Combined quantum chemical and RRKM modeling of the main fragmentation pathways of protonated GGG.: II.: Formation of b2, y1, and y2 ions

被引:117
作者
Paizs, B [1 ]
Suhai, S [1 ]
机构
[1] Deutsch Krebsforschungszentrum, Dept Mol Biophys, D-69120 Heidelberg, Germany
关键词
D O I
10.1002/rcm.586
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Quantum chemical and RRKM calculations were performed on protonated GGG in order to determine the atomic details of the main fragmentation pathways leading to formation of b(2),y(1), and y(2) ions. Formation of y(1) ions on the 'diketopiperazine' pathway is initiated from relatively high-energy C-terminal amide nitrogen protonated species for which the N-terminal amide bond is in the cis isomerization state. The reaction goes through a transition structure which is only slightly less favored than the reactive configuration itself. RRKM calculations indicate that this reaction is extremely fast as soon as the fragmenting species have more internal energy than the reaction threshold. The calculated energetics suggests that y(1) ions are formed on the 'diketopiperazine' pathway with a non-negligible (6-10 kcaVmol) reverse activation barrier. Investigation of species occurring during the formation of b2 ions having an oxazolone structure indicates that y(1) ions can be formed also from intermediates previously thought to result in only b2 ions. As the first step of the 'b(x)-y(z)' pathway proposed here the extra proton must reach the nitrogen of the C-terminal amide bond. Attack of the N-terminal amide oxygen on the carbon center of the C-terminal amide bond results in formation of the oxazolone ring while the detaching G leaves the precursor ion. Under low-energy collision conditions the complex of protonated 2-aminomethyl-5-oxazolone and G can rearrange to form a proton-bonded dimer of these species. In such circumstances the extra proton is shared by the two monomers and dissociation of the dimer will be determined by the thermochernistry involved. Based on the 'b(x)-y(z)' pathway one can easily explain the linear relationship between the logarithm of the y(1)/b(2) ion abundance ratio and the proton affinity of the C-terminal amino acid substituent for the series of H-Gly-Gly-Xxx-OH tripeptides where Xxx was varied (Morgan DG, Bursey MM. Org. Mass. Spectrom. 1994; 29: 354). The calculated energetics indicates that both y(1) and b(2) ions are formed with no reverse activation barrier on the 'b(x)-y(z)' pathway. Copyright (C) 2002 John Wiley Sons, Ltd.
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页码:375 / 389
页数:15
相关论文
共 18 条
[11]   Combined quantum chemical and RRKM modeling of the main fragmentation pathways of protonated GGG.: I.: Cis-trans isomerization around protonated amide bonds [J].
Paizs, B ;
Suhai, S .
RAPID COMMUNICATIONS IN MASS SPECTROMETRY, 2001, 15 (23) :2307-2323
[12]  
Paizs B, 1999, RAPID COMMUN MASS SP, V13, P525, DOI 10.1002/(SICI)1097-0231(19990330)13:6<525::AID-RCM519>3.0.CO
[13]  
2-O
[14]   Theoretical study of the main fragmentation pathways for protonated glycylglycine [J].
Paizs, B ;
Suhai, S .
RAPID COMMUNICATIONS IN MASS SPECTROMETRY, 2001, 15 (08) :651-663
[15]   THE INTERPRETATION OF COLLISION-INDUCED DISSOCIATION TANDEM MASS-SPECTRA OF PEPTIDES [J].
PAPAYANNOPOULOS, IA .
MASS SPECTROMETRY REVIEWS, 1995, 14 (01) :49-73
[16]  
Polce MJ, 2000, J MASS SPECTROM, V35, P1391, DOI 10.1002/1096-9888(200012)35:12<1391::AID-JMS85>3.3.CO
[17]  
2-T
[18]   Why are B ions stable species in peptide spectra? [J].
Yalcin, T ;
Khouw, C ;
Csizmadia, IG ;
Peterson, MR ;
Harrison, AG .
JOURNAL OF THE AMERICAN SOCIETY FOR MASS SPECTROMETRY, 1995, 6 (12) :1165-1174