Mapping low-resolution three-dimensional protein structures using chemical cross-linking and Fourier transform ion-cyclotron resonance mass spectrometry

被引:64
作者
Dihazi, GH [1 ]
Sinz, A [1 ]
机构
[1] Univ Leipzig, Fac Chem & Mineral, Biotechnol Biomed Ctr, D-04103 Leipzig, Germany
关键词
D O I
10.1002/rcm.1144
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Techniques in mass spectrometry (MS) combined with chemical cross-linking have proven to be efficient tools for the rapid determination of low-resolution three-dimensional (3-D) structures of proteins. The general procedure involves chemical cross-linking of a protein followed by enzymatic digestion and MS analysis of the resulting peptide mixture. These experiments are generally fast and do not require large quantities of protein. However, the large number of peptide species created from the digestion of cross-linked proteins makes it difficult to identify relevant intermolecular cross-linked peptides from MS data. We present a method for mapping low-resolution 3-D protein structures by combining chemical cross-linking with high-resolution FTICR (Fourier transform ion-cyclotron resonance) mass spectrometry using cytochrome c and hen egg lysozyme as model proteins. We applied several homo-bifunctional, amine-reactive cross-linking reagents that bridge distances from 6 to 16 Angstrom. The non-digested cross-linking reaction mixtures were monitored by matrix-assisted laser desorption/ionization time-of-flight mass spectrometry (MALDI-TOFMS) to determine the extent of cross-linking. Enzymatically digested reaction mixtures were separated by nano-high-performance liquid chromatography (nano-HPLC) on reverse-phase columns applying water/acetonitrile gradients with flow rates of 200 nL/min. The nano-HPLC system was directly coupled to an FTICR mass spectrometer equipped with a nano-ESI (electrospray ionization) source. Cross-linking products were identified using a combination of the GPMAW software and ExPASy Proteomics tools. For correct assignment of the cross-linking products the key factor is to rely on a mass spectrometric method providing both high resolution and high mass accuracy, such as FTICRMS. By combining chemical cross-linking with FTICRMS we were able to rapidly define several intramolecular constraints for cytochrome c and lysozyme. Copyright (C) 2003 John Wiley Sons, Ltd.
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收藏
页码:2005 / 2014
页数:10
相关论文
共 17 条
[1]   The complete atomic structure of the large ribosomal subunit at 2.4 Å resolution [J].
Ban, N ;
Nissen, P ;
Hansen, J ;
Moore, PB ;
Steitz, TA .
SCIENCE, 2000, 289 (5481) :905-920
[2]  
*BRUK DALT, 1996, BIOAPEX US MAN
[3]  
CANFIELD RE, 1963, J BIOL CHEM, V238, P2698
[4]   ELECTROSPRAY IONIZATION FOR MASS-SPECTROMETRY OF LARGE BIOMOLECULES [J].
FENN, JB ;
MANN, M ;
MENG, CK ;
WONG, SF ;
WHITEHOUSE, CM .
SCIENCE, 1989, 246 (4926) :64-71
[5]   Nano-high-performance liquid chromatography in combination with nano-electrospray ionization Fourier transform ion-cyclotron resonance mass spectrometry for proteome analysis [J].
Ihling, C ;
Berger, K ;
Höfliger, MM ;
Führer, D ;
Beck-Sickinger, AG ;
Sinz, A .
RAPID COMMUNICATIONS IN MASS SPECTROMETRY, 2003, 17 (12) :1240-1246
[6]   A top down approach to protein structural studies using chemical cross-linking and Fourier transform mass spectrometry [J].
Kruppa, GH ;
Schoeniger, J ;
Young, MM .
RAPID COMMUNICATIONS IN MASS SPECTROMETRY, 2003, 17 (02) :155-162
[7]   Structural basis for binding of Smac/DIABLO to the XIAP BIR3 domain [J].
Liu, ZH ;
Sun, CH ;
Olejniczak, ET ;
Meadows, RP ;
Betz, SF ;
Oost, T ;
Herrmann, J ;
Wu, JC ;
Fesik, SW .
NATURE, 2000, 408 (6815) :1004-1008
[8]  
LUTTER LC, 1975, MOL CELL BIOCHEM, V30, P105
[9]   Biochemistry - Biomolecule mass spectrometry [J].
McLafferty, FW ;
Fridriksson, EK ;
Horn, DM ;
Lewis, MA ;
Zubarev, RA .
SCIENCE, 1999, 284 (5418) :1289-1290
[10]   Intramolecular cross-linking experiments on cytochrome c and ribonuclease A using an isotope multiplet method [J].
Pearson, KM ;
Pannell, LK ;
Fales, HM .
RAPID COMMUNICATIONS IN MASS SPECTROMETRY, 2002, 16 (03) :149-159