Transcatheter Mitral Valve Replacement: State of the Art

被引:0
作者
Dylan Goode
Ruby Dhaliwal
Hadi Mohammadi
机构
[1] University of British Columbia Okanagan,The Heart Valve Performance Laboratory, School of Engineering, Faculty of Applied Science
[2] University of British Columbia,Department of Surgery, Faculty of Medicine
来源
Cardiovascular Engineering and Technology | 2020年 / 11卷
关键词
Mitral valve disease; Transcatheter; Catheter-based technology; Mitral regurgitation;
D O I
暂无
中图分类号
学科分类号
摘要
The emergence of transcatheter aortic valve replacement (TAVR) has segued the development of transcatheter mitral valve (MV) repair devices. Transcatheter mitral valve repair has become a well-established alternative for patients with severe primary and secondary mitral regurgitation (MR) and with a perceived surgical risk. Transcatheter mitral valve replacement (TMVR) could become a more complete form of reduction of severe MR compared to MV repair devices, albeit with significant engineering challenges and all the risks associated with a bioprosthetic heart valve. The development of TMVR devices has become prominent while companies race to become the first commercially available system. Careful consideration of design challenges should be conducted by the developmental companies to ensure successful devices. Preclinical and clinical trials have shown promising results, showcasing the feasibility of total valve replacement utilizing transcatheter procedure techniques. Further development, testing, and trials need to be conducted before TMVR can become a sensible MR treatment. This review describes design challenges and considerations along with the state of the art, involving designs in both clinical and preclinical stages.
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页码:229 / 253
页数:24
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共 196 条
[31]  
Hussain F(2005)A novel formulation for blood trauma prediction by a modified power-law mathematical model Biomech. Model. Mechanobiol. 4 249-2069
[32]  
Christian Gasser T(2016)Transcatheter mitral valve replacement in native mitral valve disease with severe mitral annular calcification: results From the First Multicenter Global Registry JACC Cardiovasc. Interv. 9 1361-614
[33]  
Blanke P(2016)Transcatheter aortic valve thrombosis: incidence, predisposing factors, and clinical implications J. Am. Coll. Cardiol. 68 2059-338
[34]  
Blanke P(2011)A numerical analysis of the blood flow around the Bileaflet Mechanical Heart Valves with different rotational implantation angles J. Hydrodyn. 23 607-393
[35]  
Bluestein D(2018)Transcatheter mitral valve replacement: functional requirements for device design, bench-top, and pre-clinical evaluation Cardiovasc. Eng. Technol. 9 301-1284
[36]  
Rambod E(2016)Recognition of the distinction between primary and secondary mitral regurgitation is also important QJM Int. J. Med. 109 699-2017
[37]  
Gharib M(2017)Mitral valve chordae tendineae: topological and geometrical characterization Ann. Biomed. Eng. 45 378-2534
[38]  
Bothe W(2019)‘Rescue’ LAMPOON to treat transcatheter mitral valve replacement-associated left ventricular outflow tract obstruction JACC Cardiovasc. Interv. 12 1283-1534
[39]  
Miller DC(2018)LAMPOON to facilitate tendyne transcatheter mitral valve replacement JACC Cardiovasc. Interv. 11 2014-e108
[40]  
Doenst T(2019)Anterior leaflet laceration to prevent ventricular outflow tract obstruction during transcatheter mitral valve replacement J. Am. Coll. Cardiol. 73 2521-767