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Proton Transfer Charge Reduction Enables High-Throughput Top-Down Analysis of Large Proteoforms.
Huguet, Romain; Mullen, Christopher; Srzentic, Kristina; Greer, Joseph B; Fellers, Ryan T; Zabrouskov, Vlad; Syka, John E P; Kelleher, Neil L; Fornelli, Luca.
Afiliação
  • Huguet R; Thermo Fisher Scientific , 355 River Oaks Parkway , San Jose , California 95134 , United States.
  • Mullen C; Thermo Fisher Scientific , 355 River Oaks Parkway , San Jose , California 95134 , United States.
  • Srzentic K; Thermo Fisher Scientific , 790 Memorial Drive, Suite 2D , Cambridge , Massachusetts 02139 , United States.
  • Greer JB; Departments of Chemistry and Molecular Biosciences, and the Proteomics Center of Excellence , Northwestern University , 2170 Campus Drive , Evanston , Illinois 60208 , United States.
  • Fellers RT; Departments of Chemistry and Molecular Biosciences, and the Proteomics Center of Excellence , Northwestern University , 2170 Campus Drive , Evanston , Illinois 60208 , United States.
  • Zabrouskov V; Thermo Fisher Scientific , 355 River Oaks Parkway , San Jose , California 95134 , United States.
  • Syka JEP; Thermo Fisher Scientific , 355 River Oaks Parkway , San Jose , California 95134 , United States.
  • Kelleher NL; Departments of Chemistry and Molecular Biosciences, and the Proteomics Center of Excellence , Northwestern University , 2170 Campus Drive , Evanston , Illinois 60208 , United States.
  • Fornelli L; Department of Biology , University of Oklahoma , 730 Van Vleet Oval , Norman , Oklahoma 73071 , United States.
Anal Chem ; 91(24): 15732-15739, 2019 12 17.
Article em En | MEDLINE | ID: mdl-31714757
ABSTRACT
Despite the recent technological advances in Fourier transform mass spectrometry (FTMS) instrumentation, top-down proteomics (TDP) is currently mostly applied to the characterization of proteoforms <30 kDa due to the poor performance of high-resolution FTMS for the analysis of larger proteoforms and the high complexity of intact proteomes in the 30-60 kDa mass range. Here, we propose a novel data acquisition method based on ion-ion proton transfer, herein termed proton transfer charge reduction (PTCR), to investigate large proteoforms of Pseudomonas aeruginosa in a high-throughput fashion. We designed a targeted data acquisition strategy, named tPTCR, which applies two consecutive gas phase fractionation steps for obtaining intact precursor masses first, a narrow (1.5 m/z-wide) quadrupole filter m/z transmission window is used to select a subset of charge states from all ionized proteoform cations; second, this aliquot of protein cations is subjected to PTCR in order to reduce their average charge state upon m/z analysis in an Orbitrap, proteoform mass spectra with minimal m/z peak overlap and easy-to-interpret charge state distributions are obtained, simplifying the proteoform mass calculation. Subsequently, the same quadrupole-selected narrow m/z region of analytes is subjected to collisional dissociation to obtain proteoform sequence information, which used in combination with intact mass information leads to proteoform identification through an off-line database search. The newly proposed method was benchmarked against the previously developed "medium/high" data-dependent acquisition strategy and doubled the number of UniProt entries and proteoforms >30 kDa identified on the liquid chromatography time scale.
Assuntos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article