AI Article Synopsis

  • - Differentiating breast cancer subtypes using miRNA data enables tailored treatment plans, and this study developed a new method for screening nonlinear features via an ensemble regularized polynomial logistic regression approach.
  • - The technique combined three types of polynomial logistic regression models, using bootstrap sampling to identify important features, with 40 features identified that are critical for classifying at least four cancer subtypes.
  • - The best-performing model achieved an 82.30% classification accuracy, outperforming six other methods, and identified 11 key miRNA biomarkers linked to breast cancer, confirmed through various biological analyses.

Article Abstract

Differentiating breast cancer subtypes based on miRNA data helps doctors provide more personalized treatment plans for patients. This paper explored the interaction between miRNA pairs and developed a novel ensemble regularized polynomial logistic regression method for screening nonlinear features of breast cancer. Three different types of second-order polynomial logistic regression with elastic network penalty (SOPLR-EN) in which each type contains 10 identical models were integrated to determine the most suitable sample set for feature screening by using bootstrap sampling strategy. A single feature and 39 nonlinear features were obtained by screening features that appeared at least 15 times in 30 integrations and were involved in the classification of at least 4 subtypes. The second-order polynomial logistic regression with ridge penalty (SOPLR-R) built on screened feature set achieved 82.30% classification accuracy for distinguishing breast cancer subtypes, surpassing the performance of other six methods. Further, 11 nonlinear miRNA biomarkers were identified, and their significant relevance to breast cancer was illustrated through six types of biological analysis.

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Source
http://dx.doi.org/10.1089/cmb.2023.0289DOI Listing

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