Can New Ultrasound Imaging Techniques Improve Breast Lesion Characterization? Prospective Comparison between Ultrasound BI-RADS and Semi-Automatic Software “SmartBreast”, Strain Elastography, and Shear Wave Elastography

Author:

Guiban Olga12,Rubini Antonello2,Vallone Gianfranco3,Caiazzo Corrado4,Di Serafino Marco5ORCID,Pediconi Federica1ORCID,Ballesio Laura1,Trenta Federica1,De Vito Corrado6,Shkelqimi Arenta1,Costanzo Ludovica7,Fresilli Daniele1ORCID,Rizzo Veronica1ORCID,Cantisani Vito1,Vergine Massimo7

Affiliation:

1. Department of Radiological Sciences, Oncology and Pathology, Policlinico Umberto I, Sapienza University of Rome, 00100 Rome, Italy

2. Division of Radiology and Diagnostic Imaging, ASL Rome, 00184 Rome, Italy

3. Department of Life and Health, University of Molise “V. Tiberio”, 86100 Campobasso, Italy

4. Radiology Unit, PSP Corso Vittorio Emanuele ASL Napoli 1, 80122 Naples, Italy

5. Department of General and Emergency Radiology, “Antonio Cardarelli” Hospital, 80131 Naples, Italy

6. Department of Public Health and Infectious Diseases, Sapienza University, 00189 Rome, Italy

7. Department of Surgical Sciences, Sapienza University, 00189 Rome, Italy

Abstract

Background: Ultrasound plays a crucial role in early diagnosis of breast cancer. The aim of this research is to evaluate the diagnostic performance of BI-RADS classification in comparison with new semi-automatic software Resona R9, Mindray, “SmartBreast” and strain elastography (SE), point shear wave (pSWE), and 2D shear wave (2D SWE) Elastography for breast lesion differentiation. Methods: Ninety-two breast nodules classified according to BI-RADS lexicon by an expert radiologist were evaluated by a second investigator with B-mode ultrasound, color Doppler, “SmartBreast”, and elastography. Histopathology was considered the gold standard. Results: The agreement between software and investigator was excellent in the identification of the posterior features of breast masses (Cohen’s k = 0.94), good for shape and vascular signal (Cohen’s k, respectively, of 0.6 and 0.65), poor for orientation, margins, and echo pattern (Cohen’s k, respectively, of 0.28, 0.33 and 0.48), moderate for dimensions (Lin’s correlation coefficient of 0.90, p = 0.07). SE showed a greater area under curve (AUC) than pSWE and 2D SWE (0.84, 0.64, and 0.61, respectively), with a greater specificity and a comparable sensitivity to pSWE (respectively, of 0.86 and 0.55, 0.81 and 0.84). Conclusions: SE improved the diagnostic performance of BI-RADS classification more than pSWE and 2D SWE; “SmartBreast” showed good agreement only for shape and vascularization but not for the other ultrasound features of breast lesions.

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

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