Pulsed cavitational ultrasound for non-invasive chordal cutting guided by real-time 3D echocardiography

被引:6
|
作者
Villemain, Olivier [1 ,2 ]
Kwiecinski, Wojciech [2 ]
Bel, Alain [3 ,4 ]
Robin, Justine [2 ]
Bruneval, Patrick [5 ,6 ]
Arnal, Bastien [2 ]
Tanter, Mickael [2 ]
Pernot, Mathieu [2 ]
Messas, Emmanuel [1 ]
机构
[1] Univ Paris 05, UMR 970, Hop Europeen Georges Pompidou, Cardiovasc Dept, Paris, France
[2] PSL Res Univ, Inst Langevin, ESPCI, CNRS,Inserm U979, Paris, France
[3] Univ Paris 05, Hop Europeen Georges Pompidou, Cardiovasc Surg, Paris, France
[4] Univ Paris 05, Hop Europeen Georges Pompidou, Fdn Alain Carpentier, Lab Rech Biochirurg, Paris, France
[5] Univ Paris 05, Hop Europeen Georges Pompidou, INSERM PARCC U970, Paris, France
[6] Univ Paris 05, Hop Europeen Georges Pompidou, Dept Pathol, Paris, France
关键词
ultrasonics; mitral regurgitation; surgery; ISCHEMIC MITRAL REGURGITATION; INTENSITY-FOCUSED ULTRASOUND; CANINE MODEL; CARDIOPULMONARY BYPASS; ABERRATION CORRECTION; HISTOTRIPSY THERAPY; CARDIAC STIMULATION; MOTION CORRECTION; TISSUE; VALVE;
D O I
10.1093/ehjci/jew145
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Aims Basal chordae surgical section has been shown to be effective in reducing ischaemic mitral regurgitation (IMR). Achieving this section by non-invasive mean can considerably decrease the morbidity of this intervention on already infarcted myocardium. We investigated in vitro and in vivo the feasibility and safety of pulsed cavitational focused ultrasound (histotripsy) for non-invasive chordal cutting guided by real-time 3D echocardiography. Methods and results Experiments were performed on 12 sheep hearts, 5 in vitro on explanted sheep hearts and 7 in vivo on beating sheep hearts. In vitro, the mitral valve (MV) apparatus including basal and marginal chordae was removed and fixed on a holder in a water tank. High-intensity ultrasound pulses were emitted from the therapeutic device (1-MHz focused transducer, pulses of 8 mu s duration, peak negative pressure of 17 MPa, repetition frequency of 100 Hz), placed at a distance of 64 mm under 3D echocardiography guidance. In vivo, after sternotomy, the same therapeutic device was applied on the beating heart. We analysed MV coaptation and chordae by real-time 3D echocardiography before and after basal chordal cutting. After sacrifice, the MV apparatus were harvested for anatomical and histological post-mortem explorations to confirm the section of the chordae. In vitro, all chordaewere completely cut after a mean procedure duration of 5.5 +/- 2.5 min. The procedure duration was found to increase linearly with the chordae diameter. In vivo, the central basal chordae of the anterior leaflet were completely cut. The mean procedure duration was 20 +/- 9 min (min = 14, max = 26). The sectioned chordae was visible on echocardiography, and MV coaptation remained normal with no significant mitral regurgitation. Anatomical and histological post-mortem explorations of the hearts confirmed the section of the chordae. Conclusions Histotripsy guided by 3D echo achieved successfully to cut MV chordae in vitro and in vivo in beating heart. We hope that this technique will open the door in the near future to the non-invasive treatment of functional IMR.
引用
收藏
页码:1101 / 1107
页数:7
相关论文
共 50 条
  • [21] Real-time freehand 3D ultrasound calibration
    Hsu, Po-Wei
    Prager, Richard W.
    Gee, Andrew H.
    Treece, Graham M.
    ULTRASOUND IN MEDICINE AND BIOLOGY, 2008, 34 (02): : 239 - 251
  • [22] Real-time freehand 3D ultrasound imaging
    Chen, Zhenping
    Huang, Qinghua
    COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING-IMAGING AND VISUALIZATION, 2018, 6 (01): : 74 - 83
  • [23] Real-time tools for freehand 3D ultrasound
    Prager, R
    Gee, A
    Berman, L
    MEDICAL IMAGE COMPUTING AND COMPUTER-ASSISTED INTERVENTION - MICCAI'98, 1998, 1496 : 1016 - 1023
  • [24] REAL-TIME 3D FILTERING OF ULTRASOUND DATASETS
    Kang, Dong-Soo
    Kwon, Koojoo
    Lee, Eun-Seok
    Lee, Sang-Chul
    Shin, Byeong-Seok
    HEALTHINF 2010: PROCEEDINGS OF THE THIRD INTERNATIONAL CONFERENCE ON HEALTH INFORMATICS, 2010, : 473 - 476
  • [25] Real-time freehand 3D ultrasound calibration
    Hsu, Po-Wei
    Prager, Richard W.
    Graham, Andrew H. Gee
    Treece, Graham M.
    MEDICAL IMAGING 2007: ULTRASONIC IMAGING AND SIGNAL PROCESSING, 2007, 6513
  • [26] Non-invasive pulsed cavitational ultrasound for fetal tissue ablation: feasibility study in a fetal sheep model
    Kim, Y.
    Gelehrter, S. K.
    Fifer, C. G.
    Lu, J. C.
    Owens, G. E.
    Berman, D. R.
    Williams, J.
    Wilkinson, J. E.
    Ives, K. A.
    Xu, Z.
    ULTRASOUND IN OBSTETRICS & GYNECOLOGY, 2011, 37 (04) : 450 - 457
  • [27] Fully automated 3D boundary detection in real-time 3D echocardiography
    Takuma, S
    Angelini, ED
    Yoshiara, K
    Liu, R
    Kazanowski, M
    Dimayuga, C
    Makita, K
    Di Tullio, MR
    Holmes, JW
    Laine, AF
    Homma, S
    JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 2000, 35 (02) : 469A - 470A
  • [28] Real time 3D echocardiography
    Bauer, F
    Shiota, T
    Thomas, JD
    ARCHIVES DES MALADIES DU COEUR ET DES VAISSEAUX, 2001, 94 (07): : 690 - 695
  • [29] Real-time 3D echocardiography-guided transcatheter device closure of atrial septal defects
    McKendrick, R
    Owada, CY
    CATHETERIZATION AND CARDIOVASCULAR INTERVENTIONS, 2005, 65 (03) : 442 - 446
  • [30] Percutaneous closure of complex atrial septum defect guided by real-time 3D transesophageal echocardiography
    Dodos, F.
    Hoppe, Uta C.
    CLINICAL RESEARCH IN CARDIOLOGY, 2009, 98 (07) : 455 - 456