Gene/Protein Disease Symptom Drug Enzyme Compound
Pivot Concepts:   Target Concepts:
Query: EC:2.3.1.108 (TAT)
2,389 document(s) hit in 31,850,051 MEDLINE articles (0.00 seconds)

Blood coagulation tests are useful to diagnose some thrombotic diseases. Particularly, these tests are valuable for the diagnosis of familiar thrombophilia, antiphospholipid antibody syndrome (APS) and disseminated intravascular coagulation (DIC). For the diagnosis of thrombophilia, determinations of both biological activity and antigen level of antithrombin III, protein C and protein S are important for initial screening. Since activated protein C (APC) resistance is extremely rare in Japanese, APC resistant test that based on APTT, is unnecessary to include as one of the screening tests. Detection of activity and antigen level of either plasminogen or fibrinogen is recommended to screen the plasminogen deficiency or dysfibrinogenemia. Determination of lupus anticoagulant is needed for the diagnosis of APS. At this time, the dilute phospholipid APTT (dAPTT) or the dilute Russell viper venom time (dRVVT) may be useful as a screening test for LA because procedure of these tests are basically simple to perform in Japanese laboratory. In the next step, cross mixing test of dAPTT (or APTT) should be perform to make a diagnose of LA more solid. Final confirm tests can be conveniently carried out with kit of either STACLOT or LA-CONFIRM. Platelet count and FDP (or FDP D dimer) assay are two essential tests for the diagnosis of DIC. Criteria of diagnosis for DIC recommended by Blood Coagulation Research Group of Japanese Ministry of Health and Welfare is not unnecessarily appropriate for practical use. TAT and PIC can be a good laboratory tests for early detection of hypercoagulable state in patients with DIC.
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PMID:[Clinical diagnosis of thrombosis and blood coagulation tests]. 956 63

Antiphospholipid antibodies (aPL) are associated with an increased risk of thrombosis and recurrent miscarriage. We assessed levels of coagulation activation markers and aPL during normal pregnancy and in women with the antiphospholipid syndrome (aPS). Fluctuations in aPL levels were observed in all patients with aPS. No particular pattern of antibody positivity, or fluctuation in aPL level, was associated with poor pregnancy outcome. A significant increase was observed in levels of factor Xlla (FXIIa; P < 0.001), factor VIIa (FVIIa, P < 0.001), thrombin antithrombin complexes (TAT; P < 0.001), prothrombin fragment F1.2 (F1.2; P < 0.001) and D-dimer (DD; P < 0.05) during normal pregnancy. Factor VIIa, TAT, F1.2 and DD increased significantly before 20 weeks gestation, while a statistically significant increase in FXIIa levels was first detected between weeks 20 and 30 of gestation. In pregnant women with aPS, increases in FXIIa were similar to those in normal pregnancy, but increased FVIIa levels were not observed until after 30 weeks gestation. Similar to normal pregnancy, increased levels of TAT and F1.2 were detected in aPS pregnancies before 20 weeks gestation, but increased DD were not observed until after week 20. Surprisingly, women with aPS receiving low molecular weight heparin prophylaxis had significantly higher (P = 0.02) levels of TAT (median 8.6; interquartile range (IQR) 6.5-20.8) between weeks 20 and 30 of gestation compared to the normal pregnant population (median 5.9; IQR 4.7-7.9), thus indicating increased thrombin generation in women with aPS in mid-pregnancy.
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PMID:Fluctuations in levels of antiphospholipid antibodies and increased coagulation activation markers in normal and heparin-treated antiphospholipid syndrome pregnancies. 1189 13

The activated protein C (APC) resistance phenotype associated with an abnormal factor V Leiden (FVL), and the G20210A prothrombin gene mutation are the most common findings in patients with venous thromboembolism (VTE). In a group of 210 patients, we compared the levels of markers of coagulation activation in carriers of FVL (71 heterozygous, 30 homozygous), G20210A prothrombin mutation (88 heterozygous) or both mutations combined (21 heterozygous), in order to assess whether these markers allow identification of a group of patients with a higher risk of thrombosis; they were also compared to normal values. A total of 143 patients had a personal history of VTE and 67 were asymptomatic. None of them had other hereditary causes of thrombophilia or an antiphospholipid syndrome. None were currently treated with either anticoagulant or hormonal treatment. Pregnant women were excluded. No significant difference between the four groups of patients could be found in the levels of F1+2, TAT and DDI. Levels were all significantly higher than the control values (p<0.05). The levels of F1+2 and TAT were similar in patients with or without a history of VTE, regardless of the type of mutation. DDI levels were significantly higher in patients with a history of VTE than in asymptomatic subjects (443+/-248 vs. 333+/-222 ng/ml, p=0.02) but with only 57% sensitivity and specificity. In conclusion, our study confirms the hypercoagulable state found in mutation carriers and points out the inability of F1+2 and TAT assays to identify a group of subjects at higher risk of thrombosis, within carriers of genetic risk factors. Although the sensitivity and specificity of DDI assay are low, high DDI concentrations tend to be associated with the risk of VTE.
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PMID:Markers of activated coagulation in patients with factor V Leiden and/or G20210A prothrombin gene mutation. 1241 82