Virtual Double Staining: A Digital Approach to Immunohistochemical Quantification of Estrogen Receptor Protein in Breast Carcinoma Specimens

被引:18
作者
Andersen, Nina Lykkegaard [1 ]
Brugmann, Anja [1 ]
Lelkaitis, Giedrius [1 ]
Nielsen, Soren [1 ]
Lippert, Michael Friis [1 ]
Vyberg, Mogens [1 ]
机构
[1] Aalborg Univ Hosp, Inst Pathol, Ladegaardsgade 3, DK-9000 Aalborg, Denmark
关键词
breast cancer; estrogen receptor; image analysis; virtual IHC double staining; histoscore; CENTRALLY REVIEWED EXPRESSION; LIGAND-BINDING ASSAY; IMAGE-ANALYSIS; PROGESTERONE-RECEPTORS; PREDICTING RESPONSE; SURVIVAL OUTCOMES; CANCER PATIENTS; TAMOXIFEN; ER; RECOMMENDATIONS;
D O I
10.1097/PAI.0000000000000502
中图分类号
R602 [外科病理学、解剖学]; R32 [人体形态学];
学科分类号
100101 ;
摘要
Visual assessment of immunohistochemically detected estrogen receptor protein is prone to interobserver and intraobserver variation due to its subjective evaluation. The aim of this study was to validate a new image analysis system based on virtual double staining (VDS) by comparing visual and automated scorings of ER in tissue microarrays of breast carcinomas. Tissue microarrays were constructed of 112 consecutive resection specimens of breast carcinomas. Immunohistochemistry assays for ER and pancytokeratin was applied on separate serial sections. ER scoring was visually performed by 5 observers using the histoscore (H-score) method. The Visiopharm ER image analysis protocol (APP) software application using VDS technique was applied separating stromal cells from carcinoma and other epithelial cells based on the pancytokeratin reaction. Using color deconvolution, polynomial filters, and nuclear segmentation the APP determined the percentage of positive cells and their intensity, and calculated the resulting H-score. On the basis of 1% cutoff VDS was perfectly correlated with visual assessment (=1). Using H-score, a very high agreement between VDS and visual ER assessment was seen (R-2=0.950). Image analysis has the attributes to eliminate the shortcomings of visual ER evaluation by generating automated, reproducible, and objective results of ER assessment.
引用
收藏
页码:620 / 626
页数:7
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