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Tumour-educated platelets for breast cancer detection: biological and technical insights.

Marte C Liefaard ,
Kat S Moore ,
Lennart Mulder ,
Daan van den Broek ,
Jelle Wesseling ,
Gabe S Sonke ,
Lodewyk F A Wessels ,
Matti Rookus ,
Esther H Lips

Abstract

METHODS

Platelet mRNA was sequenced from 266 women with stage I-IV breast cancer and 212 female controls from 6 hospitals. A particle swarm optimised support vector machine (PSO-SVM) and an elastic net-based classifier (EN) were trained on 71% of the study population. Classifier performance was evaluated in the remainder (29%) of the population, followed by validation in an independent set (37 cases and 36 controls). Potential confounding was assessed in post hoc analyses.

CONCLUSIONS

We could not validate two TEP-based breast cancer classifiers in an independent validation cohort. The TEP protocol is sensitive to within-protocol variation and revision might be necessary before TEPs can be reconsidered for breast cancer detection.

RESULTS

Both classifiers reached an area under the curve (AUC) of 0.85 upon internal validation. Reproducibility in the independent validation set was poor with an AUC of 0.55 and 0.54 for the PSO-SVM and EN classifier, respectively. Post hoc analyses indicated that 19% of the variance in gene expression was associated with hospital. Genes related to platelet activity were differentially expressed between hospitals.

BACKGROUND

Studies have shown that blood platelets contain tumour-specific mRNA profiles tumour-educated platelets (TEPs). Here, we aim to train a TEP-based breast cancer detection classifier.

More about this publication

British journal of cancer

Volume 128
Issue nr. 8
Pages 1572-1581
Publication date 01-04-2023

Full text links

Publisher website (DOI) 10.1038/s41416-023-02174-5
Europe PubMed Central 36765174
Pubmed 36765174

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