Tears in bioprosthetic heart valve leaflets without calcific degeneration

被引:0
|
作者
Haziza, F
Papouin, G
BarrattBoyes, B
Christie, G
Whitlock, R
机构
[1] CTR HOSP TERR POLYNESIE FRANCAISE, DEPT CARDIOL, PAPEETE, FRANCE
[2] GREEN LANE HOSP, DEPT CARDIOTHORAC SURG & BIOMED STAT, AUCKLAND, NEW ZEALAND
[3] SYSTEMAT SOLUT LTD, AUCKLAND, NEW ZEALAND
来源
JOURNAL OF HEART VALVE DISEASE | 1996年 / 5卷 / 01期
关键词
D O I
暂无
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Background and aim of the study: The mechanism of structural failure of bioprosthetic valves is still not clearly understood. This study was undertaken to assess pure leaflet tear as a mode of failure in porcine and pericardial bioprostheses. Methods: Of 246 bioprosthetic valves (109 porcine, 137 pericardial) implanted between 1975 and 1991, 101 had to be explanted and served as the study population. Results: The reasons for valve failure were calcific degeneration in 73, pure tear in 12, and endocarditis in 10. Six other patients had a perivalvar leak. The mean age at operation was 32 years. Freedom from degeneration at 10 years was 45 +/- 7% and from pure tear it was 92 +/- 2% The hazard functions were strikingly different, as that for degeneration showed a progressive increase while that for pure tear peaked at six years post-implant. The mean age of the patients with pure tear was 41 years and for degeneration it was 24 years (p=0.00001). The reasons for the difference in hazard function are discussed. The characteristic clinical features of pure tear allow clinical diagnosis in the majority of patients. Conclusion: Pure tear is the result of uneven tissue loading with tearing occurring at sites of maximal stress. The four possible mechanisms in pericardial valves are (a) intense stress concentration at the top of the stent post (commissure); (b) compression stress below the top of the post; (c) abrasion stress in tissue mounted outside the frame; and (d) increased bending stresses on leaflet opening. In stent-mounted porcine valves, pure tear is related to incorrect mounting or to increased bending stresses.
引用
收藏
页码:35 / 39
页数:5
相关论文
共 50 条
  • [21] Early bioprosthetic valve failure caused by preserved native mitral valve leaflets
    Takeda, Koji
    Lee, Richard
    INTERACTIVE CARDIOVASCULAR AND THORACIC SURGERY, 2012, 14 (02) : 226 - 227
  • [22] BIOMECHANICAL AND STRUCTURAL-PROPERTIES OF THE EXPLANTED BIOPROSTHETIC VALVE LEAFLETS
    PURINYA, B
    KASYANOV, V
    VOLKOLAKOV, J
    LATSIS, R
    TETERE, G
    JOURNAL OF BIOMECHANICS, 1994, 27 (01) : 1 - 11
  • [23] Bioprosthetic Heart Valve Degeneration and Dysfunction: Focus on Mechanisms and Multidisciplinary Imaging Considerations
    Sellers, Stephanie L.
    Blanke, Philipp
    Leipsic, Jonathon A.
    RADIOLOGY-CARDIOTHORACIC IMAGING, 2019, 1 (03):
  • [24] Advanced Glycation End Products and the Pathophysiology of Bioprosthetic Heart Valve Structural Degeneration
    Frasca, Antonio
    Keeney, Samuel
    Lee, Suengwon
    Bavaria, Joseph E.
    Gorman, Robert C.
    Levy, Robert J.
    Ferrari, Giovanni
    CIRCULATION, 2018, 138
  • [25] Generation of Simulated Calcific Lesions in Valve Leaflets for Flow Studies
    Seaman, Clara
    McNally, Andrew
    Biddle, Stephen
    Jankowski, Lauren
    Sucosky, Philippe
    JOURNAL OF HEART VALVE DISEASE, 2015, 24 (01): : 115 - 125
  • [26] Impact of Clinically Relevant Elliptical Deformations on the Damage Patterns of Sagging and Stretched Leaflets in a Bioprosthetic Heart Valve
    Sritharan, Deepa
    Fathi, Parinaz
    Weaver, Jason D.
    Retta, Stephen M.
    Wu, Changfu
    Duraiswamy, Nandini
    CARDIOVASCULAR ENGINEERING AND TECHNOLOGY, 2018, 9 (03) : 351 - 364
  • [27] Impact of Clinically Relevant Elliptical Deformations on the Damage Patterns of Sagging and Stretched Leaflets in a Bioprosthetic Heart Valve
    Deepa Sritharan
    Parinaz Fathi
    Jason D. Weaver
    Stephen M. Retta
    Changfu Wu
    Nandini Duraiswamy
    Cardiovascular Engineering and Technology, 2018, 9 : 351 - 364
  • [28] Outcomes of Pregnancy in Women With Bioprosthetic Heart Valves With or Without Valve Dysfunction
    Wichert-Schmitt, Barbara
    Grewal, Jasmine
    Malinowski, A. Kinga
    Pfaller, Birgit
    Losenno, Katie L.
    Kiess, Marla C.
    Colman, Jack M.
    Tsang, Wendy
    Mason, Jennifer
    Siu, Samuel C.
    Silversides, Candice K.
    JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 2022, 80 (21) : 2014 - 2024
  • [29] Immobile Leaflets at Time of Bioprosthetic Valve Implantation: A Novel Risk Factor for Early Bioprosthetic Failure
    Naser, Jwan A.
    Crestanello, Juan A.
    Nkomo, Vuyisile T.
    Luis, Sushil A.
    Thaden, Jeremy J.
    Geske, Jeffrey B.
    Anderson, Jason H.
    Sinak, Lawrence J.
    Michelena, Hector, I
    Pislaru, Sorin, V
    Padang, Ratnasari
    HEART LUNG AND CIRCULATION, 2022, 31 (08): : 1166 - 1175
  • [30] Detection and Prediction of Bioprosthetic Aortic Valve Degeneration
    Cartlidge, Timothy R. G.
    Doris, Mhairi K.
    Sellers, Stephanie L.
    Pawade, Tania A.
    White, Audrey C.
    Pessotto, Renzo
    Kwiecinski, Jacek
    Fletcher, Alison
    Alcaide, Carlos
    Lucatelli, Christophe
    Densem, Cameron
    Rudd, James H. F.
    van Beek, Edwin J. R.
    Tavares, Adriana
    Virmani, Renu
    Berman, Daniel
    Leipsic, Jonathon A.
    Newby, David E.
    Dweck, Marc R.
    JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 2019, 73 (10) : 1107 - 1119