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Decision theory for precision therapy of breast cancer.


ABSTRACT: Correctly estimating the hormone receptor status for estrogen (ER) and progesterone (PGR) is crucial for precision therapy of breast cancer. It is known that conventional diagnostics (immunohistochemistry, IHC) yields a significant rate of wrongly diagnosed receptor status. Here we demonstrate how Dempster Shafer decision Theory (DST) enhances diagnostic precision by adding information from gene expression. We downloaded data of 3753 breast cancer patients from Gene Expression Omnibus. Information from IHC and gene expression was fused according to DST, and the clinical criterion for receptor positivity was re-modelled along DST. Receptor status predicted according to DST was compared with conventional assessment via IHC and gene-expression, and deviations were flagged as questionable. The survival of questionable cases turned out significantly worse (Kaplan Meier p?

SUBMITTER: Kenn M 

PROVIDER: S-EPMC7895957 | biostudies-literature | 2021 Feb

REPOSITORIES: biostudies-literature

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Decision theory for precision therapy of breast cancer.

Kenn Michael M   Cacsire Castillo-Tong Dan D   Singer Christian F CF   Karch Rudolf R   Cibena Michael M   Koelbl Heinz H   Schreiner Wolfgang W  

Scientific reports 20210219 1


Correctly estimating the hormone receptor status for estrogen (ER) and progesterone (PGR) is crucial for precision therapy of breast cancer. It is known that conventional diagnostics (immunohistochemistry, IHC) yields a significant rate of wrongly diagnosed receptor status. Here we demonstrate how Dempster Shafer decision Theory (DST) enhances diagnostic precision by adding information from gene expression. We downloaded data of 3753 breast cancer patients from Gene Expression Omnibus. Informati  ...[more]

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