AI Article Synopsis

  • The study analyzed the relationship between ultrasound and digital mammogram images and the molecular classification of breast cancer using data from 313 patients.
  • A "sono-mammometry" score was developed based on key imaging features to facilitate easy implementation in outpatient clinics.
  • While imaging characteristics can assist in predicting molecular classification, their prognostic value is limited, highlighting a need for improved diagnostic accuracy.

Article Abstract

We studied the correlation of sonographic and digital mammographic features with molecular classification of breast cancer. Imaging features from 313 patients with preliminary ultrasound and digital mammogram between November 2017 and May 2020 were compared with histopathology and immunohistochemical analysis for the prediction of molecular classification of breast cancer. We also devised a score called "sono-mammometry" score consisting of few simple imaging features which can easily be performed in outpatient settings. We studied that non-triple-negative breast cancers are predominantly hypoechoic and strongly correlate with the presence of irregular spiculated margins along with peripheral echogenic halo, posterior shadowing, and microcalcifications, while there is considerable variation in imaging features of TNBC as some of its imaging features overlap with those of typical benign tumors. Although imaging characteristics are helpful in the prediction of molecular classification, the prognostication value of these imaging features is still weak. There is considerable variation in imaging features which warrants vigilance towards improved diagnostic performance. To help better understand these features, our sono-mammometry score can serve as straightforward test which is assumed to be functional and productive in resource-limited settings.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7886512PMC
http://dx.doi.org/10.1155/2021/6691958DOI Listing

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