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Exhaustive Cross-Linking Search with Protein Feedback
Abstract
Improving the sensitivity of protein–protein interaction detection and protein structure probing is a principal challenge in cross-linking mass spectrometry (XL-MS) data analysis. In this paper, we propose an exhaustive cross-linking search method with protein feedback (ECL-PF) for cleavable XL-MS data analysis. ECL-PF adopts an optimized α/β mass detection scheme and establishes protein–peptide association during the identification of cross-linked peptides. Existing major scoring functions can all benefit from the ECL-PF workflow to a great extent. In comparisons using synthetic data sets and hybrid simulated data sets, ECL-PF achieved 3-fold higher sensitivity over standard techniques. In experiments using real data sets, it also identified 65.6% more cross-link spectrum matches and 48.7% more unique cross-links- Text
- Journal contribution
- Biophysics
- Biochemistry
- Genetics
- Biotechnology
- Immunology
- Developmental Biology
- Cancer
- Inorganic Chemistry
- Mathematical Sciences not elsewhere classified
- Chemical Sciences not elsewhere classified
- link spectrum matches
- also identified 65
- protein structure probing
- linking mass spectrometry
- protein feedback improving
- linking search method
- pf achieved 3
- fold higher sensitivity
- ms data analysis
- protein feedback
- linking search
- data analysis
- standard techniques
- principal challenge
- pf workflow
- pf adopts
- optimized α
- linked peptides
- great extent