How do annuloplasty rings affect mitral leaflet dynamic motion?

被引:25
作者
Bothe, Wolfgang
Kvitting, John-Peder Escobar
Swanson, Julia C.
Goektepe, Serdar [2 ]
Vo, Kathy N.
Ingels, Neil B. [3 ]
Miller, D. Craig [1 ]
机构
[1] Stanford Univ, Sch Med, Dept Cardiothorac Surg, Falk Cardiovasc Res Ctr, Stanford, CA 94305 USA
[2] Stanford Univ, Dept Mech Engn, Stanford, CA 94305 USA
[3] Palo Alto Med Fdn, Res Inst, Lab Cardiovasc Physiol & Biophys, Palo Alto, CA 94301 USA
关键词
Mitral valve; Annuloplasty rings; Leaflet dynamics; SYSTOLIC ANTERIOR MOTION; VALVE; CARDIOMYOPATHY; CONTRACTION; MECHANISM; INSIGHTS; GEOMETRY; IMPACT; SHAPE;
D O I
10.1016/j.ejcts.2010.02.011
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Objectives: To define the effects of annuloplasty rings (ARs) on the dynamic motion of anterior mitral leaflet (AML) and posterior mitral leaflet (PML). Methods: Fifty-eight adult, Dorsett-hybrid, male sheep (49 5 kg) had radiopaque markers inserted: eight around the mitral annulus, four along the central meridian (from edge to annulus) of the AML (#A(1)-#A(4)) and one on the PML edge (#P-1). True-sized Edwards Cosgrove (COS, n = 12), St Jude RSAR (St. Jude Medical, St. Paul, MN, USA) (n = 12), Carpentier-Edwards Physio (PHYSIO, n = 12), Edwards IMR ETlogix (ETL, n = 10) or Edwards GeoForm (GEO, n = 12) ARs were implanted in a releasable fashion. Under acute open-chest conditions, 4D marker coordinates were obtained using biplane videofluoroscopy with the respective AR inserted (COS, RSAR, PHYSIO, ETL and GEO) and after release (COS-Control, RSAR-Control, PHYSIO-Control, ETL-Control and GEO-Control). AML and PML excursions were calculated as the difference between minimum and maximum angles between the central mitral annular septal-lateral chord and the AML edge markers (alpha(1exc)-alpha(4exc)) and PML edge marker (beta(1exc)) during the cardiac cycle. Results: Relative to Control, (1) RSAR, PHYSIO, ETL and GEO increased excursion of the AML annular (alpha(4exc): 13 +/- 6 vs 16 +/- 70 degrees(star), 16 +/- 7 degrees vs 23 +/- 10 degrees(star), 12 +/- 4 degrees vs 18 +/- 9 degrees(star), 15 +/- 10 degrees(star) vs 20 +/- 9 degrees(star), respectively) and belly region (alpha(2exc): 41 +/- 10 degrees(star) vs 45 +/- 10 degrees(star), 42 +/- 8 degrees vs 45 +/- 6, n.s., 33 +/- 13 degrees vs 42 +/- 14 degrees(star), 39 +/- 6 degrees(star) vs 44 +/- 60 degrees(star), respectively, alpha(3exc): 24 +/- 9 degrees vs 29 +/- 11 degrees(star), 28 +/- 10 degrees vs 33 +/- 10 degrees(star), 16 +/- 9 degrees vs 21 +/- 12 degrees(star), 25 +/- 7 degrees vs 29 +/- 9 degrees(star), respectively), but not of the AML edge (alpha(1exc): 42 +/- 8 degrees(star) vs 44 +/- 8 degrees, 43 +/- 8 degrees vs 41 +/- 6 degrees, 42 +/- 11 vs 46 +/- 10 degrees, 39 +/- 9 degrees vs 38 +/- 8 degrees, respectively, all n.s.). COS did not affect AML excursion (ale c: 40 +/- 8 degrees vs 37 +/- 8 degrees, alpha(2exc): 43 +/- 9 degrees vs 41 +/- 9 degrees, alpha(3exc): 27 +/- 11 degrees vs 27 +/- 10 degrees, alpha(4exc): 18 +/- 8 degrees vs 17 +/- 7 degrees, all n.s.). (2) PML excursion (file,x) was reduced with GEO (53 5 vs 43 60*), but unchanged with COS, RSAR, PHYSIO or ETL (53 13 vs 52 150, 50 13 vs 49 + 10, 55 + 5 vs 55 7, 52 8 vs 58 6, respectively, all n.s); star = p < 0.05. Conclusions: RSAR, PHYSIO, ETL and GEO rings, but not COS, increase AML excursion of the AML annular and belly region, suggesting higher anterior mitral leaflet bending stresses with rigid rings, which potentially could be deleterious with respect to repair durability. The decreased PML excursion observed with GEO could impair left ventricular filling. Clinical studies are needed to validate these findings in patients. (C) 2010 European Association for Cardio-Thoracic Surgery. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:340 / 349
页数:10
相关论文
共 25 条
  • [1] BOTHE W, 2010, J THORAC CARDIOVASC
  • [2] Effects of different annuloplasty rings on anterior mitral leaflet dimensions
    Bothe, Wolfgang
    Kvitting, John-Peder Escobar
    Swanson, Julia C.
    Hartnett, Sigurd
    Ingels, Neil B., Jr.
    Miller, D. Craig
    [J]. JOURNAL OF THORACIC AND CARDIOVASCULAR SURGERY, 2010, 139 (05) : 1114 - 1122
  • [3] Releasable annuloplasty ring insertion - a novel experimental implantation model
    Bothe, Wolfgang
    Chang, Paul A.
    Swanson, Julia C.
    Itoh, Akinobu
    Arata, Koji
    Ingels, Neil B.
    Miller, David Craig
    [J]. EUROPEAN JOURNAL OF CARDIO-THORACIC SURGERY, 2009, 36 (05) : 830 - 832
  • [4] Presystolic mitral annular septal-lateral shortening is independent from left atrial and left ventricular contraction during acute volume depletion
    Bothe, Wolfgang
    Nguyen, Tom C.
    Roberts, Margaret E.
    Timek, Tomasz A.
    Itoh, Akinobu
    Ingels, Neil B., Jr.
    Miller, David Craig
    [J]. EUROPEAN JOURNAL OF CARDIO-THORACIC SURGERY, 2009, 36 (02) : 236 - 243
  • [5] Impact of Prosthetic Mitral Rings on Aortomitral Apparatus Function: A Cardiac Magnetic Resonance Imaging Study
    Caimmi, Philippe Primo
    Diterlizzi, Marco
    Grossini, Elena
    Kapetanakis, Emmanouil Ioannis
    Gavinelli, Matteo
    Carriero, Alessandro
    Vacca, Giovanni
    [J]. ANNALS OF THORACIC SURGERY, 2009, 88 (03) : 740 - 745
  • [6] Mitral regurgitation
    Enriquez-Sarano, Maurice
    Akins, Cary W.
    Vahanian, Alec
    [J]. LANCET, 2009, 373 (9672) : 1382 - 1394
  • [7] Glasson JR, 1996, CIRCULATION, V94, P152
  • [8] Mitral annular size and shape in sheep with annuloplasty rings
    Glasson, JR
    Green, GR
    Nistal, JF
    Dagum, P
    Komeda, M
    Daughters, GT
    Bolger, AF
    Foppiano, LE
    Ingels, NB
    Miller, DC
    [J]. JOURNAL OF THORACIC AND CARDIOVASCULAR SURGERY, 1999, 117 (02) : 302 - 309
  • [9] Restricted posterior leaflet motion after mitral ring annuloplasty
    Green, GR
    Dagum, P
    Glasson, JR
    Nistal, JF
    Daughters, GT
    Ingels, NB
    Miller, DC
    [J]. ANNALS OF THORACIC SURGERY, 1999, 68 (06) : 2100 - 2106
  • [10] He SQ, 1997, J HEART VALVE DIS, V6, P149