Literature DB >> 28389690

Energy dynamics of the intraventricular vortex after mitral valve surgery.

Kouki Nakashima1,2,3, Keiichi Itatani4, Tadashi Kitamura3, Norihiko Oka3, Tetsuya Horai3, Shohei Miyazaki2, Masaki Nie1,3, Kagami Miyaji2,3.   

Abstract

Mitral valve morphology after mitral valve surgery affects postoperative intraventricular flow patterns and long-term cardiac performance. We visualized ventricular flow by echocardiography vector flow mapping (VFM) to reveal the impact of different mitral valve procedures. Eleven cases of mechanical mitral valve replacement (nine in the anti-anatomical and two in the anatomical position), three bioprosthetic mitral valve replacements, and four mitral valve repairs were evaluated. The mean age at the procedure was 57.4 ± 17.8 year, and the echocardiography VFM in the apical long-axis view was performed 119.9 ± 126.7 months later. Flow energy loss (EL), kinetic pressure (KP), and the flow energy efficiency ratio (EL/KP) were measured. The cases with MVR in the anatomical position and with valve repair had normal vortex directionality ("Clockwise"; N = 6), whereas those with MVR in the anti-anatomical position and with a bioprosthetic mitral valve had the vortex in the opposite direction ("Counterclockwise"; N = 12). During diastole, vortex direction had no effect on EL ("Clockwise": 0.080 ± 0.025 W/m; "Counterclockwise": 0.083 ± 0.048 W/m; P = 0.31) or KP ("Clockwise": 0.117 ± 0.021 N; "Counterclockwise": 0.099 ± 0.057 N; P = 0.023). However, during systole, the EL/KP ratio was significantly higher in the "Counterclockwise" vortex than that in the "Clockwise" vortex (1.056 ± 0.463 vs. 0.617 ± 0.158; P = 0.009). MVP and MVR with a mechanical valve in the anatomical position preserve the physiological vortex, whereas MVR with a mechanical valve in the anti-anatomical position and a bioprosthetic mitral valve generate inefficient vortex flow patterns, resulting in a potential increase in excessive cardiac workload.

Keywords:  Flow energy loss; Mitral valve surgery; Vector flow mapping (VFM)

Mesh:

Year:  2017        PMID: 28389690     DOI: 10.1007/s00380-017-0967-6

Source DB:  PubMed          Journal:  Heart Vessels        ISSN: 0910-8327            Impact factor:   2.037


  16 in total

1.  Echo PIV for flow field measurements in vivo.

Authors:  H B Kim; J R Hertzberg; R Shandas
Journal:  Biomed Sci Instrum       Date:  2004

Review 2.  Emerging trends in CV flow visualization.

Authors:  Partho P Sengupta; Gianni Pedrizzetti; Philip J Kilner; Arash Kheradvar; Tino Ebbers; Giovanni Tonti; Alan G Fraser; Jagat Narula
Journal:  JACC Cardiovasc Imaging       Date:  2012-03

3.  Two-dimensional intraventricular flow mapping by digital processing conventional color-Doppler echocardiography images.

Authors:  Damien Garcia; Juan C Del Alamo; David Tanne; Raquel Yotti; Cristina Cortina; Eric Bertrand; José Carlos Antoranz; Esther Perez-David; Régis Rieu; Francisco Fernandez-Aviles; Javier Bermejo
Journal:  IEEE Trans Med Imaging       Date:  2010-06-17       Impact factor: 10.048

4.  Effects of arterial blood flow on walls of the abdominal aorta: distributions of wall shear stress and oscillatory shear index determined by phase-contrast magnetic resonance imaging.

Authors:  Koichi Sughimoto; Yoshiaki Shimamura; Chie Tezuka; Ken'ichi Tsubota; Hao Liu; Kenichiro Okumura; Yoshitada Masuda; Hideaki Haneishi
Journal:  Heart Vessels       Date:  2015-10-19       Impact factor: 2.037

5.  Effect of the flow field of mechanical bileaflet mitral prostheses on valve closing.

Authors:  Toshinosuke Akutsu; Ryota Imai; Yuuki Deguchi
Journal:  J Artif Organs       Date:  2005       Impact factor: 1.731

6.  Assessment of the vortex flow in the post-stenotic dilatation above the pulmonary valve stenosis in an infant using echocardiography vector flow mapping.

Authors:  Takashi Honda; Keiichi Itatani; Kagami Miyaji; Masahiro Ishii
Journal:  Eur Heart J       Date:  2013-10-17       Impact factor: 29.983

7.  Left ventricular flow patterns in healthy subjects and patients with prosthetic mitral valves: an in vivo study using echocardiographic particle image velocimetry.

Authors:  Réka Faludi; Mariola Szulik; Jan D'hooge; Paul Herijgers; Frank Rademakers; Gianni Pedrizzetti; Jens-Uwe Voigt
Journal:  J Thorac Cardiovasc Surg       Date:  2010-04-02       Impact factor: 5.209

8.  Characterization and quantification of vortex flow in the human left ventricle by contrast echocardiography using vector particle image velocimetry.

Authors:  Geu-Ru Hong; Gianni Pedrizzetti; Giovanni Tonti; Peng Li; Zhao Wei; Jin Kyung Kim; Abinav Baweja; Shizhen Liu; Namsik Chung; Helene Houle; Jagat Narula; Mani A Vannan
Journal:  JACC Cardiovasc Imaging       Date:  2008-11-18

9.  Comparative numerical study on left ventricular fluid dynamics after dilated cardiomyopathy.

Authors:  Jan O Mangual; Elisabeth Kraigher-Krainer; Alessio De Luca; Loira Toncelli; Amil Shah; Scott Solomon; Giorgio Galanti; Federico Domenichini; Gianni Pedrizzetti
Journal:  J Biomech       Date:  2013-05-09       Impact factor: 2.712

10.  Can echocardiographic particle image velocimetry correctly detect motion patterns as they occur in blood inside heart chambers? A validation study using moving phantoms.

Authors:  Christian Prinz; Reka Faludi; Andrew Walker; Mihaela Amzulescu; Hang Gao; Tokuhisa Uejima; Alan G Fraser; Jens-Uwe Voigt
Journal:  Cardiovasc Ultrasound       Date:  2012-06-06       Impact factor: 2.062

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  8 in total

Review 1.  New imaging tools in cardiovascular medicine: computational fluid dynamics and 4D flow MRI.

Authors:  Keiichi Itatani; Shohei Miyazaki; Tokoki Furusawa; Satoshi Numata; Sachiko Yamazaki; Kazuki Morimoto; Rina Makino; Hiroko Morichi; Teruyasu Nishino; Hitoshi Yaku
Journal:  Gen Thorac Cardiovasc Surg       Date:  2017-09-19

2.  Flow Energy Loss as a Predictive Parameter for Right Ventricular Deterioration Caused by Pulmonary Regurgitation After Tetralogy of Fallot Repair.

Authors:  Miyuki Shibata; Keiichi Itatani; Taiyu Hayashi; Takashi Honda; Atsushi Kitagawa; Kagami Miyaji; Minoru Ono
Journal:  Pediatr Cardiol       Date:  2018-02-16       Impact factor: 1.655

3.  Evaluation using a four-dimensional imaging tool before and after pulmonary valve replacement in a patient with tetralogy of Fallot: a case report.

Authors:  Masao Takigami; Keiichi Itatani; Naohiko Nakanishi; Kosuke Nakaji; Yo Kajiyama; Satoaki Matoba; Hitoshi Yaku; Masaaki Yamagishi
Journal:  J Med Case Rep       Date:  2019-02-05

4.  Energetic performance index improvement after Glenn and Damus-Kaye-Stansel procedure using vector flow mapping analysis: a case report.

Authors:  Atsushi Kainuma; Koichi Akiyama; Yoshifumi Naito; Kazuma Hayase; Hisayuki Hongu; Keiichi Itatani; Masaaki Yamagishi; Teiji Sawa
Journal:  JA Clin Rep       Date:  2020-01-21

5.  Preoperative Left Ventricular Energy Loss in the Operating Theater Reflects Subjective Symptoms in Chronic Aortic Regurgitation.

Authors:  Atsushi Kainuma; Keiichi Itatani; Koichi Akiyama; Yoshifumi Naito; Maki Ishii; Masaru Shimizu; Junya Ohara; Naotoshi Nakamura; Yasufumi Nakajima; Satoshi Numata; Hitoshi Yaku; Teiji Sawa
Journal:  Front Surg       Date:  2022-02-14

6.  Influence of a single hemodialysis on left ventricular energy loss and wall shear stress in patients with uremic cardiomyopathy assessed with vector flow mapping.

Authors:  Jian Hong; Yanjuan Zhang; Yingying Wang; Tao Zhang; Xiaoyan Wang; Di Xu
Journal:  Quant Imaging Med Surg       Date:  2022-08

7.  Analysis of diastolic left ventricular wall shear stress in normal people of different age groups.

Authors:  Liping Dong; Hairu Li; Xiangli Xu; Min Ren; Weidong Yu; Wenkun Bai; Di Sun; Jiawei Tian
Journal:  Front Cardiovasc Med       Date:  2022-09-23

8.  Assessment of left ventricular energy loss using vector flow mapping in patients with stages 1-3 chronic kidney disease.

Authors:  Xiaoxue Chen; Yueheng Wang; Wei Wang; Lijun Yuan; Zhengqin Qi; Degang Song
Journal:  BMC Cardiovasc Disord       Date:  2020-08-02       Impact factor: 2.298

  8 in total

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