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PMID: 29933242 Published · ppublish English Journal Article

Impact of strut dimensions and vessel caliber on thrombosis risk of bioresorbable scaffolds using hemodynamic metrics.

Biomedizinische Technik. Biomedical engineering ·Vol. 64 ·No. 3 ·2019-05-27 ·页码 251-262

Stiehm M, Wüstenhagen C, Siewert S, Ince H, Grabow N, Schmitz KP

Abstract

Bioresorbable scaffolds (BRS) promise to be the treatment of choice for stenosed coronary vessels. But higher thrombosis risk found in current clinical studies limits the expectations. Three hemodynamic metrics are introduced to evaluate the thrombosis risk of coronary stents/scaffolds using transient computational fluid dynamics (CFD). The principal phenomena are platelet activation and effective diffusion (platelet shear number, PSN), convective platelet transport (platelet convection number, PCN) and platelet aggregation (platelet aggregation number, PAN) were taken into consideration. In the present study, two different stent designs (thick-strut vs. thin-strut design) positioned in small- and medium-sized vessels (reference vessel diameter, RVD=2.25 mm vs. 2.70 mm) were analyzed. In both vessel models, the thick-strut design induced higher PSN, PCN and PAN values than the thin-strut design (thick-strut vs. thin-strut: PSN=2.92/2.19 and 0.54/0.30; PCN=3.14/1.15 and 2.08/0.43; PAN: 14.76/8.19 and 20.03/10.18 for RVD=2.25 mm and 2.70 mm). PSN and PCN are increased by the reduction of the vessel size (PSN: RVD=2.25 mm vs. 2.70 mm=5.41 and 7.30; PCN: RVD=2.25 mm vs. 2.70 mm=1.51 and 2.67 for thick-strut and thin-strut designs). The results suggest that bulky stents implanted in small caliber vessels may substantially increase the thrombosis risk. Moreover, sensitivity analyses imply that PSN is mostly influenced by vessel size (lesion-related factor), whereas PCN and PAN sensitively respond to strut-thickness (device-related factor).

Keywords
CFD bioresorbable scaffold non-Newtonian numerical simulation thrombosis transient
MeSH 主题词
Absorbable Implants Coronary Artery Disease/physiopathology,surgery Coronary Vessels/surgery Hemodynamics Humans Stents Thrombosis Treatment Outcome
作者与单位
共 6 位作者,点击展开单位 / ORCID
Stiehm Michael
Institute for ImplantatTechnology and Biomaterials e.V., Friedrich-Barnewitz-Str. 4, 18119 Rostock-Warnemünde, Germany.
Wüstenhagen Carolin
Institute for ImplantatTechnology and Biomaterials e.V., Friedrich-Barnewitz-Str. 4, 18119 Rostock-Warnemünde, Germany.
Siewert Stefan
Institute for ImplantatTechnology and Biomaterials e.V., Friedrich-Barnewitz-Str. 4, 18119 Rostock-Warnemünde, Germany.
Ince Hüseyin
Center for Internal Medicine, Department of Cardiology, Rostock University Medical Center, Ernst-Heydemann-Straße 6, 18057 Rostock, Germany.
Grabow Niels
Institute for Biomedical Engineering, Rostock University Medical Center, Friedrich-Barnewitz-Str. 4, 18119 Rostock-Warnemünde, Germany.
Schmitz Klaus-Peter
Institute for ImplantatTechnology and Biomaterials e.V., Friedrich-Barnewitz-Str. 4, 18119 Rostock-Warnemünde, Germany. | Institute for Biomedical Engineering, Rostock University Medical Center, Friedrich-Barnewitz-Str. 4, 18119 Rostock-Warnemünde, Germany.
Article Info
Journal
Biomedizinische Technik. Biomedical engineering
Abbr.
Biomed Tech (Berl)
ISSN
1862-278X
Published
2019-05-27
页码
251-262
Language
English
Country/Region
Germany
NLM ID
1262533
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