Literature DB >> 25668325

Enhancing metabolomics research through data mining.

Ibon Martínez-Arranz1, Rebeca Mayo1, Miriam Pérez-Cormenzana1, Itziar Mincholé1, Lorena Salazar2, Cristina Alonso1, José M Mato3.   

Abstract

Metabolomics research, like other disciplines utilizing high-throughput technologies, generates a large amount of data for every sample. Although handling this data is a challenge and one of the biggest bottlenecks of the metabolomics workflow, it is also the clue to accomplish valuable results. This work has been designed to supply methodological data mining guidelines, describing systematically the steps to be followed in metabolomics data exploration. Instrumental raw data refinement in the pre-processing step and assessment of the statistical assumptions in pre-treatment directly affect the results of subsequent univariate and multivariate analyses. A study of aging in a healthy population was selected to represent this data mining process. Multivariate analysis of variance and linear regression methods were used to analyze the metabolic changes underlying aging. Selection of both multivariate methods aims to illustrate the treatment of age from two rather different perspectives, as a categorical variable and a continuous variable. BIOLOGICAL SIGNIFICANCE: Metabolomics is a discipline involving the analysis of a large amount of data to gather relevant information. Researchers in this field have to overcome the challenges of complex data processing and statistical analysis issues. A wide range of tasks has to be executed, from the minimization of batch-to-batch/systematic variations in pre-processing, to the application of common data analysis techniques relying on statistical assumptions. In this work, a real-data metabolic profiling research on aging was used to illustrate the proposed workflow and suggest a set of guidelines for analyzing metabolomics data. This article is part of a Special Issue entitled: HUPO 2014.
Copyright © 2015 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Aging; Inter-batch normalization; Linear regression; MANOVA; Metabolomics; Statistical assumptions

Mesh:

Year:  2015        PMID: 25668325     DOI: 10.1016/j.jprot.2015.01.019

Source DB:  PubMed          Journal:  J Proteomics        ISSN: 1874-3919            Impact factor:   4.044


  29 in total

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2.  A Pilot Study of Serum Sphingomyelin Dynamics in Subjects with Severe Obesity and Non-alcoholic Steatohepatitis after Sleeve Gastrectomy.

Authors:  Bruno Ramos-Molina; Daniel Castellano-Castillo; Oscar Pastor; Luis Ocaña-Wilhelmi; Diego Fernández-García; Manuel Romero-Gómez; Fernando Cardona; Francisco J Tinahones
Journal:  Obes Surg       Date:  2019-03       Impact factor: 4.129

3.  Pharmacometabolomics applied to zonisamide pharmacokinetic parameter prediction.

Authors:  J C Martínez-Ávila; A García Bartolomé; I García; I Dapía; Hoi Y Tong; L Díaz; P Guerra; J Frías; A J Carcás Sansuan; A M Borobia
Journal:  Metabolomics       Date:  2018-05-09       Impact factor: 4.290

4.  Histone variant macroH2A1 rewires carbohydrate and lipid metabolism of hepatocellular carcinoma cells towards cancer stem cells.

Authors:  Oriana Lo Re; Julien Douet; Marcus Buschbeck; Caterina Fusilli; Valerio Pazienza; Concetta Panebianco; Carlo Castruccio Castracani; Tommaso Mazza; Giovanni Li Volti; Manlio Vinciguerra
Journal:  Epigenetics       Date:  2018-09-29       Impact factor: 4.528

5.  Sperm lipidic profiles differ significantly between ejaculates resulting in pregnancy or not following intracytoplasmic sperm injection.

Authors:  Rocio Rivera-Egea; Nicolas Garrido; Nerea Sota; Marcos Meseguer; Jose Remohí; Francisco Dominguez
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Review 6.  Recommended strategies for spectral processing and post-processing of 1D 1H-NMR data of biofluids with a particular focus on urine.

Authors:  Abdul-Hamid Emwas; Edoardo Saccenti; Xin Gao; Ryan T McKay; Vitor A P Martins Dos Santos; Raja Roy; David S Wishart
Journal:  Metabolomics       Date:  2018-02-12       Impact factor: 4.290

7.  Metabolomic signatures associated with disease severity in multiple sclerosis.

Authors:  Pablo Villoslada; Cristina Alonso; Ion Agirrezabal; Ekaterina Kotelnikova; Irati Zubizarreta; Irene Pulido-Valdeolivas; Albert Saiz; Manuel Comabella; Xavier Montalban; Luisa Villar; Jose Carlos Alvarez-Cermeño; Oscar Fernández; Roberto Alvarez-Lafuente; Rafael Arroyo; Azucena Castro
Journal:  Neurol Neuroimmunol Neuroinflamm       Date:  2017-01-27

8.  Serum metabolites in non-alcoholic fatty-liver disease development or reversion; a targeted metabolomic approach within the PREDIMED trial.

Authors:  Christopher Papandreou; Mònica Bullò; Francisco José Tinahones; Miguel Ángel Martínez-González; Dolores Corella; Georgios A Fragkiadakis; José López-Miranda; Ramon Estruch; Montserrat Fitó; Jordi Salas-Salvadó
Journal:  Nutr Metab (Lond)       Date:  2017-09-02       Impact factor: 4.169

9.  A Metabolomics Signature Linked To Liver Fibrosis In The Serum Of Transplanted Hepatitis C Patients.

Authors:  Ainara Cano; Zoe Mariño; Oscar Millet; Ibon Martínez-Arranz; Miquel Navasa; Juan Manuel Falcón-Pérez; Miriam Pérez-Cormenzana; Joan Caballería; Nieves Embade; Xavier Forns; Jaume Bosch; Azucena Castro; José María Mato
Journal:  Sci Rep       Date:  2017-09-05       Impact factor: 4.379

10.  Adiponectin, Leptin, and IGF-1 Are Useful Diagnostic and Stratification Biomarkers of NAFLD.

Authors:  Vanda Marques; Marta B Afonso; Nina Bierig; Filipa Duarte-Ramos; Álvaro Santos-Laso; Raul Jimenez-Agüero; Emma Eizaguirre; Luis Bujanda; Maria J Pareja; Rita Luís; Adília Costa; Mariana V Machado; Cristina Alonso; Enara Arretxe; José M Alustiza; Marcin Krawczyk; Frank Lammert; Dina G Tiniakos; Bertram Flehmig; Helena Cortez-Pinto; Jesus M Banales; Rui E Castro; Andrea Normann; Cecília M P Rodrigues
Journal:  Front Med (Lausanne)       Date:  2021-06-23
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