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The main objective of the present study is to verify, in vivo, whether shear forces computed solely based on coronary angiography and computational fluid dynamics (CFD) techniques are associated with the biomarkers indicating the prothrombotic tendency of circulating blood in situ - distally and proximally to the coronary stenosis. The study will prospectively assess the relationship between i) the value and distribution of shear rate and shear stress (SS) estimated using three-dimensional angiography and CFD techniques, and ii) atherosclerotic plaque characteristics as assessed by optical coherence tomography (OCT), iii) functional parameters of diseased vessels assessed by vessel fractional flow reserve (vFFR), and iv) in situ platelet activation, as expressed by platelet-derived microvesicles (pMVs) and small extracellular vesicles (sEVs), platelet aggregometry and other serum prothrombotic or inflammatory biomarkers sampled within the coronary artery.
Full description
The biomechanical forces, including shear rate and shear stress exerted by circulating blood on the coronary wall and on circulating blood elements have been reported to contribute to the processes of plaque destabilization and thrombosis. Reliable estimation of shear (shear rate and shear stress) acting in vivo within the coronary artery has now become possible using imaging data and computational fluid dynamics techniques. The changing microenvironment of the plaque has a crucial role in the biochemical processes involved in remodeling the plaque itself. In this prospective, single-center study a total of 105 patients will be enrolled presenting with chronic coronary syndrome and angiographically confirmed coronary stenosis (30% - 90%) amenable to OCT imaging (according to the operator's judgment).
The groups will be assessed at the time of angiography with:
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105 participants in 1 patient group
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Adrian Bednarek; Mariusz Tomaniak
Data sourced from clinicaltrials.gov
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