Tandem Mass Spectrometry Investigation of ADP-ribosylated Kemptide

被引:38
作者
Hengel, Shawna M. [1 ]
Shaffer, Scott A. [1 ]
Nunn, Brook L. [1 ]
Goodlett, David R. [1 ]
机构
[1] Univ Washington, Dept Med Chem, Seattle, WA 98195 USA
基金
美国国家卫生研究院; 美国国家科学基金会;
关键词
ELECTRON-CAPTURE DISSOCIATION; ION-TRAP; PROTEIN; PEPTIDE; PHOSPHOPEPTIDES; PHOSPHORYLATION; IDENTIFICATION; SITES;
D O I
10.1016/j.jasms.2008.10.025
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Bacterial adenosine diphosphate-ribosyltransferases (ADPRTs) are toxins that play a significant role in pathogenicity by inactivating host proteins through covalent addition of ADPribose. In this study we used ADP-ribosylated Kemptide (LRRASLG) as a standard to examine the effectiveness of three common tandem mass spectrometry fragmentation methods for assignment of amino acid sequence and site of modification. Fragmentation mechanisms investigated include low-energy collision-induced dissociation (CID), infrared multiphoton dissociation (IRMPD), and electron-capture dissociation (ECD); all were performed on a hybrid linear ion trap Fourier transform ion cyclotron resonance mass spectrometer. We show that ECD, but neither CID nor IRMPD, of ADP-ribosylated Kemptide produces tandem mass spectra that are interpretable with regard to amino acid sequence assignment and site of modification. Examination of CID and IRMPD tandem mass spectra of ADP-ribosylated Kemptide revealed that fragmentation was primarily focused to the ADP-ribose region, generating several potential diagnostic ions for use in discovery of ADP-ribosylated proteins. Because of the lower relative sensitivity of ECD during data-dependent acquisition to CID, we suggest a 2-fold strategy where CID and IRMPD are first used to detect ADP-ribosylated peptides, followed by sequence assignment and location of modification by ECD analysis. (J Am Soc Mass Spectrom 2009, 20, 477-483) (C) 2009 Published by Elsevier Inc. on behalf of American Society for Mass Spectrometry
引用
收藏
页码:477 / 483
页数:7
相关论文
共 19 条
[1]   Nonergodic and conformational control of the electron capture dissociation of protein cations [J].
Breuker, K ;
Oh, HB ;
Lin, C ;
Carpenter, BK ;
McLafferty, FW .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2004, 101 (39) :14011-14016
[2]   Functional aspects of protein mono-ADP-ribosylation [J].
Corda, D ;
Di Girolamo, M .
EMBO JOURNAL, 2003, 22 (09) :1953-1958
[3]   Identification of SpyA, a novel ADP-ribosyltransferase of Streptococcus pyogenes [J].
Coye, LH ;
Collins, CM .
MOLECULAR MICROBIOLOGY, 2004, 54 (01) :89-98
[4]   Infrared multiphoton dissociation (IRMPD) and collisionally activated dissociation of peptides in a quadrupole ion trap with selective IRMPD of phosphopeptides [J].
Crowe, MC ;
Brodbelt, JS .
JOURNAL OF THE AMERICAN SOCIETY FOR MASS SPECTROMETRY, 2004, 15 (11) :1581-1592
[5]  
DOMON B, 1988, GLYCOCONJ J, V5, P13
[6]  
Dookeran NN, 1996, J MASS SPECTROM, V31, P500, DOI 10.1002/(SICI)1096-9888(199605)31:5<500::AID-JMS327>3.0.CO
[7]  
2-Q
[8]   SELECTIVE DETECTION OF PHOSPHOPEPTIDES IN COMPLEX-MIXTURES BY ELECTROSPRAY LIQUID-CHROMATOGRAPHY MASS-SPECTROMETRY [J].
HUDDLESTON, MJ ;
ANNAN, RS ;
BEAN, MF ;
CARR, SA .
JOURNAL OF THE AMERICAN SOCIETY FOR MASS SPECTROMETRY, 1993, 4 (09) :710-717
[9]   CHROMATOGRAPHIC AND MASS-SPECTROMETRIC METHODS FOR THE IDENTIFICATION OF PHOSPHORYLATION SITES IN PHOSPHOPROTEINS [J].
HUNTER, AP ;
GAMES, DE .
RAPID COMMUNICATIONS IN MASS SPECTROMETRY, 1994, 8 (07) :559-570
[10]   Localization of labile posttranslational modifications by electron capture dissociation:: The case of γ-carboxyglutamic acid [J].
Kelleher, RL ;
Zubarev, RA ;
Bush, K ;
Furie, B ;
Furie, BC ;
McLafferty, FW ;
Walsh, CT .
ANALYTICAL CHEMISTRY, 1999, 71 (19) :4250-4253