Flow and Thrombosis at Orifices Simulating Mechanical Heart Valve Leakage Regions

Author:

Fallon Anna M.1,Shah Nisha1,Marzec Ulla M.2,Warnock James N.3,Yoganathan Ajit P.4,Hanson Stephen R.2

Affiliation:

1. School of Chemical Engineering, Georgia Institute of Technology, Atlanta, GA 30332

2. Department of Biomedical Engineering, Oregon Health and Science University, Portland, OR 97006

3. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30332

4. Wallace H. Coulter School of Biomedical Engineering, Georgia Institute of Technology and Emory University, Atlanta, GA 30332

Abstract

Background: While it is established that mechanical heart valves (MHVs) damage blood elements during leakage and forward flow, the role in thrombus formation of platelet activation by high shear flow geometries remains unclear. In this study, continuously recalcified blood was used to measure the effects of blood flow through orifices, which model MHVs, on the generation of procoagulant thrombin and the resulting formation of thrombus. The contribution of platelets to this process was also assessed. Method of Approach: 200, 400, 800, and 1200μm orifices simulated the hinge region of bileaflet MHVs, and 200, 400, and 800μm wide slits modeled the centerline where the two leaflets meet when the MHV is closed. To assess activation of coagulation during blood recirculation, samples were withdrawn over 0-47min and the plasmas assayed for thrombin-antithrombin-III (TAT) levels. Model geometries were also inspected visually. Results: The 200 and 400μm round orifices induced significant TAT generation and thrombosis over the study interval. In contrast, thrombin generation by the slit orifices, and by the 800 and 1200μm round orifices, was negligible. In additional experiments with nonrecalcified or platelet-depleted blood, TAT levels were markedly reduced versus the studies with fully anticoagulated whole blood (p<0.05). Conclusions: Using the present method, a significant increase in TAT concentration was found for 200 and 400μm orifices, but not 800 and 1200μm orifices, indicating that these flow geometries exhibit a critical threshold for activation of coagulation and resulting formation of thrombus. Markedly lower TAT levels were produced in studies with platelet-depleted blood, documenting a key role for platelets in the thrombotic process.

Publisher

ASME International

Subject

Physiology (medical),Biomedical Engineering

Reference25 articles.

1. An In Vitro Study of the Hinge and Near-Field Forward Flow Dynamics of the St. Jude Medical Regent Bileaflet Mechanical Heart Valve;Ellis;Ann. Biomed. Eng.

2. Velocity Measurements and Flow Patterns Within the Hinge Region of a Medtronic Parallel Bileaflet Mechanical Valve With Clear Housing;Ellis;J. Heart Valve Dis.

3. Leakage Flow at Mechanical Heart Valve Prostheses: Improved Washout or Increased Blood Damage;Steegers;J. Heart Valve Dis.

4. Travis, B. R. , 2001, “The Effects of Bileaflet Prosthesis Pivot Geometry on Turbulence and Blood Damage Potential,” Ph.D. thesis, Georgia Institute of Technology.

5. A Microstructural Flow Analysis Within a Bileaflet Mechanical Heart Valve Hinge;Gross;J. Heart Valve Dis.

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