Home LiteratureArticle Details
PMID: 38390109 Published · epublish English Journal Article

A 3D scaling law for supravalvular aortic stenosis suited for stethoscopic auscultations.

Heliyon ·Vol. 10 ·No. 4 ·2024-02-29 ·Pages e26190

Ali AM, Ghobashy AA, Sultan AA, Elkhodary KI, El-Morsi M

Abstract

In this study a frequency scaling law for 3D anatomically representative supravalvular aortic stenosis (SVAS) cases is proposed. The law is uncovered for stethoscopy's preferred auscultation range (70-120 Hz). LES simulations are performed on the CFD solver Fluent, leveraging Simulia's Living Heart Human Model (LHHM), modified to feature hourglass stenoses that range between 30 to 80 percent (mild to severe) in addition to the descending aorta. For physiological hemodynamic boundary conditions the Windkessel model is implemented via a UDF subroutine. The flow-generated acoustic signal is then extracted using the FW-H model and analyzed using FFT. A preferred receiver location that matches clinical practice is confirmed (right intercostal space) and a correlation between the degree of stenosis and a corresponding acoustic frequency is obtained. Five clinical auscultation signals are tested against the scaling law, with the findings interpreted in relation to the NHS classification of stenosis and to the assessments of experienced cardiologists. The scaling law is thus shown to succeed as a potential quantitative decision-support tool for clinicians, enabling them to reliably interpret stethoscopic auscultations for all degrees of stenosis, which is especially useful for moderate degrees of SVAS. Computational investigation of more complex stenotic cases would enhance the clinical relevance of this proposed scaling law, and will be explored in future research.

Keywords
Aorta Hemoacoustics Phonocardiography SVAS Stenosis
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Ali Ahmed M
Department of Mechanical Engineering, The American University in Cairo, 11835 New Cairo, Egypt.
Ghobashy Aly A
Department of Mechanical Engineering, The American University in Cairo, 11835 New Cairo, Egypt.
Sultan Abdelrahman A
Department of Mechanical Engineering, The American University in Cairo, 11835 New Cairo, Egypt.
Elkhodary Khalil I
Department of Mechanical Engineering, The American University in Cairo, 11835 New Cairo, Egypt.
El-Morsi Mohamed
Department of Mechanical Engineering, The American University in Cairo, 11835 New Cairo, Egypt.
Conflict of Interest

The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

References (53)
53 references, click to expand
  1. Multiphysics computational models for cardiac flow and virtual cardiography.
    Int J Numer Method Biomed Eng. 2013 Aug;29(8):850-69 PMID: 23666911
  2. [Measurement of the frequency response of several stethoscopes in common use. Consequences for cardiac and pulmonary auscultation].
    Bull Eur Physiopathol Respir. 1985 Jan-Feb;21(1):49-54 PMID: 3978290
  3. Electrocardiogram screening for aortic valve stenosis using artificial intelligence.
    Eur Heart J. 2021 Aug 7;42(30):2885-2896 PMID: 33748852
  4. CT and MRI assessment of the aortic root and ascending aorta.
    AJR Am J Roentgenol. 2013 Jun;200(6):W581-92 PMID: 23701088
  5. Improvement of cardiac auscultation skills in pediatric residents with training.
    Clin Pediatr (Phila). 2007 Apr;46(3):236-40 PMID: 17416879
  6. Arterial geometry, flow pattern, wall shear and mass transport: potential physiological significance.
    J R Soc Interface. 2009 Jun 6;6(35):519-28 PMID: 19033138
  7. Acoustic radiation from a fluid-filled, subsurface vascular tube with internal turbulent flow due to a constriction.
    J Acoust Soc Am. 2005 Aug;118(2):1193-209 PMID: 16158674
  8. The arterial Windkessel.
    Med Biol Eng Comput. 2009 Feb;47(2):131-41 PMID: 18543011
  9. Hemocompatibility and safety of the Carmat Total Artifical Heart hybrid membrane.
    Heliyon. 2019 Dec 08;5(12):e02914 PMID: 31867454
  10. Clinical implications of hemodynamic analysis for the three-dimension iliac vein model with different stenosis.
    Heliyon. 2023 Feb 11;9(2):e13681 PMID: 36865449
  11. Congenital supravalvar aortic stenosis: a simple lesion?
    Eur J Cardiothorac Surg. 2001 Feb;19(2):195-202 PMID: 11167112
  12. The impact of computer-assisted auscultation on physician referrals of asymptomatic patients with heart murmurs.
    Clin Cardiol. 2008 Feb;31(2):79-83 PMID: 18257026
  13. Acoustic detection of coronary artery disease.
    Annu Rev Biomed Eng. 2007;9:449-69 PMID: 17425468
  14. Aortic length: angiocardiographic measurements.
    Circulation. 1950 Dec;2(6):915-20 PMID: 14783846
  15. Cardiac auscultatory skills of physicians-in-training: a comparison of three English-speaking countries.
    Am J Med. 2001 Feb 15;110(3):210-6 PMID: 11182108
  16. The Living Heart Project: A robust and integrative simulator for human heart function.
    Eur J Mech A Solids. 2014 Nov;48:38-47 PMID: 25267880
  17. Hemizygosity at the elastin locus in a developmental disorder, Williams syndrome.
    Nat Genet. 1993 Sep;5(1):11-6 PMID: 7693128
  18. Helical and retrograde secondary flow patterns in the aortic arch studied by three-directional magnetic resonance velocity mapping.
    Circulation. 1993 Nov;88(5 Pt 1):2235-47 PMID: 8222118
  19. A fluid--structure interaction finite element analysis of pulsatile blood flow through a compliant stenotic artery.
    J Biomech Eng. 1999 Aug;121(4):361-9 PMID: 10464689
  20. Aortic root dynamism, geometry, and function after the remodeling operation: Clinical relevance.
    J Thorac Cardiovasc Surg. 2018 Sep;156(3):951-962.e2 PMID: 29884493
  21. Computational Modeling and Analysis of Murmurs Generated by Modeled Aortic Stenoses.
    J Biomech Eng. 2019 Apr 1;141(4): PMID: 30729979
  22. A computational fluid dynamics study on geometrical influence of the aorta on haemodynamics.
    Eur J Cardiothorac Surg. 2013 Apr;43(4):829-38 PMID: 22766960
  23. Using 4D Cardiovascular Magnetic Resonance Imaging to Validate Computational Fluid Dynamics: A Case Study.
    Front Pediatr. 2015 Dec 14;3:107 PMID: 26697416
  24. A general theory of the causes of murmurs in the cardiovascular system.
    Am J Med. 1959 Sep;27:360-74 PMID: 13805382
  25. Effect of Systolic and Diastolic Blood Pressure on Cardiovascular Outcomes.
    N Engl J Med. 2019 Jul 18;381(3):243-251 PMID: 31314968
  26. Cardiac auscultation: a glorious past--and it does have a future!
    Circulation. 2006 Mar 7;113(9):1255-9 PMID: 16520426
  27. On the choice of outlet boundary conditions for patient-specific analysis of aortic flow using computational fluid dynamics.
    J Biomech. 2017 Jul 26;60:15-21 PMID: 28673664
  28. CT and MRI in diseases of the aorta.
    AJR Am J Roentgenol. 2009 Oct;193(4):928-40 PMID: 19770313
  29. Side effects of radiographic contrast media: pathogenesis, risk factors, and prevention.
    Biomed Res Int. 2014;2014:741018 PMID: 24895606
  30. The Ross procedure: a systematic review and meta-analysis.
    Circulation. 2009 Jan 20;119(2):222-8 PMID: 19118260
  31. Patient-specific modeling of blood flow and pressure in human coronary arteries.
    Ann Biomed Eng. 2010 Oct;38(10):3195-209 PMID: 20559732
  32. The FDA nozzle benchmark: "In theory there is no difference between theory and practice, but in practice there is".
    Int J Numer Method Biomed Eng. 2019 Jan;35(1):e3150 PMID: 30211982
  33. Detecting Aortic Valve Anomaly From Induced Murmurs: Insights From Computational Hemodynamic Models.
    Front Physiol. 2021 Oct 06;12:734224 PMID: 34690809
  34. Patient-specific computational fluid dynamics-assessment of aortic hemodynamics in a spectrum of aortic valve pathologies.
    J Thorac Cardiovasc Surg. 2017 Jan;153(1):8-20.e3 PMID: 27847162
  35. Nurses with Undiagnosed Hearing Loss: Implications for Practice.
    Online J Issues Nurs. 2015 Jan 05;20(1):6 PMID: 26824264
  36. Blood flow and coherent vortices in the normal and aneurysmatic aortas: a fluid dynamical approach to intra-luminal thrombus formation.
    J R Soc Interface. 2011 Oct 7;8(63):1449-61 PMID: 21471188
  37. A coupled flow-acoustic computational study of bruits from a modeled stenosed artery.
    Med Biol Eng Comput. 2012 Oct;50(10):1025-35 PMID: 22610779
  38. Hemodynamic Modeling of Surgically Repaired Coarctation of the Aorta.
    Cardiovasc Eng Technol. 2011 Dec;2(4):288-295 PMID: 22347895
  39. Computational simulations demonstrate altered wall shear stress in aortic coarctation patients treated by resection with end-to-end anastomosis.
    Congenit Heart Dis. 2011 Sep-Oct;6(5):432-43 PMID: 21801315
  40. First successful trans-catheter aortic valve implantation through ascending aorta using Edwards SAPIEN THV system.
    Eur J Cardiothorac Surg. 2010 Dec;38(6):811-3 PMID: 20692179
  41. A CFD-FFT approach to hemoacoustics that enables degree of stenosis prediction from stethoscopic signals.
    Heliyon. 2023 Jun 29;9(7):e17643 PMID: 37449099
  42. Mild and moderate aortic stenosis. Natural history and risk stratification by echocardiography.
    Eur Heart J. 2004 Feb;25(3):199-205 PMID: 14972419
  43. Simulation of flow in an artery under pathological hemodynamic conditions: The use of a diagnostic disease descriptor.
    Heliyon. 2022 Jul 19;8(7):e09992 PMID: 35898606
  44. Estimation of total systemic arterial compliance in humans.
    J Appl Physiol (1985). 1990 Jul;69(1):112-9 PMID: 2394640
  45. The aortic root in supravalvular aortic stenosis: the potential surgical relevance of morphologic findings.
    J Thorac Cardiovasc Surg. 1997 Jul;114(1):16-24 PMID: 9240289
  46. Audible Coronary Artery Stenosis.
    Am J Med. 2016 May;129(5):515-521.e3 PMID: 26841299
  47. Computational fluid dynamics modelling in cardiovascular medicine.
    Heart. 2016 Jan;102(1):18-28 PMID: 26512019
  48. Cardiac outcomes in adults with supravalvar aortic stenosis.
    Eur Heart J. 2012 Oct;33(19):2442-50 PMID: 22815328
  49. Validation of numerical simulation methods in aortic arch using 4D Flow MRI.
    Heart Vessels. 2017 Aug;32(8):1032-1044 PMID: 28444501
  50. Acoustic diagnosis of aortic stenosis.
    J Heart Valve Dis. 2005 Mar;14(2):186-94 PMID: 15792178
  51. EDUCATIONAL SERIES IN CONGENITAL HEART DISEASE: Congenital left-sided heart obstruction.
    Echo Res Pract. 2018 Jun;5(2):R23-R36 PMID: 29681546
  52. Review of zero-D and 1-D models of blood flow in the cardiovascular system.
    Biomed Eng Online. 2011 Apr 26;10:33 PMID: 21521508
  53. Evaluation of carotid stenosis by phonoangiography.
    N Engl J Med. 1975 Nov 27;293(22):1124-8 PMID: 127121
Full Text / Full Text
PMC full text available locally, click to read

Loading full text...

Article Info
Journal
Heliyon
Abbr.
Heliyon
ISSN
2405-8440
Published
2024-02-29
Epub
2024-00-15
Pages
e26190
Language
English
Region
England
NLM ID
101672560
PMCID
PMC10881376
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]