controls, TAT levels were significantly higher in the LAC group (P < 0.05) and F1+2 was significantly higher in the ET group (P < 0.005). The mean FVIIt and FVIIz was significantly higher (P < 0.05 and P < 0.01, respectively) in LAC than control plasmas. Furthermore, the differences between FVIIt and FVIIz were significantly greater in LAC than control plasmas, indicating increased in vivo proteolysis of FVII in LAC. Although the mean concentrations of these two FVII parameters in ET plasma were not significantly different from those of normal plasmas, the FVII levels were higher in 30% of ET plasmas than the upper limit of controls. Our results are consistent with hypercoagulation in LAC and ET patients, and this may be a contributory factor for the increased rates of thrombosis associated with the two conditions.

Adolescent↗

The hypercoagulable state in cancer patients: evidence for impaired thrombin inhibitions.

Activation of prothrombin and the subsequent reactions of thrombin with its substrates and its major inhibitors, antithrombin III (AT III) and heparin cofactor II (HC II), likely reflect both intravascular and extravascular coagulation. Several studies have reported increased in vivo coagulation in cancer. Whether the increased thrombin production in malignancy is accompanied by a corresponding increase in thrombin inhibition is unknown. This study quantified prothrombin fragment 1 + 2 (F1 + 2), thrombin-AT III (TAT), thrombin-AT III-vitronectin (TAT.V), and thrombin-HC II-vitronectin (THCII.V) in the plasmas of healthy volunteers (n = 37); patients with localized solid tumours before treatment was initiated (n = 39); and five patients with non-Hodgkin's lymphoma, both before and during weekly chemotherapy. Two of the five non-Hodgkin's lymphoma patients developed deep venous thrombosis (DVT) during chemotherapy. In normal plasma, where the concentrations of the four parameters likely reflect haemostasis, the sum of TAT, TAT.V and THCII.V was 61% that of F1 + 2, compared with 30% in cancer plasmas. In addition, the mean +/- SEM of F1 + 2 in the plasmas of cancer patients (1.56 +/- 0.09 nM) was significantly elevated (P < 0.001) when compared with healthy volunteers (0.89 +/- 0.06 nM). Eight weeks of chemotherapy increased the F1 + 2 and the binary TAT in plasmas of the non-Hodgkin's lymphoma patients by approximately 1.5- and 2.9-fold, respectively. Thus, increased prothrombin activation in cancer patients, without corresponding increases in concentrations of thrombin-inhibitor complexes, raise the possibility that a significant portion of the thrombin generated in vivo escapes inhibition in cancer and contributes to the high risk of DVT in malignancy.

Adult↗

Thrombin binding to platelets and their activation in plasma.

The interactions of alpha-thrombin with platelets are critical in haemostasis and arterial thrombosis. This study established methods for characterizing the binding of alpha-thrombin to platelets and some of its consequences in platelet-rich plasma. The binding of alpha-thrombin to platelets and the subsequent platelet activation were quantified by flow cytometry, using affinity purified polyclonal antibodies to human alpha-thrombin and a monoclonal antibody to GMP-140, respectively. Dose-dependent binding of alpha-thrombin to platelets and their activation occurred in parallel, both reaching the maxima for each enzyme concentration within 10s after > or = 1.0 nM alpha-thrombin was added to recalcified PRP containing 1 microM recombinant tick anticoagulant peptide. The tick anticoagulant peptide abrogated prothrombin activation in the platelet-rich plasma. alpha-Thrombin binding to platelets, and their activation, were abrogated by a monoclonal antibody to the hirudin tail-like domain of the seven transmembrane thrombin receptor on platelets. Therefore this receptor represents an important site for alpha-thrombin binding to platelets suspended in plasma. D-Phe-Pro-ArgCH2-alpha-thrombin only bound to platelets when its concentration was > or = 100 nM, and it did so without inhibiting platelet activation by alpha-thrombin. Whereas concentrations of hirudin equimolar to those of alpha-thrombin failed to abrogate alpha-thrombin-mediated activation of platelets, a 10-fold molar excesses of hirudin over alpha-thrombin abrogated alpha-thrombin binding to platelets. The demonstration that > or = 1.0 nM alpha-thrombin can bind to platelets and initiate their activation raises the possibility that the levels of thrombin generated in venous and arterial thrombosis contribute to platelet activation in vivo.

Blood Platelets↗

Heparin and low molecular weight heparins inhibit prothrombinase formation but not its activity in plasma.

Factor V activation is a critical step preceding prothrombinase formation. This study determined the contributions of factor Xa and thrombin, which activate purified factor V with similar catalytic efficiency, to plasma factor V activation during coagulation. Prothrombin activation began without a lag phase after a suspension of coagulant phospholipids, CaCl2, and factor Xa was added to factor X-depleted plasma. Hirudin, a potent thrombin inhibitor, abrogated prothrombin activation initiated with 0.5 and 1.0 nM factor Xa, but not with 5 nM factor Xa. In contrast, hirudin did not abrogate prothrombin activation in plasmas pre-incubated with 0.5, 1.0 or 5 nM alpha-thrombin for 10 s followed by the coagulant suspension containing 0.5 nM factor Xa. Thus, thrombin activates plasma factor V more efficiently than factor Xa. At concentrations which doubled the clotting time of contact-activated normal plasma, heparin and three low Mr heparins also abrogated prothrombin activation initiated with 0.5 nM factor Xa, but not with 5 nM factor Xa. If factor V in the factor X-depleted plasma was activated (by pre-incubation with 10 nM alpha-thrombin for 60 s) before adding 0.5, 1.0, or 5 nM factor Xa, neither hirudin nor the heparins altered the rates of prothrombin activation. Thus, none of the five anticoagulants inactivates prothrombinase. When 5 or 10 pM relipidated r-human tissue factor and CaCl2 were added to normal plasma, heparin and the three low Mr heparins delayed the onset of prothrombin activation until the concentration of factor Xa generated exceeded 1 nM, and they subsequently inhibited prothrombin activation to the same extent.(ABSTRACT TRUNCATED AT 250 WORDS)

Factor V↗

Is heparin the ideal anticoagulant for cardiopulmonary bypass? Dermatan sulphate may be an alternate choice.

Performance of cardiopulmonary bypass (CPB) during cardiac surgery requires the administration of high dose heparin to prevent CPB pump occlusion. However, this heparin use is associated with bleeding side-effects. Moreover, at the end of CPB, the heparin must be neutralized with protamine sulphate, which is also associated with adverse side-effects. A number of recent studies suggest that dermatan sulphate may be useful as an alternate anticoagulant to heparin. We determined whether CPB could be performed using dermatan sulphate instead of heparin, in an adult pig CPB model. When heparin was used, a high dose (> 200 U/kg, which generated > 3 anti-thrombin U/ml of plasma), was required to perform successful CPB and to maintain CPB pump patency. This dose was associated with a post CPB bleeding of approximately 600 ml/2 h. In contrast, successful CPB could be achieved when the pigs were given lower doses of dermatan sulphate than heparin, which in turn, were associated with less bleeding. We conclude that dermatan sulphate may be an alternate anticoagulant for cardiac surgery.

Animals↗

Thrombin generation during cardiac surgery: is heparin the ideal anticoagulant?

Blood samples were collected from 43 patients undergoing elective cardiac surgery to determine the extent of thrombin generation and inhibition in patients when receiving heparin while undergoing cardiopulmonary bypass (CPB). Plasma prothrombin fragment F1 + 2 and thrombin-antithrombin III (TAT) levels were measured as markers of thrombin generation and inhibition, respectively. Both F1 + 2 and TAT levels increased significantly during the course of CPB despite the heparin causing significant systemic anticoagulation, i.e. the activated coagulation time (ACT) was prolonged to greater than 400 s throughout the entire surgical procedure. The extent of thrombin generation increased with time on CPB but did not differ between patients receiving normothermic and hypothermic cardioplegia during CPB. Furthermore, thrombin generation increased following the neutralization of the heparin with protamine sulphate, and continued to be elevated significantly 24 h post surgery. The observation that high dose heparin did not prevent thrombin generation during CPB, is consistent with previous experimental studies demonstrating that thrombin bound to fibrin or other surfaces (e.g. the CPB conduit) is resistant to antithrombin III/heparin inhibition, and thus able to facilitate further thrombin generation. The observation that thrombin generation continued to be elevated post surgery i.e. 24 h after neutralizing the heparin with protamine sulphate, suggests that the high dose heparin did not inhibit effectively all of the thrombin that had been generated. Thus, CPB patients may be at risk not only of bleeding and other side-effects associated with the acute use of high dose heparin, but may also be at risk of further thrombosis-related events either acutely or chronically.

Aged↗

The direct binding of human factor VII in plasma to recombinant human tissue factor.

The extrinsic pathway of coagulation is initiated when zymogen factor VII binds to its cell surface receptor tissue factor. Recently recombinant human tissue factor has become available and therefore in this study the direct binding of human factor VII in plasma to recombinant tissue factor was explored. Factor VII binding was quantitated by a standard ELISA protocol using monospecific polyclonal rabbit anti-human factor VII as the primary antibody and goat anti-rabbit IgG conjugated to alkaline phosphatase as the second antibody. Both the oxidation state of the recombinant tissue factor and calcium ion concentration were found to be critical for the efficient binding of factor VII. A linear relationship was observed between absorbance and factor VII concentration when normal pooled human plasma was diluted in the range 1:25 to 1:1000 (factor VII concentration 0.5-20 ng/ml). Evidence is provided to show that binding is both specific for human coagulation factor VII and can be utilized to detect factor VII molecular variants with impaired tissue factor binding.

Binding, Competitive↗

An antithrombin III assay based on factor Xa inhibition provides a more reliable test to identify congenital antithrombin III deficiency than an assay based on thrombin inhibition.

OBJECTIVES: To determine whether functional antithrombin III (AT-III) levels measured by a factor Xa inhibition (AT-III-Xa) assay identifies AT-III deficient individuals more reliably than functional AT-III levels measured by a thrombin inhibition (AT-III-IIa) assay. STUDY DESIGN: Cross-sectional study. PATIENT POPULATION: Sixty-seven members of a large family with type 2 AT-III deficiency. INTERVENTION: DNA analysis was used as the reference diagnostic standard for AT-III status and subjects were classified as AT-III deficient or non deficient according to these results. Functional AT-III levels were measured in all subjects using: 1) a chromogenic substrate for thrombin and added human thrombin (AT-III-IIa), and 2) a chromogenic substrate for factor Xa and added bovine factor Xa (AT-III-Xa). Functional heparin cofactor II (HC-II) levels were measured using a commercially available kit. The proportions of 125I-alpha-thrombin complexed to AT-III and HC-II were measured by polyacrylamide gel electrophoresis and autoradiography. RESULTS: Thirty-one (46%) individuals were classified as AT-III deficient and 36 (54%) as AT-III non deficient. AT-III-Xa assay measured a significantly lower mean AT-III value and a narrower range for individuals classified as AT-III deficient than the AT-III-IIa assay. Using the AT-III-IIa assay, six subjects had borderline AT-III levels compared to none with the AT-III-Xa assay.(ABSTRACT TRUNCATED AT 250 WORDS)

Adolescent↗

Mechanisms for the anticoagulant effects of synthetic antithrombins.

The important roles of thrombin in the development and propagation of thrombosis are well recognized. In addition to being the enzyme for clotting fibrinogen (the major protein component of blood clots), thrombin accelerates its own generation by activating factor V, factor VIII, factor XI and platelets. It accelerates the stabilization of clots by activating factor XIII to factor XIIIa, the enzyme which crosslinks fibrin. There are probably two major pathways for regulating the availability of thrombin in vivo: inactivation of thrombin (by antithrombin III/vessel wall heparan sulfate and perhaps by other endogenous antithrombins) and the inactivation of factor Va and factor VIIIa by activated protein C. Factor Va and factor VIIIa accelerate the production of thrombin. However, when thrombin becomes bound to fibrin (in clots or possibly on cell surfaces), the ability of antithrombin III/heparin to inactivate thrombin is then reduced significantly. Impairment by fibrin of thrombin inhibition by antithrombin III may account in part for the inability of unfractionated heparin to prevent post-operative deep vein thrombosis in up to 20% of patients who undergo major elective orthopaedic surgery, and may also explain the need for oral anticoagulants after unfractionated and low molecular weight heparins are used to initiate the treatment of established deep vein thrombi. The ineffectiveness of the antithrombin III/heparin pathway for inhibiting thrombin under some circumstances has been a contributory factor for the development, evaluation and identification of other inhibitors of thrombin which are more able than antithrombin III/heparin to inactivate thrombin when the enzyme is bound to fibrin. The focus of this review is to detail how these synthetic agents, by directly or indirectly inactivating thrombin, can also effectively inhibit prothrombin activation in vitro.

Amino Acid Sequence↗