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1.
J Proteome Res ; 23(5): 1768-1778, 2024 May 03.
Article in English | MEDLINE | ID: mdl-38580319

ABSTRACT

Biofluids contain molecules in circulation and from nearby organs that can be indicative of disease states. Characterizing the proteome of biofluids with DIA-MS is an emerging area of interest for biomarker discovery; yet, there is limited consensus on DIA-MS data analysis approaches for analyzing large numbers of biofluids. To evaluate various DIA-MS workflows, we collected urine from a clinically heterogeneous cohort of prostate cancer patients and acquired data in DDA and DIA scan modes. We then searched the DIA data against urine spectral libraries generated using common library generation approaches or a library-free method. We show that DIA-MS doubles the sample throughput compared to standard DDA-MS with minimal losses to peptide detection. We further demonstrate that using a sample-specific spectral library generated from individual urines maximizes peptide detection compared to a library-free approach, a pan-human library, or libraries generated from pooled, fractionated urines. Adding urine subproteomes, such as the urinary extracellular vesicular proteome, to the urine spectral library further improves the detection of prostate proteins in unfractionated urine. Altogether, we present an optimized DIA-MS workflow and provide several high-quality, comprehensive prostate cancer urine spectral libraries that can streamline future biomarker discovery studies of prostate cancer using DIA-MS.


Subject(s)
Prostatic Neoplasms , Proteome , Proteomics , Humans , Male , Prostatic Neoplasms/urine , Prostatic Neoplasms/diagnosis , Proteome/analysis , Proteomics/methods , Prostate/metabolism , Prostate/pathology , Peptide Library , Biomarkers, Tumor/urine , Tandem Mass Spectrometry/methods , Workflow
2.
Nat Methods ; 17(12): 1229-1236, 2020 12.
Article in English | MEDLINE | ID: mdl-33257825

ABSTRACT

Data-independent acquisition modes isolate and concurrently fragment populations of different precursors by cycling through segments of a predefined precursor m/z range. Although these selection windows collectively cover the entire m/z range, overall, only a few per cent of all incoming ions are isolated for mass analysis. Here, we make use of the correlation of molecular weight and ion mobility in a trapped ion mobility device (timsTOF Pro) to devise a scan mode that samples up to 100% of the peptide precursor ion current in m/z and mobility windows. We extend an established targeted data extraction workflow by inclusion of the ion mobility dimension for both signal extraction and scoring and thereby increase the specificity for precursor identification. Data acquired from whole proteome digests and mixed organism samples demonstrate deep proteome coverage and a high degree of reproducibility as well as quantitative accuracy, even from 10 ng sample amounts.


Subject(s)
Data Science/methods , High-Throughput Screening Assays/methods , Ion Channels/metabolism , Ion Transport/physiology , Proteome/metabolism , Cell Line, Tumor , HeLa Cells , Humans , Ions/chemistry , Proteomics/methods , Reproducibility of Results , Tandem Mass Spectrometry/methods
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