In silico analysis reveals the prospects of renal anisotropy in improving chronic kidney disease detection using ultrasound shear wave elastography

Author:

Lim William T. H.1ORCID,Ooi Ean H.12ORCID,Foo Ji J.1,Ng Kwan H.34,Wong Jeannie H. D.3,Leong Sook S.5

Affiliation:

1. Department of Mechanical Engineering, School of Engineering Monash University Malaysia Bandar Sunway Malaysia

2. Medical Engineering and Technology Hub, School of Engineering Monash University Malaysia Bandar Sunway Malaysia

3. Faculty of Medicine, Department of Biomedical Imaging Universiti Malaya Kuala Lumpur Malaysia

4. Faculty of Medicine and Health Sciences UCSI University Springhill Malaysia

5. Centre of Medical Imaging, Faculty of Health Sciences Universiti Teknologi MARA Selangor Bandar Puncak Alam Malaysia

Abstract

AbstractRenal anisotropy is a complex property of the kidney and often poses a challenge in obtaining consistent measurements when using shear wave elastography to detect chronic kidney disease. To circumvent the challenge posed by renal anisotropy in clinical settings, a dimensionless biomarker termed the ‘anisotropic ratio’ was introduced to establish a correlation between changes in degree of renal anisotropy and progression of chronic kidney disease through an in silico perspective. To achieve this, an efficient model reduction approach was developed to model the anisotropic property of kidneys. Good agreement between the numerical and experimental data were obtained, as percentage errors of less than 5.5% were reported when compared against experimental phantom measurement from the literature. To demonstrate the applicability of the model to clinical measurements, the anisotropic ratio of sheep kidneys was quantified, with both numerical and derived experimental results reporting a value of .667. Analysis of the anisotropic ratio with progression of chronic kidney disease demonstrated that patients with normal kidneys would have a lower anisotropic ratio of .872 as opposed to patients suffering from renal impairment, in which the anisotropic ratio may increase to .904, as determined from this study. The findings demonstrate the potential of the anisotropic ratio in improving the detection of chronic kidney disease using shear wave elastography.

Publisher

Wiley

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