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Characterizing protein conformers by cross-linking mass spectrometry and pattern recognition.
Kurt, Louise U; Clasen, Milan A; Santos, Marlon D M; Lyra, Eduardo S B; Santos, Luana O; Ramos, Carlos H I; Lima, Diogo B; Gozzo, Fabio C; Carvalho, Paulo C.
Affiliation
  • Kurt LU; Laboratory for Structural and Computational Proteomics, Carlos Chagas Institute, Fiocruz, Paraná 81350-010, Brazil.
  • Clasen MA; Laboratory for Structural and Computational Proteomics, Carlos Chagas Institute, Fiocruz, Paraná 81350-010, Brazil.
  • Santos MDM; Laboratory for Structural and Computational Proteomics, Carlos Chagas Institute, Fiocruz, Paraná 81350-010, Brazil.
  • Lyra ESB; Institute of Chemistry, University of Campinas, São Paulo 13083-862, Brazil.
  • Santos LO; Institute of Chemistry, University of Campinas, São Paulo 13083-862, Brazil.
  • Ramos CHI; Institute of Chemistry, University of Campinas, São Paulo 13083-862, Brazil.
  • Lima DB; Department of Chemical Biology, Leibniz - Forschungsinstitut für Molekulare Pharmakologie (FMP), Berlin 13125, Germany.
  • Gozzo FC; Institute of Chemistry, University of Campinas, São Paulo 13083-862, Brazil.
  • Carvalho PC; Laboratory for Structural and Computational Proteomics, Carlos Chagas Institute, Fiocruz, Paraná 81350-010, Brazil.
Bioinformatics ; 37(18): 3035-3037, 2021 09 29.
Article in En | MEDLINE | ID: mdl-33681984
ABSTRACT
MOTIVATION Chemical cross-linking coupled to mass spectrometry (XLMS) emerged as a powerful technique for studying protein structures and large-scale protein-protein interactions. Nonetheless, XLMS lacks software tailored toward dealing with multiple conformers; this scenario can lead to high-quality identifications that are mutually exclusive. This limitation hampers the applicability of XLMS in structural experiments of dynamic protein systems, where less abundant conformers of the target protein are expected in the sample.

RESULTS:

We present QUIN-XL, a software that uses unsupervised clustering to group cross-link identifications by their quantitative profile across multiple samples. QUIN-XL highlights regions of the protein or system presenting changes in its conformation when comparing different biological conditions. We demonstrate our software's usefulness by revisiting the HSP90 protein, comparing three of its different conformers. QUIN-XL's clusters correlate directly to known protein 3D structures of the conformers and therefore validates our software. AVAILABILITYAND IMPLEMENTATION QUIN-XL and a user tutorial are freely available at http//patternlabforproteomics.org/quinxl for academic users. SUPPLEMENTARY INFORMATION Supplementary data are available at Bioinformatics online.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Software / Proteins Language: En Journal: Bioinformatics Year: 2021 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Software / Proteins Language: En Journal: Bioinformatics Year: 2021 Document type: Article