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Showing content from https://link.springer.com/article/10.1007/s10439-020-02664-0 below:

In-Vitro Assessment of the Effects of Transcatheter Aortic Valve Leaflet Design on Neo-Sinus Geometry and Flow

References
  1. Blanke P., J. A. Leipsic, J. J. Popma, S. J. Yakubov, G. M. Deeb, H. Gada, M. Mumtaz, B. Ramlawi, N. S. Kleiman, P. Sorajja, J. Askew, C. U. Meduri, J. Kauten, S. Melnitchouk, I. Inglessis, J. Huang, M. Boulware, M. J. Reardon and L. T. I. S. I. Evolut low risk. Bioprosthetic Aortic Valve Leaflet thickening in the evolut low risk sub-study. J. Am. Coll. Cardiol. 75: 2430-2442, 2020.

  2. Caballero, A., F. Sulejmani, C. Martin, T. Pham, and W. Sun. Evaluation of transcatheter heart valve biomaterials: Biomechanical characterization of bovine and porcine pericardium. J. Mech. Behav. Biomed. Mater. 75:486–494, 2017.

    Article  CAS  Google Scholar 

  3. Carabello, B. A. Transcatheter aortic-valve implantation for aortic stenosis in patients who cannot undergo surgery. Curr. Cardiol. Rep. 13:173–174, 2011.

    Article  Google Scholar 

  4. Dauerman, H. L., G. M. Deeb, D. P. O’Hair, R. Waksman, S. J. Yakubov, N. S. Kleiman, S. J. Chetcuti, J. B. Hermiller, Jr, T. Bajwa, K. Khabbaz, E. de Marchena, T. Salerno, J. L. Dries-Devlin, S. Li, J. J. Popma, and M. J. Reardon. Durability and clinical outcomes of transcatheter aortic valve replacement for failed surgical bioprostheses. Circ. Cardiovasc. Interv. 12:e008155, 2019.

    Article  Google Scholar 

  5. De Marchena, E., J. Mesa, S. Pomenti, Y. K. C. Marin, X. Marincic, K. Yahagi, E. Ladich, R. Kutz, Y. Aga, M. Ragosta, A. Chawla, M. E. Ring, and R. Virmani. Thrombus formation following transcatheter aortic valve replacement. JACC Cardiovasc. Interv. 8:728–739, 2015.

    Article  Google Scholar 

  6. Felberbaum M. FDA expands indication for several transcatheter heart valves to patients at low risk for death or major complications associated with open heart surgery. FDA.gov 2019.

  7. Hatoum, H., J. Dollery, S. M. Lilly, J. Crestanello, and L. P. Dasi. Impact of patient-specific morphologies on sinus flow stasis in transcatheter aortic valve replacement: an in vitro study. J. Thorac. Cardiovasc. Surg. 157:540–549, 2019.

    Article  Google Scholar 

  8. Hatoum, H., J. Dollery, S. M. Lilly, J. A. Crestanello, and L. P. Dasi. Implantation depth and rotational orientation effect on valve-in-valve hemodynamics and sinus flow. Ann. Thorac. Surg. 106:70–78, 2018.

    Article  Google Scholar 

  9. Kanjanauthai, S., L. Pirelli, N. Nalluri, and C. A. Kliger. Subclinical leaflet thrombosis following transcatheter aortic valve replacement. J. Interv. Cardiol. 31:640–647, 2018.

    Article  Google Scholar 

  10. Kapadia, S., E. M. Tuzcu, and L. G. Svensson. Anatomy and flow characteristics of neosinus: important consideration for thrombosis of transcatheter aortic valves. Circulation 136:1610–1612, 2017.

    Article  Google Scholar 

  11. Knight, J., V. Kurtcuoglu, K. Muffly, W. Marshall, Jr, P. Stolzmann, L. Desbiolles, B. Seifert, D. Poulikakos, and H. Alkadhi. Ex vivo and in vivo coronary ostial locations in humans. Surg. Radiol. Anat. 31:597–604, 2009.

    Article  Google Scholar 

  12. Leon, M. B., C. R. Smith, M. Mack, D. C. Miller, J. W. Moses, L. G. Svensson, E. M. Tuzcu, J. G. Webb, G. P. Fontana, R. R. Makkar, D. L. Brown, P. C. Block, R. A. Guyton, A. D. Pichard, J. E. Bavaria, H. C. Herrmann, P. S. Douglas, J. L. Petersen, J. J. Akin, W. N. Anderson, D. Wang, S. Pocock, and P. T. Investigators. Transcatheter aortic-valve implantation for aortic stenosis in patients who cannot undergo surgery. N. Engl. J. Med. 363:1597–1607, 2010.

    Article  CAS  Google Scholar 

  13. Madukauwa-David, I. D., V. Sadri, N. Kamioka, P. A. Midha, V. Raghav, J. N. Oshinski, R. Sharma, V. Babaliaros, and A. P. Yoganathan. Transcatheter aortic valve deployment influences neo-sinus thrombosis risk: an in vitro flow study. Catheter Cardiovasc Interv 95:1009–1016, 2020.

    Article  Google Scholar 

  14. Madukauwa-David, I. D., V. Sadri, P. A. Midha, V. Babaliaros, C. Aidun, and A. P. Yoganathan. An evaluation of the influence of coronary flow on transcatheter heart valve neo-sinus flow stasis. Ann. Biomed. Eng. 48:169–180, 2020.

    Article  Google Scholar 

  15. Makkar, R. R., G. Fontana, H. Jilaihawi, T. Chakravarty, K. F. Kofoed, O. De Backer, F. M. Asch, C. E. Ruiz, N. T. Olsen, A. Trento, J. Friedman, D. Berman, W. Cheng, M. Kashif, V. Jelnin, C. A. Kliger, H. Guo, A. D. Pichard, N. J. Weissman, S. Kapadia, E. Manasse, D. L. Bhatt, M. B. Leon, and L. Sondergaard. Possible subclinical leaflet thrombosis in bioprosthetic aortic valves. N. Engl. J. Med. 373:2015–2024, 2015.

    Article  CAS  Google Scholar 

  16. Midha, P. A., V. Raghav, J. F. Condado, S. Arjunon, D. E. Uceda, S. Lerakis, V. H. Thourani, V. Babaliaros, and A. P. Yoganathan. How can we help a patient with a small failing bioprosthesis?: An in vitro case study. JACC Cardiovasc. Interv. 8:2026–2033, 2015.

    Article  Google Scholar 

  17. Midha, P. A., V. Raghav, J. F. Condado, I. U. Okafor, S. Lerakis, V. H. Thourani, V. Babaliaros, and A. P. Yoganathan. Valve type, size, and deployment location affect hemodynamics in an in vitro valve-in-valve model. JACC Cardiovasc. Interv. 9:1618–1628, 2016.

    Article  Google Scholar 

  18. Midha, P. A., V. Raghav, I. Okafor, and A. P. Yoganathan. The effect of valve-in-valve implantation height on sinus flow. Ann. Biomed. Eng. 45:405–412, 2017.

    Article  Google Scholar 

  19. Midha, P. A., V. Raghav, R. Sharma, J. F. Condado, I. U. Okafor, T. Rami, G. Kumar, V. H. Thourani, H. Jilaihawi, V. Babaliaros, R. R. Makkar, and A. P. Yoganathan. The fluid mechanics of transcatheter heart valve leaflet thrombosis in the neosinus. Circulation 136:1598–1609, 2017.

    Article  Google Scholar 

  20. Pache, G., S. Schoechlin, P. Blanke, S. Dorfs, N. Jander, C. D. Arepalli, M. Gick, H. J. Buettner, J. Leipsic, M. Langer, F. J. Neumann, and P. Ruile. Early hypo-attenuated leaflet thickening in balloon-expandable transcatheter aortic heart valves. Eur. Heart J. 37:2263–2271, 2016.

    Article  Google Scholar 

  21. Raghav, V., C. Clifford, P. Midha, I. Okafor, B. Thurow, and A. Yoganathan. Three-dimensional extent of flow stagnation in transcatheter heart valves. J. R. Soc. Interface 16:20190063, 2019.

    Article  Google Scholar 

  22. Raghav, V., S. Sastry, and N. Saikrishnan. Experimental assessment of flow fields associated with heart valve prostheses using particle image velocimetry (PIV): recommendations for best practices. Cardiovasc. Eng. Technol. 9:273–287, 2018.

    Article  Google Scholar 

  23. Rashid, H. N., R. P. Gooley, N. Nerlekar, A. R. Ihdayhid, L. M. McCormick, A. Nasis, J. D. Cameron, and A. J. Brown. Bioprosthetic aortic valve leaflet thrombosis detected by multidetector computed tomography is associated with adverse cerebrovascular events: a meta-analysis of observational studies. Eurointervention 13:e1748–e1755, 2018.

    Article  Google Scholar 

  24. Rashid, H. N., A. Nasis, R. P. Gooley, J. D. Cameron, and A. J. Brown. The prevalence of computed tomography-defined leaflet thrombosis in intra- versus supra-annular transcatheter aortic valve prostheses. Catheter. Cardiovasc. Interv. 92:1414–1416, 2018.

    Article  Google Scholar 

  25. Reul, H., A. Vahlbruch, M. Giersiepen, T. Schmitz-Rode, V. Hirtz, and S. Effert. The geometry of the aortic root in health, at valve disease and after valve replacement. J. Biomech. 23:181–191, 1990.

    Article  CAS  Google Scholar 

  26. Singh-Gryzbon S N. B., Sadri V, et al. Influence of patient-Specific characteristics on transcatheter heart valve neo-sinus flow: an in silico study. Ann. Biomed. Eng. 2020.

  27. Trusty, P. M., V. Sadri, I. D. Madukauwa-David, E. Funnell, N. Kamioka, R. Sharma, R. Makkar, V. Babaliaros, and A. P. Yoganathan. Neosinus flow stasis correlates with thrombus volume post-TAVR: a patient-specific in vitro study. JACC Cardiovasc. Interv. 12:1288–1290, 2019.

    Article  Google Scholar 

  28. Vahidkhah, K., M. Abbasi, M. Barakat, P. N. Azadani, A. Tandar, D. Dvir, and A. N. Azadani. Effect of reduced cardiac output on blood stasis on transcatheter aortic valve leaflets: implications for valve thrombosis. Eurointervention 13:811–819, 2017.

    Article  Google Scholar 

  29. Vahidkhah, K., M. Barakat, M. Abbasi, S. Javani, P. N. Azadani, A. Tandar, D. Dvir, and A. N. Azadani. Valve thrombosis following transcatheter aortic valve replacement: significance of blood stasis on the leaflets. Eur. J. Cardiothorac. Surg. 51:927–935, 2017.

    PubMed  Google Scholar 

  30. Vollema, E. M., W. K. F. Kong, S. Katsanos, V. Kamperidis, P. J. van Rosendael, F. van der Kley, A. de Weger, N. Ajmone Marsan, V. Delgado, and J. J. Bax. Transcatheter aortic valve thrombosis: the relation between hypo-attenuated leaflet thickening, abnormal valve haemodynamics, and stroke. Eur. Heart J. 38:1207–1217, 2017.

    Article  Google Scholar 

  31. Yoganathan, A. P., Z. He, and S. Casey Jones. Fluid mechanics of heart valves. Annu. Rev. Biomed. Eng. 6:331–362, 2004.

    Article  CAS  Google Scholar 

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