Tesis doctoralsDepartament d'Enginyeria Electrònica, Elèctrica i Automàtica

Automated mass spectrometry-based metabolomics data processing by blind source separation methods

  • Dades identificatives

    Identificador:  TDX:2320
    Autors:  Domingo Almenara, Xavier
    Resum:
    One of the major bottlenecks in metabolomics is to convert raw data samples into biological interpretable information. Moreover, mass spectrometry-based metabolomics generates large and complex datasets characterized by co-eluting compounds and with experimental artifacts. This thesis main objective is to develop automated strategies based on blind source separation to improve the capabilities of the current methods that tackle the different metabolomics data processing workflow steps limitations. Also, the objective of this thesis is to develop tools capable of performing the entire metabolomics workflow for GC--MS, including pre-processing, spectral deconvolution, alignment and identification. As a result, three new automated methods for spectral deconvolution based on blind source separation were developed. These methods were embedded into two computation tools able to automatedly convert raw data into biological interpretable information and thus, allow resolving biological answers and discovering new biological insights.
  • Altres:

    Editor: Universitat Rovira i Virgili
    Data: 2016-10-20
    Identificador: http://hdl.handle.net/10803/397799
    Departament/Institut: Departament d'Enginyeria Electrònica, Elèctrica i Automàtica, Universitat Rovira i Virgili.
    Idioma: eng
    Autor: Domingo Almenara, Xavier
    Director: Perera Lluna, Alexandre, Brezmes Llecha, Jesús
    Font: TDX (Tesis Doctorals en Xarxa)
    Format: 200 p., application/pdf
  • Paraules clau:

    Metabolomics
    Signal Processing
    Mass spectrometry
    Metabolómica
    Procesamiento de señales
    Espectrometría de masas
    Metabolòmica
    Processament de senyals
    Espectrometria de masses
    621.3
    Enginyeria i arquitectura
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