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Wang, J., Wang, Q., Guan, Y., Sun, Y., Wang, X., Lively, K., et al. (2022) Breast Cancer Cell-Derived MicroRNA-155 Suppresses Tumor Progression via Enhancing Immune Cell Recruitment and Antitumor Function. Journal of Clinical Investigation, 132, e157248.
https://doi.org/10.1172/jci157248
has been cited by the following article:
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TITLE:
Machine Learning-Based Selection of Key miRNA Biomarkers for Breast Cancer Diagnostics
AUTHORS:
Abderrahim Chafik
KEYWORDS:
RNA, Breast Cancer, Machine Learning, Feature Selection, Random Forest
JOURNAL NAME:
Open Journal of Applied Sciences,
Vol.15 No.3,
March
17,
2025
ABSTRACT: MicroRNAs (miRNAs) play a pivotal role in gene expression regulation and are closely linked to cancer development. In this study, we employ machine learning techniques to identify critical miRNA biomarkers for breast cancer diagnostics using a dataset of 941 patient samples with 1,882 miRNA features. By addressing class imbalance and applying robust feature selection, we developed an optimized Random Forest model that achieved a perfect classification accuracy of 1.0. Analyzing feature importance revealed 51 miRNAs as potential biomarkers, offering a valuable panel for precision diagnostics and personalized treatment strategies.