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Updated: Sep 22, 2025

Using the Open-Source MALDI TOF-MS IDBac Pipeline for Analysis of Microbial Protein and Specialized Metabolite Data
Published on: May 15, 2019
DIA Proteomics and Machine Learning for the Fast Identification of Bacterial Species in Biological Samples
Florence Roux-Dalvai1,2, Mickaël Leclercq2, Clarisse Gotti1,2
1Proteomics Platform, CHU de Québec - Université Laval Research Center, Québec City, QC, Canada.
Abstract:
Identification of bacterial species in biological samples is essential in many applications. However, the standard methods usually use a time-consuming bacterial culture (24-48 h) and sometimes lack in specificity. To overcome these limitations, we developed a new protocol, combining LC-MS/MS analysis in Data Independent Acquisition mode and machine learning algorithms, enabling the accurate identification of the bacterial species contaminating a sample in a few hours without bacterial culture. In this chapter, we describe the three steps of the protocol (spectral libraries generation, training step, identification step) to generate customized peptide signatures and use them for bacterial identification in biological samples through targeted proteomics analyses and prediction models.
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