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1 anical properties while reducing the risk of thrombogenesis.
2 ndicated the importance of platelet DREAM in thrombogenesis.
3 ons in which NETs form and their relation to thrombogenesis.
4 Thus, we examined the role of L5 in thrombogenesis.
5 to Ang II and accelerated atherogenesis and thrombogenesis.
6 had significantly decreased FeCl(3)-induced thrombogenesis.
7 d in anucleate platelets and plays a role in thrombogenesis.
8 ition, inhibits MBL deposition, and prevents thrombogenesis.
9 istance may be an important factor in venous thrombogenesis.
10 e-response effects and shows improvements in thrombogenesis.
11 equired for normal hemostasis and pathologic thrombogenesis.
12 uration of AF, success of cardioversion, and thrombogenesis.
13 their binding to monocytes are key events in thrombogenesis.
14 nown whether it can cleave plasma VWF during thrombogenesis.
15 ion, such as ischemia-reperfusion injury and thrombogenesis.
16 CD40-deficient mice exhibited normal thrombogenesis.
17 part, related to enhanced platelet-mediated thrombogenesis.
18 ne the platelet adhesion pathways leading to thrombogenesis.
19 these different functions may be crucial for thrombogenesis.
20 o show that they may also mediate pathologic thrombogenesis.
21 ulation enzyme complexes present at sites of thrombogenesis and are potentially useful as antithrombo
23 ogen axis as a central determinant in venous thrombogenesis and identify FXIII as a potential therape
24 eptor may also be relevant in intra-arterial thrombogenesis and myocardial ischemia-reperfusion injur
25 atients with AF have increased intravascular thrombogenesis and platelet activation compared with pat
30 hanges in plasma fibrin D-dimer (an index of thrombogenesis) and beta-thromboglobulin (beta-TG, a mea
31 mbin generation (probably due to accelerated thrombogenesis) and inhibition of fibrinolysis precede r
32 ult in the fulfilment of Virchow's triad for thrombogenesis, and accord with a prothrombotic or hyper
33 ion accelerates atherosclerosis and promotes thrombogenesis, and inflammatory biomarkers have been co
34 tracellular matrix formation and remodeling, thrombogenesis, and those encoding cytokines/chemokines
35 s not only in the generation of thrombin and thrombogenesis, but also in vascular cell signaling.
38 ived PGI2 removes a protective constraint on thrombogenesis, hypertension, and atherogenesis in vivo.
42 effect of atrial fibrillation (AF) on atrial thrombogenesis in humans by determining the impact of ra
43 nant human (rh) MBL restored FeCl(3)-induced thrombogenesis in MBL-null mice to levels comparable to
46 udies have demonstrated increased markers of thrombogenesis in patients with atrial fibrillation (AF)
51 of the coagulation protease cascade, drives thrombogenesis, inflammation, tumor cell metastasis, and
52 remodeling is considered important in atrial thrombogenesis, its role never has been directly tested.
53 s via imaging and biomarkers associated with thrombogenesis may provide enhanced approaches to assess
54 awaited, measurement of suitable markers of thrombogenesis might prove to be valuable in identifying
58 ls have been identified; and mouse models of thrombogenesis that permit experimental manipulation of
64 ntribution from individual dietary lipids to thrombogenesis was reviewed in the preceding section of
65 ing myocardial schema/reperfusion injury and thrombogenesis when used at pharmacological doses in wil
66 uates atherogenesis, and fails to accelerate thrombogenesis, while suppressing prostaglandin E2, but
67 eatment resulted in intra-arterial occlusive thrombogenesis within 10 min in wild-type (WT) and C2/fa
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