This is a celebratory reprint of a historical paper published in STH in 1998. The original Abstract follows. The PFA-100 system is a platelet function analyzer designed to measure platelet-related primary hemostasis. The instrument uses two disposable cartridges: a collagen/epinephrine (CEPI) and a collagen/ADP (CADP) cartridge. Previous experience has shown that CEPI cartridges detect qualitative platelet defects, including acetylsalicylic acid (ASA)-induced abnormalities, while CADP cartridges detect only thrombocytopathies and not ASA use. In this seven-center trial, 206 healthy subjects and 176 persons with various platelet-related defects, including 127 ASA users, were studied. The platelet function status was determined by a platelet function test panel. Comparisons were made as to how well the defects were identified by the PFA-100 system and by platelet aggregometry. The reference intervals for both cartridges, testing the 206 healthy subjects, were similar to values described in smaller studies in the literature (mean closure time [CT] of 132 seconds for CEPI and 93 seconds for CADP). The use of different lot numbers of cartridges or duplicate versus singleton testing revealed no differences. Compared with the platelet function status, the PFA-100 system had a clinical sensitivity of 94.9% and a specificity of 88.8%. For aggregometry, a sensitivity of 94.3% and a specificity of 88.3% were obtained. These values are based on all 382 specimens. A separate analysis of sensitivity by type of platelet defect, ASA use versus congenital thrombocytopathies, revealed for the PFA-100 system a 94.5% sensitivity in identifying ASA users and a 95.9% sensitivity in identifying the other defects. For aggregometry, the values were 100% for ASA users and 79.6% for congenital defects. Analysis of concordance between the PFA-100 system and aggregometry revealed no difference in clinical sensitivity and specificity between the systems (p > 0.9999). The overall agreement was 87.5%, with a Kappa index of 0.751. The two tests are thus equivalent in their ability to identify normal and abnormal platelet defects. Testing 126 subjects who took 325 mg ASA revealed that the PFA-100 system (CEPI) was able to detect 71.7% of ASA-induced defects with a positive predictive value of 97.8%. The overall clinical accuracy of the system, calculated from the area under the receiver operating characteristic curve, was 0.977. The data suggest that the PFA-100 system is highly accurate in discriminating normal from abnormal platelet function. The ease of operation of the instrument makes it a useful tool to use in screening patients for platelet-related hemostasis defects.
Background: Thromboplastin reagents are used to conduct prothrombin time (PT) clotting tests to monitor oral anticoagulant therapy and screen for clotting factor deficiencies. Thromboplastins made from purified, recombinant tissue factor are generally more sensitive to changes in plasma factor (F) VII levels than are thromboplastins prepared from tissue extracts. This may be problematic as FVII's short plasma half-life can result in day-to-day fluctuation during oral anticoagulant therapy. We hypothesized that trace contamination of tissue-derived thromboplastins with FVII(a) blunts sensitivity to plasma FVII levels. Methods: Traces of purified FVIIa were added to thromboplastin reagents prepared using recombinant human tissue factor and the effect on sensitivity to individual clotting factors was quantified in PT clotting assays. Results and conclusions: Adding 5-100 pm FVIIa not only decreased thromboplastin sensitivity to plasma FVII, it surprisingly increased sensitivity to plasma levels of FV, FX and prothrombin. In addition, traces of FVIIa interacted with changes in the salt content and phospholipid composition of recombinant thromboplastins to further modulate their sensitivities to individual clotting factors. These results help explain how thromboplastin reagents of differing composition exhibit differing sensitivities to individual clotting factor levels. Implications of our results for monitoring oral anticoagulant therapy and other uses of the PT assay are discussed.
Background: Tissue factor is the active ingredient in thromboplastin reagents used to perform prothrombin time (PT) clotting tests to monitor oral anticoagulant therapy and to screen for clotting factor deficiencies. Thromboplastins are complex mixtures prepared from extracts of brain or placenta, although newer thromboplastins contain recombinant tissue factor incorporated into phospholipid vesicles. Thromboplastins can vary widely in their sensitivity to reductions in the levels of vitamin K-dependent clotting factors. A system to compensate for this, the International Sensitivity Index (ISI) and International Normalized Ratio (INR), has revolutionized the monitoring of oral anticoagulant therapy. The INR system is also sometimes used to monitor coagulopathies in patients with sepsis or liver failure, applications for which it was not originally designed and for which it has not been rigorously validated. Objectives: To better understand thromboplastin performance, we systematically investigated which properties of recombinant thromboplastins influence their sensitivities to changes in the levels of specific clotting factors. Results: We now report that relative sensitivities to changes in the plasma levels of factors V, VII, X (FV, FVII, FX) and prothrombin are differentially influenced by a recombinant thromboplastin's content of phospholipid and sodium chloride. Furthermore, thromboplastins of similar ISI values may exhibit quite different sensitivities to each of these clotting factors. Conclusions: Differing sensitivities of thromboplastin reagents to individual clotting factor levels have implications for monitoring of oral anticoagulant therapy and interpreting results of the PT assay.
OBJECTIVE To review the current understanding of the pathophysiology of protein C deficiency and its role in congenital thrombophilia. Recommendations for diagnostic testing for protein C function and concentration, derived from the medical literature and consensus opinions of recognized experts in the field, are included, specifying whom, how, and when to test. The role of related proteins, such as thrombomodulin and endothelial protein C receptor, is also reviewed. Data Sources.-Review of the published medical literature. DATA EXTRACTION AND SYNTHESIS A summary of the medical literature and proposed testing recommendations were prepared and presented at the College of American Pathologists Conference XXXVI: Diagnostic Issues in Thrombophilia. After discussion at the conference, consensus recommendations presented in this manuscript were accepted after a two-thirds majority vote by the participants. CONCLUSIONS Protein C deficiency is an uncommon genetic abnormality that may be a contributing cause of thrombophilia, often in conjunction with other genetic or acquired risk factors. When assay of protein C plasma levels is included in the laboratory evaluation of thrombophilia, a functional amidolytic protein C assay should be used for initial testing. The diagnosis of protein C deficiency should be established only after other acquired causes of protein C deficiency are excluded. A low protein C level should be confirmed with a subsequent assay on a new specimen. Antigenic protein C assays may be of benefit in subclassification of the type of protein C deficiency. The role of thrombomodulin and endothelial cell protein C receptor in thrombosis has yet to be clearly established, and diagnostic testing is not recommended at this time.
We have examined factor VIIa levels in consecutive consenting patients undergoing coronary angiography (n = 702) to determine if levels are related to the presence of coronary arterial narrowing and to the degree and extent of that narrowing. Both men and women with clinically defined coronary artery disease (> or = 50% stenosis in at least 1 vessel) had factor VIIa levels that were similar to men and women with less stenosis or normal coronary arteries.
Background Antiplatelet therapy with aspirin and systematic anticoagulation with warfarin reduce cardiovascular morbidity and mortality after myocardial infarction when given alone. In the Coumadin Aspirin Reinfarction Study (CARS), we aimed to find out whether a combination of low-dose warfarin and low-dose aspirin would give superior results to standard aspirin monotherapy without excessive bleeding risk.Methods We used a randomised double-blind study design. At 293 sites, we randomly assigned 8803 patients who had had myocardial infarction, treatment with 160 mg aspirin, 3 mg warfarin with 80 mg aspirin, or 1 mg warfarin with 80 mg aspirin. Patients took a single tablet daily, and attended for prothrombin time (PT) measurements at weeks 1, 2, 3, 4, 6, and 12, and then every 3 months. Patients were followed up for a maximum of 33 months (median 14 months).Findings The primary event was first occurrence of reinfarction, non-fatal ischaemic stroke, or cardiovascular death. 1-year life-table estimates for the primary event were 8.6% (95% Cl 7.6-9.6) for 160 mg aspirin, 8.4% (7.4-9.4) for 3 mg warfarin with 80 mg aspirin, and 8.8% (7.6-10) for 1 mg warfarin with 80 mg aspirin. Primary comparisons were done with all follow-up data. The relative risk of the primary event for the 160 mg aspirin group compared with the 3 mg warfarin with 80 mg aspirin group was 0.95 (0.81-1.12, p=0.57). For spontaneous major haemorrhage (not procedure related), 1-year life-table estimates were 0.74% (0.43-1.1) in the 160 mg aspirin group and 1.4% (0.94-1.8) in the 3 mg warfarin with 80 mg aspirin group (p=0.014 log rank on follow-up).For the 3382 patients assigned 3 mg warfarin with 80 mg aspirin, the INR results were: at week 1 (n=2985) median 1.51 (IQR 1.23-2.13); at week 4 (n=2701) 1.27 (1.13-1.64); at month 6 (n=2145) 1.19 (1.08-1.44).Interpretation Low, fixed-dose warfarin (1 mg or 3 mg) combined with low-dose aspirin (80 mg) in patients who have had myocardial infarction does not provide clinical benefit beyond that achievable with 160 mg aspirin monotherapy.
The central laboratory provides International Normalized Ratio results in close agreement with the local laboratory for monitoring the anticoagulant effect of low-dose warfarin. A central laboratory may have practical advantages for patients in rural areas that lack laboratory facilities for anticoagulant monitoring.
Although the efficacy of recombinant tissue-type Plasminogen activator (rt-PA) in acute myocardial infarction has been demonstrated, little formal dose-ranging information is available. This study examined the use of duteplase, the double-chain rt-PA subsequently used in the Third International Study of infarct Survival, in a multicenter trial of 267 patients with evolving acute myocardial infarction assigned to receive 1 of 6 weight-adjusted doses. The primary end point was infarct vessel patency after 90 minutes of drug infusion. Patency was defined as Thrombolysis in Myocardial infarction trial grade 2 or 3 perfusion, and was determined by an independent core laboratory masked to treatment assignment. Patency was present in 48% of patients receiving the lowest dose range and 78% of those receiving the highest, with an association between thrombolytic dose and patency (p = 0.009). The frequency of serious bleeding complications also correlated with the total dose of rt-PA infused (p = 0.003). Bleeding complications were primarily related to instrumentation; blood toss requiring transfusion or otherwise deemed clinically significant occurred in 12% of patients (central nervous system hemorrhage occurred in 1.1%). Thus, higher doses of rt-PA are associated both with increased efficacy and increased risk of serious bleeding complications. Weight-adjusted dosing may provide an optimal risk-benefit ratio for thrombolysis during acute myocardial infarction.
Although the majority of factor VII (FVII) circulates in the zymogen form, low levels of activated factor VII (FVIIa) have been postulated to exist in plasma and to serve a priming function for triggering of the clotting cascade. However, direct measurement of plasma FVIIa has not previously been possible. We have quantified plasma FVIIa levels using a novel, highly sensitive assay that is free from interference by FVII. Specificity of this clot-based assay results from the use of a mutant tissue factor that is selectively deficient in promoting FVII activation, but retains FVIIa cofactor function. In normal adults, FVIIa was found to be present in plasma (mean: 3.6 ng/mL) with considerable variation between individuals (range: 0.5 to 8.4 ng/mL). FVIIa levels were only loosely correlated with FVII coagulant activity, but were elevated in pregnancy and reduced with oral anticoagulant therapy. Incubation of plasma on ice in glass containers (cold activation) resulted in substantial FVIIa generation. Measurement of plasma forms of factor VII is of potential clinical importance because elevated FVII coagulant activity has been implicated as a significant risk predictor for ischemic heart disease. Clinically, this new assay will now permit direct assessment of the role of plasma FVIIa in thrombotic disorders.
Genomic DNA samples from 12 protein S-deficient families with hereditary thrombophilia were analyzed by Southern hybridization using protein S cDNA probes. Protein S-deficient members of families A and B possessed identical restriction fragment length polymorphisms, which suggest the absence of 5.3 kb from one of their protein S alpha alleles. The abnormal alleles from individuals A7 and B1 were amplified by the polymerase chain reaction using a forward primer in intron K and a reverse primer in exon XIV. The amplified DNA was cloned and sequenced. Sequence comparison with the normal protein S alpha gene showed that most of intron L (roughly 4.7 kb), the entire exon XIII (151 bp), and about a quarter of intron M (407 bp) were missing from both the A7 and B1 clones. Exon XIII contains all three potential N- glycosylation sites in human protein S. This deletion may result in RNA transcripts in which exon XII is spliced to exon XIV. Such an arrangement would generate a stop codon at position 463 and consequently produce a nonglycosylated protein S molecule truncated by 173 amino acids.
Warfarin-induced skin necrosis is a rare but serious complication of oral anticoagulant therapy. This review will discuss the clinical presentation, natural history, incidence, and possible etiologies of this condition as well as the limited therapeutic options available to the clinician