Literature DB >> 32635415

Machine Learning-Based Ensemble Recursive Feature Selection of Circulating miRNAs for Cancer Tumor Classification.

Alejandro Lopez-Rincon1, Lucero Mendoza-Maldonado2, Marlet Martinez-Archundia3, Alexander Schönhuth4,5, Aletta D Kraneveld1, Johan Garssen6,1, Alberto Tonda7.   

Abstract

Circulating microRNAs (miRNA) are small noncoding RNA molecules that can be detected in bodily fluids without the need for major invasive procedures on patients. miRNAs have shown great promise as biomarkers for tumors to both assess their presence and to predict their type and subtype. Recently, thanks to the availability of miRNAs datasets, machine learning techniques have been successfully applied to tumor classification. The results, however, are difficult to assess and interpret by medical experts because the algorithms exploit information from thousands of miRNAs. In this work, we propose a novel technique that aims at reducing the necessary information to the smallest possible set of circulating miRNAs. The dimensionality reduction achieved reflects a very important first step in a potential, clinically actionable, circulating miRNA-based precision medicine pipeline. While it is currently under discussion whether this first step can be taken, we demonstrate here that it is possible to perform classification tasks by exploiting a recursive feature elimination procedure that integrates a heterogeneous ensemble of high-quality, state-of-the-art classifiers on circulating miRNAs. Heterogeneous ensembles can compensate inherent biases of classifiers by using different classification algorithms. Selecting features then further eliminates biases emerging from using data from different studies or batches, yielding more robust and reliable outcomes. The proposed approach is first tested on a tumor classification problem in order to separate 10 different types of cancer, with samples collected over 10 different clinical trials, and later is assessed on a cancer subtype classification task, with the aim to distinguish triple negative breast cancer from other subtypes of breast cancer. Overall, the presented methodology proves to be effective and compares favorably to other state-of-the-art feature selection methods.

Entities:  

Keywords:  TNBC; circulating; feature selection; machine learning; miRNAs

Year:  2020        PMID: 32635415     DOI: 10.3390/cancers12071785

Source DB:  PubMed          Journal:  Cancers (Basel)        ISSN: 2072-6694            Impact factor:   6.639


  12 in total

1.  Endometriosis Associated-miRNome Analysis of Blood Samples: A Prospective Study.

Authors:  Sofiane Bendifallah; Yohann Dabi; Stéphane Suisse; Léa Delbos; Mathieu Poilblanc; Philippe Descamps; Francois Golfier; Ludmila Jornea; Delphine Bouteiller; Cyril Touboul; Anne Puchar; Emile Daraï
Journal:  Diagnostics (Basel)       Date:  2022-05-05

2.  Developing and validating a deep learning and radiomic model for glioma grading using multiplanar reconstructed magnetic resonance contrast-enhanced T1-weighted imaging: a robust, multi-institutional study.

Authors:  Jialin Ding; Rubin Zhao; Qingtao Qiu; Jinhu Chen; Jinghao Duan; Xiujuan Cao; Yong Yin
Journal:  Quant Imaging Med Surg       Date:  2022-02

3.  Classification and specific primer design for accurate detection of SARS-CoV-2 using deep learning.

Authors:  Alejandro Lopez-Rincon; Alberto Tonda; Lucero Mendoza-Maldonado; Daphne G J C Mulders; Richard Molenkamp; Carmina A Perez-Romero; Eric Claassen; Johan Garssen; Aletta D Kraneveld
Journal:  Sci Rep       Date:  2021-01-13       Impact factor: 4.379

4.  Recursive ensemble feature selection provides a robust mRNA expression signature for myalgic encephalomyelitis/chronic fatigue syndrome.

Authors:  Paula I Metselaar; Lucero Mendoza-Maldonado; Andrew Yung Fong Li Yim; Ilias Abarkan; Peter Henneman; Anje A Te Velde; Alexander Schönhuth; Jos A Bosch; Aletta D Kraneveld; Alejandro Lopez-Rincon
Journal:  Sci Rep       Date:  2021-02-25       Impact factor: 4.379

5.  Dietary Supplementation throughout Life with Non-Digestible Oligosaccharides and/or n-3 Poly-Unsaturated Fatty Acids in Healthy Mice Modulates the Gut-Immune System-Brain Axis.

Authors:  Kirsten Szklany; Phillip A Engen; Ankur Naqib; Stefan J Green; Ali Keshavarzian; Alejandro Lopez Rincon; Cynthia J Siebrand; Mara A P Diks; Melanie van de Kaa; Johan Garssen; Leon M J Knippels; Aletta D Kraneveld
Journal:  Nutrients       Date:  2021-12-30       Impact factor: 5.717

6.  Analysing the protection from respiratory tract infections and allergic diseases early in life by human milk components: the PRIMA birth cohort.

Authors:  Arthur H van Stigt; Katrien Oude Rengerink; Kitty W M Bloemenkamp; Wouter de Waal; Sabine M P J Prevaes; Thuy-My Le; Femke van Wijk; Maaike Nederend; Anneke H Hellinga; Christianne S Lammers; Gerco den Hartog; Martijn J C van Herwijnen; Johan Garssen; Léon M J Knippels; Lilly M Verhagen; Caroline G M de Theije; Alejandro Lopez-Rincon; Jeanette H W Leusen; Belinda Van't Land; Louis Bont
Journal:  BMC Infect Dis       Date:  2022-02-14       Impact factor: 3.090

7.  Salivary MicroRNA Signature for Diagnosis of Endometriosis.

Authors:  Sofiane Bendifallah; Stéphane Suisse; Anne Puchar; Léa Delbos; Mathieu Poilblanc; Philippe Descamps; Francois Golfier; Ludmila Jornea; Delphine Bouteiller; Cyril Touboul; Yohann Dabi; Emile Daraï
Journal:  J Clin Med       Date:  2022-01-26       Impact factor: 4.241

8.  MicroRNome analysis generates a blood-based signature for endometriosis.

Authors:  Sofiane Bendifallah; Yohann Dabi; Stéphane Suisse; Ludmila Jornea; Delphine Bouteiller; Cyril Touboul; Anne Puchar; Emile Daraï
Journal:  Sci Rep       Date:  2022-03-08       Impact factor: 4.379

Review 9.  MicroRNAs: understanding their role in gene expression and cancer.

Authors:  Ariany Lima Jorge; Erik Ribeiro Pereira; Christian Sousa de Oliveira; Eduardo Dos Santos Ferreira; Edmara Toledo Ninzoli Menon; Susana Nogueira Diniz; Julia Alejandra Pezuk
Journal:  Einstein (Sao Paulo)       Date:  2021-07-16

10.  Clues for Improving the Pathophysiology Knowledge for Endometriosis Using Serum Micro-RNA Expression.

Authors:  Yohann Dabi; Stéphane Suisse; Ludmila Jornea; Delphine Bouteiller; Cyril Touboul; Anne Puchar; Emile Daraï; Sofiane Bendifallah
Journal:  Diagnostics (Basel)       Date:  2022-01-12
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