Literature DB >> 15890743

Proteomic mass spectra classification using decision tree based ensemble methods.

Pierre Geurts1, Marianne Fillet, Dominique de Seny, Marie-Alice Meuwis, Michel Malaise, Marie-Paule Merville, Louis Wehenkel.   

Abstract

MOTIVATION: Modern mass spectrometry allows the determination of proteomic fingerprints of body fluids like serum, saliva or urine. These measurements can be used in many medical applications in order to diagnose the current state or predict the evolution of a disease. Recent developments in machine learning allow one to exploit such datasets, characterized by small numbers of very high-dimensional samples.
RESULTS: We propose a systematic approach based on decision tree ensemble methods, which is used to automatically determine proteomic biomarkers and predictive models. The approach is validated on two datasets of surface-enhanced laser desorption/ionization time of flight measurements, for the diagnosis of rheumatoid arthritis and inflammatory bowel diseases. The results suggest that the methodology can handle a broad class of similar problems.

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Year:  2005        PMID: 15890743     DOI: 10.1093/bioinformatics/bti494

Source DB:  PubMed          Journal:  Bioinformatics        ISSN: 1367-4803            Impact factor:   6.937


  29 in total

1.  LDL-apheresis depletes apoE-HDL and pre-β1-HDL in familial hypercholesterolemia: relevance to atheroprotection.

Authors:  Alexina Orsoni; Samir Saheb; Johannes H M Levels; Geesje Dallinga-Thie; Marielle Atassi; Randa Bittar; Paul Robillard; Eric Bruckert; Anatol Kontush; Alain Carrié; M John Chapman
Journal:  J Lipid Res       Date:  2011-09-26       Impact factor: 5.922

2.  Is bagging effective in the classification of small-sample genomic and proteomic data?

Authors:  T T Vu; U M Braga-Neto
Journal:  EURASIP J Bioinform Syst Biol       Date:  2009-04-16

Review 3.  Challenges for biomarker discovery in body fluids using SELDI-TOF-MS.

Authors:  Muriel De Bock; Dominique de Seny; Marie-Alice Meuwis; Jean-Paul Chapelle; Edouard Louis; Michel Malaise; Marie-Paule Merville; Marianne Fillet
Journal:  J Biomed Biotechnol       Date:  2009-12-06

Review 4.  A systematic review of the applications of artificial intelligence and machine learning in autoimmune diseases.

Authors:  I S Stafford; M Kellermann; E Mossotto; R M Beattie; B D MacArthur; S Ennis
Journal:  NPJ Digit Med       Date:  2020-03-09

5.  Feature selection and classification of leukocytes using random forest.

Authors:  Mukesh Saraswat; K V Arya
Journal:  Med Biol Eng Comput       Date:  2014-10-05       Impact factor: 2.602

6.  A comparison of random forest and its Gini importance with standard chemometric methods for the feature selection and classification of spectral data.

Authors:  Bjoern H Menze; B Michael Kelm; Ralf Masuch; Uwe Himmelreich; Peter Bachert; Wolfgang Petrich; Fred A Hamprecht
Journal:  BMC Bioinformatics       Date:  2009-07-10       Impact factor: 3.169

7.  MAPPING ABNORMAL SUBCORTICAL BRAIN MORPHOMETRY IN AN ELDERLY HIV+ COHORT.

Authors:  Benjamin S C Wade; Victor G Valcour; Lauren Wendelken-Riegelhaupt; Pardis Esmaeili-Firidouni; Shantanu H Joshi; Yalin Wang; Paul M Thompson
Journal:  Proc IEEE Int Symp Biomed Imaging       Date:  2015-04

8.  Power Normalization for Mass Spectrometry Data Analysis and Analytical Method Assessment.

Authors:  Y Melodie Du; Ye Hu; Yu Xia; Zheng Ouyang
Journal:  Anal Chem       Date:  2016-02-24       Impact factor: 6.986

9.  Toward digital staining using imaging mass spectrometry and random forests.

Authors:  Michael Hanselmann; Ullrich Köthe; Marc Kirchner; Bernhard Y Renard; Erika R Amstalden; Kristine Glunde; Ron M A Heeren; Fred A Hamprecht
Journal:  J Proteome Res       Date:  2009-07       Impact factor: 4.466

Review 10.  Artificial intelligence applications in inflammatory bowel disease: Emerging technologies and future directions.

Authors:  John Gubatan; Steven Levitte; Akshar Patel; Tatiana Balabanis; Mike T Wei; Sidhartha R Sinha
Journal:  World J Gastroenterol       Date:  2021-05-07       Impact factor: 5.742

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