4.5 Article

Tandem Mass Spectrometric Characterization of Thiol Peptides Modified by the Chemoselective Cationic Sulfhydryl Reagent (4-Iodobutyl)Triphenylphosphonium-

Journal

JOURNAL OF THE AMERICAN SOCIETY FOR MASS SPECTROMETRY
Volume 22, Issue 10, Pages 1771-1783

Publisher

SPRINGER
DOI: 10.1007/s13361-011-0192-y

Keywords

Peptide fragmentation; Fixed charge modification; Thiol-specific modification; Proline effect

Funding

  1. NIH/NIA [AG025372]
  2. Medical Research Foundation of Oregon
  3. NIEHS [P30 ES00210]

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Fixed charge chemical modifications on peptides and proteins can impact fragmentation behaviors in tandem mass spectrometry (MS/MS). In this study, we employed a thiol-specific cationic alkylation reagent, (4-iodobutyl)triphenylphosphonium (IBTP), to selectively modify cysteine thiol groups in mitochondrial proteome samples. Tandem mass spectrometric characteristics of butyltriphenylphosphonium (BTP)-modified peptides were evaluated by comparison to their carbamidomethylated (CAM) analogues using a quadrupole time-of-flight (Q-TOF) instrument under low energy collision-induced dissociation (CID) conditions. Introduction of the fixed charge modification resulted in the observation of peptide and fragment (b(n) and y(n)) ions with higher charge states than those observed for CAM-modified analogues. The charged BTP moiety had a significant effect on the neighboring amide bond fragmentation products. A decrease in relative abundances of the product ions at the corresponding cleavage sites was observed compared with those from the CAM-modified derivatives. This effect was particularly noticeable when an Xxx-Pro bond was in the vicinity of a BTP group. We hypothesized that the presence of a phosphonium moiety will reduce the tendency for protonation of the proximal amide bonds in the peptide backbone. Indeed, calculations indicated that proton affinities of backbone amide bonds close to the modified cysteine residues were generally 20-50 kcal/mol lower for BTP-modified peptides than for the unmodified or CAM-modified analogues with the sequence motif -Ala-Cys-Ala(n)-Ala(2)-, -Ala-Cys-Ala(n)-Pro-Ala-, and -Ala-Pro-Ala(n)-Cys-Ala-, n = 0-3.

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