Literature DB >> 25291788

Ultrasound shear wave elasticity imaging quantifies coronary perfusion pressure effect on cardiac compliance.

Maryam Vejdani-Jahromi, Matt Nagle, Gregg E Trahey, Patrick D Wolf.   

Abstract

Diastolic heart failure (DHF) is a major source of cardiac related morbidity and mortality in the world today. A major contributor to, or indicator of DHF is a change in cardiac compliance. Currently, there is no accepted clinical method to evaluate the compliance of cardiac tissue in diastolic dysfunction. Shear wave elasticity imaging (SWEI) is a novel ultrasound-based elastography technique that provides a measure of tissue stiffness. Coronary perfusion pressure affects cardiac stiffness during diastole; we sought to characterize the relationship between these two parameters using the SWEI technique. In this work, we demonstrate how changes in coronary perfusion pressure are reflected in a local SWEI measurement of stiffness during diastole. Eight Langendorff perfused isolated rabbit hearts were used in this study. Coronary perfusion pressure was changed in a randomized order (0-90 mmHg range) and SWEI measurements were recorded during diastole with each change. Coronary perfusion pressure and the SWEI measurement of stiffness had a positive linear correlation with the 95% confidence interval (CI) for the slope of 0.009-0.011 m/s/mmHg ( R(2) = 0.88 ). Furthermore, shear modulus was linearly correlated to the coronary perfusion pressure with the 95% CI of this slope of 0.035-0.042 kPa/mmHg ( R(2) = 0.83). In conclusion, diastolic SWEI measurements of stiffness can be used to characterize factors affecting cardiac compliance specifically the mechanical interaction (cross-talk) between perfusion pressure in the coronary vasculature and cardiac muscle. This relationship was found to be linear over the range of pressures tested.

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Year:  2014        PMID: 25291788      PMCID: PMC4765376          DOI: 10.1109/TMI.2014.2360835

Source DB:  PubMed          Journal:  IEEE Trans Med Imaging        ISSN: 0278-0062            Impact factor:   10.048


  32 in total

1.  Shear wave elasticity imaging: a new ultrasonic technology of medical diagnostics.

Authors:  A P Sarvazyan; O V Rudenko; S D Swanson; J B Fowlkes; S Y Emelianov
Journal:  Ultrasound Med Biol       Date:  1998-11       Impact factor: 2.998

Review 2.  Selected methods for imaging elastic properties of biological tissues.

Authors:  James F Greenleaf; Mostafa Fatemi; Michael Insana
Journal:  Annu Rev Biomed Eng       Date:  2003-04-10       Impact factor: 9.590

3.  Influence of coronary artery pressure upon myocardial elasticity.

Authors:  P F SALISBURY; C E CROSS; P A RIEBEN
Journal:  Circ Res       Date:  1960-07       Impact factor: 17.367

4.  In vivo quantitative mapping of myocardial stiffening and transmural anisotropy during the cardiac cycle.

Authors:  Mathieu Couade; Mathieu Pernot; Emmanuel Messas; Alain Bel; Maguette Ba; Albert Hagege; Mathias Fink; Mickael Tanter
Journal:  IEEE Trans Med Imaging       Date:  2010-09-16       Impact factor: 10.048

5.  In vivo assessment of myocardial stiffness with acoustic radiation force impulse imaging.

Authors:  Stephen J Hsu; Richard R Bouchard; Douglas M Dumont; Patrick D Wolf; Gregg E Trahey
Journal:  Ultrasound Med Biol       Date:  2007-08-15       Impact factor: 2.998

6.  Liver stiffness is directly influenced by central venous pressure.

Authors:  Gunda Millonig; Stefanie Friedrich; Stefanie Adolf; Hamidreza Fonouni; Mohammad Golriz; Arianeb Mehrabi; Peter Stiefel; Gudrun Pöschl; Markus W Büchler; Helmut Karl Seitz; Sebastian Mueller
Journal:  J Hepatol       Date:  2009-12-04       Impact factor: 25.083

7.  Robust estimation of time-of-flight shear wave speed using a radon sum transformation.

Authors:  Ned C Rouze; Michael H Wang; Mark L Palmeri; Kathryn R Nightingale
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2010-12       Impact factor: 2.725

8.  In vivo assessment of MR elastography-derived effective end-diastolic myocardial stiffness under different loading conditions.

Authors:  Arunark Kolipaka; Kiaran P McGee; Armando Manduca; Nandan Anavekar; Richard L Ehman; Philip A Araoz
Journal:  J Magn Reson Imaging       Date:  2011-05       Impact factor: 4.813

9.  MR elastography as a method for the assessment of myocardial stiffness: comparison with an established pressure-volume model in a left ventricular model of the heart.

Authors:  Arunark Kolipaka; Kiaran P McGee; Philip A Araoz; Kevin J Glaser; Armando Manduca; Anthony J Romano; Richard L Ehman
Journal:  Magn Reson Med       Date:  2009-07       Impact factor: 4.668

10.  How to diagnose diastolic heart failure: a consensus statement on the diagnosis of heart failure with normal left ventricular ejection fraction by the Heart Failure and Echocardiography Associations of the European Society of Cardiology.

Authors:  Walter J Paulus; Carsten Tschöpe; John E Sanderson; Cesare Rusconi; Frank A Flachskampf; Frank E Rademakers; Paolo Marino; Otto A Smiseth; Gilles De Keulenaer; Adelino F Leite-Moreira; Attila Borbély; István Edes; Martin Louis Handoko; Stephane Heymans; Natalia Pezzali; Burkert Pieske; Kenneth Dickstein; Alan G Fraser; Dirk L Brutsaert
Journal:  Eur Heart J       Date:  2007-04-11       Impact factor: 29.983

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  10 in total

1.  Non-invasive Measurement of Dynamic Myocardial Stiffness Using Acoustic Radiation Force Impulse Imaging.

Authors:  Vaibhav Kakkad; Melissa LeFevre; Peter Hollender; Joseph Kisslo; Gregg E Trahey
Journal:  Ultrasound Med Biol       Date:  2019-03-16       Impact factor: 2.998

2.  Quantifying Myocardial Contractility Changes Using Ultrasound-Based Shear Wave Elastography.

Authors:  Maryam Vejdani-Jahromi; Jenna Freedman; Matthew Nagle; Young-Joong Kim; Gregg E Trahey; Patrick D Wolf
Journal:  J Am Soc Echocardiogr       Date:  2016-11-11       Impact factor: 5.251

3.  On the Challenges Associated with Obtaining Reproducible Measurements Using SWEI in the Median Nerve.

Authors:  Anna E Knight; Samantha L Lipman; Thammathida Ketsiri; Lisa D Hobson-Webb; Kathryn R Nightingale
Journal:  Ultrasound Med Biol       Date:  2020-02-11       Impact factor: 2.998

4.  In Vivo Open- and Closed-chest Measurements of Left-Ventricular Myocardial Viscoelasticity using Lamb wave Dispersion Ultrasound Vibrometry (LDUV): A Feasibility Study.

Authors:  Ivan Z Nenadic; Matthew W Urban; Cristina Pislaru; Daniel Escobar; Luiz Vasconcelos; James F Greenleaf
Journal:  Biomed Phys Eng Express       Date:  2018-04-30

5.  Assessment of Diastolic Function Using Ultrasound Elastography.

Authors:  Maryam Vejdani-Jahromi; Jenna Freedman; Young-Joong Kim; Gregg E Trahey; Patrick D Wolf
Journal:  Ultrasound Med Biol       Date:  2018-01-10       Impact factor: 2.998

6.  Investigation of the effects of myocardial anisotropy for shear wave elastography using impulsive force and harmonic vibration.

Authors:  Matthew W Urban; Bo Qiang; Pengfei Song; Ivan Z Nenadic; Shigao Chen; James F Greenleaf
Journal:  Phys Med Biol       Date:  2015-12-16       Impact factor: 3.609

7.  A Comparison of Acoustic Radiation Force-Derived Indices of Cardiac Function in the Langendorff Perfused Rabbit Heart.

Authors:  Maryam Vejdani-Jahromi; Mathew Nagle; Yang Jiang; Gregg E Trahey; Patrick D Wolf
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2016-03-17       Impact factor: 2.725

8.  The Evolution of Tissue Stiffness at Radiofrequency Ablation Sites During Lesion Formation and in the Peri-Ablation Period.

Authors:  Stephanie A Eyerly; Maryam Vejdani-Jahromi; Douglas M Dumont; Gregg E Trahey; Patrick D Wolf
Journal:  J Cardiovasc Electrophysiol       Date:  2015-06-21

Review 9.  Soft-Tissue Material Properties and Mechanogenetics during Cardiovascular Development.

Authors:  Hummaira Banu Siddiqui; Sedat Dogru; Seyedeh Samaneh Lashkarinia; Kerem Pekkan
Journal:  J Cardiovasc Dev Dis       Date:  2022-02-21

10.  A direct comparison of natural and acoustic-radiation-force-induced cardiac mechanical waves.

Authors:  Lana B H Keijzer; Annette Caenen; Jason Voorneveld; Mihai Strachinaru; Daniel J Bowen; Jens van de Wouw; Oana Sorop; Daphne Merkus; Dirk J Duncker; Antonius F W van der Steen; Nico de Jong; Johan G Bosch; Hendrik J Vos
Journal:  Sci Rep       Date:  2020-10-28       Impact factor: 4.379

  10 in total

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