Literature DB >> 32328394

Quantification of Morphological Features in Non-Contrast-Enhanced Ultrasound Microvasculature Imaging.

Siavash Ghavami1, Mahdi Bayat2, Mostafa Fatemi2, Azra Alizad1,2.   

Abstract

There are significant differences in microvascular morphological features in diseased tissues, such as cancerous lesions, compared to noncancerous tissue. Quantification of microvessel morphological features could play an important role in disease diagnosis and tumor classification. However, analyzing microvessel morphology in ultrasound Doppler is a challenging task due to limitations associated with this technique. Our main objective is to provide methods for quantifying morphological features of microvasculature obtained by ultrasound Doppler imaging. To achieve this goal, we propose multiple image enhancement techniques and appropriate morphological feature extraction methods that enable quantitative analysis of microvasculature structures. Vessel segments obtained by the skeletonization of the regularized microvasculature images are further analyzed to satisfy other constraints, such as vessel segment diameter and length. Measurements of some morphological metrics, such as tortuosity, depend on preserving large vessel trunks. To address this issue, additional filtering methods are proposed. These methods are tested on in vivo images of breast lesion and thyroid nodule microvasculature, and the outcomes are discussed. Initial results show that using vessel morphological features allows for differentiation between malignant and benign breast lesions (p-value < 0.005) and thyroid nodules (p-value < 0.01). This paper provides a tool for the quantification of microvasculature images obtained by non-contrast ultrasound imaging, which may serve as potential biomarkers for the diagnosis of some diseases.

Entities:  

Keywords:  Doppler flow imaging; microvasculature imaging; non-contrast-enhanced ultrasound imaging; ultrasound; vessel quantification

Year:  2020        PMID: 32328394      PMCID: PMC7179329          DOI: 10.1109/ACCESS.2020.2968292

Source DB:  PubMed          Journal:  IEEE Access        ISSN: 2169-3536            Impact factor:   3.367


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Journal:  IEEE Trans Biomed Eng       Date:  2018-07-27       Impact factor: 4.538

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3.  Ultrasound high-definition microvasculature imaging with novel quantitative biomarkers improves breast cancer detection accuracy.

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5.  Hybrid high-definition microvessel imaging/shear wave elastography improves breast lesion characterization.

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6.  Quantitative Biomarkers for Cancer Detection Using Contrast-Free Ultrasound High-Definition Microvessel Imaging: Fractal Dimension, Murray's Deviation, Bifurcation Angle & Spatial Vascularity Pattern.

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