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Bongaerts, Michiel (author), Kulkarni, Purva (author), Zammit, Alan (author), Bonte, Ramon (author), Kluijtmans, Leo A. J. (author), Blom, Henk J. (author), Engelke, Udo F. H. (author), Tax, D.M.J. (author), Ruijter, George J.G. (author), Reinders, M.J.T. (author)
Untargeted metabolomics (UM) is increasingly being deployed as a strategy for screening patients that are suspected of having an inborn error of metabolism (IEM). In this study, we examined the potential of existing outlier detection methods to detect IEM patient profiles. We benchmarked 30 different outlier detection methods when applied to...
journal article 2023
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Bongaerts, Michiel (author), Bonte, Ramon (author), Demirdas, Serwet (author), Huidekoper, Hidde H. (author), Langendonk, Janneke (author), Wilke, Martina (author), de Valk, Walter (author), Blom, Henk J. (author), Reinders, M.J.T. (author), Ruijter, George J.G. (author)
The integration of metabolomics data with sequencing data is a key step towards improving the diagnostic process for finding the disease-causing genetic variant(s) in patients suspected of having an inborn error of metabolism (IEM). The measured metabolite levels could provide additional phenotypical evidence to elucidate the degree of...
journal article 2022
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Bongaerts, Michiel (author), Bonte, Ramon (author), Demirdas, Serwet (author), Jacobs, Edwin H. (author), Oussoren, Esmee (author), van der Ploeg, Ans T. (author), Wagenmakers, Margreet A.E.M. (author), Hofstra, Robert M.W. (author), Blom, Henk J. (author), Reinders, M.J.T. (author), Ruijter, George J.G. (author)
Untargeted metabolomics is an emerging technology in the laboratory diagnosis of inborn errors of metabolism (IEM). Analysis of a large number of reference samples is crucial for correcting variations in metabolite concentrations that result from factors, such as diet, age, and gender in order to judge whether metabolite levels are abnormal....
journal article 2020