Literature DB >> 26497965

Determinants of kinetic energy of blood flow in the four-chambered heart in athletes and sedentary controls.

K Steding-Ehrenborg1, P M Arvidsson2, J Töger2, M Rydberg2, E Heiberg2, M Carlsson2, H Arheden2.   

Abstract

The kinetic energy (KE) of intracardiac blood may play an important role in cardiac function. The aims of the present study were to 1) quantify and investigate the determinants of KE, 2) compare the KE expenditure of intracardiac blood between athletes and control subjects, and 3) quantify the amount of KE inside and outside the diastolic vortex. Fourteen athletes and fourteen volunteers underwent cardiac MRI, including four-dimensional phase-contrast sequences. KE was quantified in four chambers, and energy expenditure was calculated by determining the mean KE/cardiac index. Left ventricular (LV) mass was an independent predictor of diastolic LVKE (R(2) = 0.66, P < 0.001), whereas right ventricular (RV) end-diastolic volume was important for diastolic RVKE (R(2) = 0.76, P < 0.001). The mean KE/cardiac index did not differ between groups (control subjects: 0.53 ± 0.14 mJ·l(-1)·min·m(2) and athletes: 0.56 ± 0.21 mJ·l(-1)·min·m(2), P = 0.98). Mean LV diastolic vortex KE made up 70 ± 1% and 73 ± 2% of total LV diastolic KE in athletes and control subjects (P = 0.18). In conclusion, the characteristics of the LV as a pressure pump and the RV as a volume pump are demonstrated as an association between LVKE and LV mass and between RVKE and end-diastolic volume. This also suggests different filling mechanisms where the LV is dependent on diastolic suction, whereas the RV fills with a basal movement of the atrioventricular plane over "stationary" blood. Both groups had similar energy expenditure for intracardiac blood flow, indicating similar pumping efficiency, likely explained by the lower heart rate that cancels the higher KE per heart beat in athletes. The majority of LVKE is found within the LV diastolic vortex, in contrast to earlier findings.
Copyright © 2016 the American Physiological Society.

Entities:  

Keywords:  atrium; diastolic function; ventricle; vortex formation

Mesh:

Year:  2015        PMID: 26497965     DOI: 10.1152/ajpheart.00544.2015

Source DB:  PubMed          Journal:  Am J Physiol Heart Circ Physiol        ISSN: 0363-6135            Impact factor:   4.733


  19 in total

1.  Noninvasive Evaluation of Intraventricular Flow Dynamics by the HyperDoppler Technique: First Application to Normal Subjects, Athletes, and Patients with Heart Failure.

Authors:  Andrea Fiorencis; Marco Pepe; Vittorio Smarrazzo; Marika Martini; Salvatore Severino; Valeria Pergola; Marco Evangelista; Pierluigi Incarnato; Marco Previtero; Marco Maglione; Sabino Iliceto; Gianni Pedrizzetti; Donato Mele
Journal:  J Clin Med       Date:  2022-04-15       Impact factor: 4.241

2.  Left ventricular fluid kinetic energy time curves in heart failure from cardiovascular magnetic resonance 4D flow data.

Authors:  Mikael Kanski; Per M Arvidsson; Johannes Töger; Rasmus Borgquist; Einar Heiberg; Marcus Carlsson; Håkan Arheden
Journal:  J Cardiovasc Magn Reson       Date:  2015-12-20       Impact factor: 5.364

Review 3.  Left Ventricular Speckle Tracking-Derived Cardiac Strain and Cardiac Twist Mechanics in Athletes: A Systematic Review and Meta-Analysis of Controlled Studies.

Authors:  Alexander Beaumont; Fergal Grace; Joanna Richards; John Hough; David Oxborough; Nicholas Sculthorpe
Journal:  Sports Med       Date:  2017-06       Impact factor: 11.136

4.  Decreased Diastolic Ventricular Kinetic Energy in Young Patients with Fontan Circulation Demonstrated by Four-Dimensional Cardiac Magnetic Resonance Imaging.

Authors:  Pia Sjöberg; Einar Heiberg; Pär Wingren; Jens Ramgren Johansson; Torsten Malm; Håkan Arheden; Petru Liuba; Marcus Carlsson
Journal:  Pediatr Cardiol       Date:  2017-02-10       Impact factor: 1.655

5.  Hemodynamic forces in the left and right ventricles of the human heart using 4D flow magnetic resonance imaging: Phantom validation, reproducibility, sensitivity to respiratory gating and free analysis software.

Authors:  Johannes Töger; Per M Arvidsson; Jelena Bock; Mikael Kanski; Gianni Pedrizzetti; Marcus Carlsson; Håkan Arheden; Einar Heiberg
Journal:  PLoS One       Date:  2018-04-05       Impact factor: 3.240

6.  Creating hemodynamic atlases of cardiac 4D flow MRI.

Authors:  Merih Cibis; Mariana Bustamante; Jonatan Eriksson; Carl-Johan Carlhäll; Tino Ebbers
Journal:  J Magn Reson Imaging       Date:  2017-03-13       Impact factor: 4.813

Review 7.  Left Ventricular Blood Flow Kinetic Energy Assessment by 4D Flow Cardiovascular Magnetic Resonance: A Systematic Review of the Clinical Relevance.

Authors:  Harjinder Kaur; Hosamadin Assadi; Samer Alabed; Donnie Cameron; Vassilios S Vassiliou; Jos J M Westenberg; Rob van der Geest; Liang Zhong; Amardeep Dastidar; Andrew J Swift; Pankaj Garg
Journal:  J Cardiovasc Dev Dis       Date:  2020-09-10

8.  Comparative Analysis of Right Ventricle Fluid Dynamics.

Authors:  Dario Collia; Luigino Zovatto; Giovanni Tonti; Gianni Pedrizzetti
Journal:  Front Bioeng Biotechnol       Date:  2021-07-06

9.  Investigation of Atrial Vortices Using a Novel Right Heart Model and Possible Implications for Atrial Thrombus Formation.

Authors:  Utku Gülan; Ardan Saguner; Deniz Akdis; Alexander Gotschy; Robert Manka; Corinna Brunckhorst; Markus Holzner; Firat Duru
Journal:  Sci Rep       Date:  2017-12-01       Impact factor: 4.379

Review 10.  Clinical applications of intra-cardiac four-dimensional flow cardiovascular magnetic resonance: A systematic review.

Authors:  Saul Crandon; Mohammed S M Elbaz; Jos J M Westenberg; Rob J van der Geest; Sven Plein; Pankaj Garg
Journal:  Int J Cardiol       Date:  2017-09-28       Impact factor: 4.164

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.