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https://doi.org/10.1186/s13058-016-0692-6
Title: | A five-gene reverse transcription-PCR assay for pre-operative classification of breast fibroepithelial lesions | Authors: | Tan, W.J Cima, I Choudhury, Y Wei, X Lim, J.C.T Thike, A.A Tan, M.-H Tan, P.H |
Keywords: | ABC transporter A8 apolipoprotein D fibronectin formaldehyde macrophage inflammatory protein 3beta paraffin transcriptome ABC transporter ABCA8 protein, human APOD protein, human apolipoprotein D CCL19 protein, human fibronectin FN1 protein, human macrophage inflammatory protein 3beta PRAME protein, human transcriptome tumor antigen ABCA8 gene adolescent adult aged APOD gene area under the curve Article breast fibroepithelial lesion breast tumor CCL19 gene clinical article clinical feature cohort analysis controlled study cystosarcoma phylloides diagnostic accuracy diagnostic test accuracy study FN1 gene gene gene expression gene expression profiling genetic transcription human human tissue machine learning molecular diagnosis multigene polymerase chain reaction PRAME gene prediction preoperative period quantitative analysis receiver operating characteristic reverse transcription polymerase chain reaction sensitivity and specificity tumor classification validation process biopsy biosynthesis Breast Neoplasms differential diagnosis female fibroadenoma gene expression regulation genetics middle aged pathology phyllodes tumor preoperative period procedures very elderly Adolescent Adult Aged Aged, 80 and over Antigens, Neoplasm Apolipoproteins D ATP-Binding Cassette Transporters Biopsy Breast Neoplasms Chemokine CCL19 Diagnosis, Differential Female Fibroadenoma Fibronectins Gene Expression Regulation, Neoplastic Humans Middle Aged Phyllodes Tumor Preoperative Period Reverse Transcriptase Polymerase Chain Reaction Transcriptome |
Issue Date: | 2016 | Citation: | Tan, W.J, Cima, I, Choudhury, Y, Wei, X, Lim, J.C.T, Thike, A.A, Tan, M.-H, Tan, P.H (2016). A five-gene reverse transcription-PCR assay for pre-operative classification of breast fibroepithelial lesions. Breast Cancer Research 18 (1) : 31. ScholarBank@NUS Repository. https://doi.org/10.1186/s13058-016-0692-6 | Abstract: | Background: Breast fibroepithelial lesions are biphasic tumors and include fibroadenomas and phyllodes tumors. Preoperative distinction between fibroadenomas and phyllodes tumors is pivotal to clinical management. Fibroadenomas are clinically benign while phyllodes tumors are more unpredictable in biological behavior, with potential for recurrence. Differentiating the tumors may be challenging when they have overlapping clinical and histological features especially on core biopsies. Current molecular and immunohistochemical techniques have a limited role in the diagnosis of breast fibroepithelial lesions. We aimed to develop a practical molecular test to aid in distinguishing fibroadenomas from phyllodes tumors in the pre-operative setting. Methods: We profiled the transcriptome of a training set of 48 formalin-fixed, paraffin-embedded fibroadenomas and phyllodes tumors and further designed 43 quantitative polymerase chain reaction (qPCR) assays to verify differentially expressed genes. Using machine learning to build predictive regression models, we selected a five-gene transcript set (ABCA8, APOD, CCL19, FN1, and PRAME) to discriminate between fibroadenomas and phyllodes tumors. We validated our assay in an independent cohort of 230 core biopsies obtained pre-operatively. Results: Overall, the assay accurately classified 92.6% of the samples (AUC = 0.948, 95% CI 0.913-0.983, p = 2.51E-19), with a sensitivity of 82.9% and specificity of 94.7%. Conclusions: We provide a robust assay for classifying breast fibroepithelial lesions into fibroadenomas and phyllodes tumors, which could be a valuable tool in assisting pathologists in differential diagnosis of breast fibroepithelial lesions. © 2016 Tan et al. | Source Title: | Breast Cancer Research | URI: | https://scholarbank.nus.edu.sg/handle/10635/176133 | ISSN: | 1465-5411 | DOI: | 10.1186/s13058-016-0692-6 |
Appears in Collections: | Elements Staff Publications |
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