Selective Covalent Chemistry via Gas-Phase Ion/ion Reactions: An Exploration of the Energy Surfaces Associated with N-Hydroxysuccinimide Ester Reagents and Primary Amines and Guanidine Groups

被引:22
|
作者
Bu, Jiexun [1 ]
Fisher, Christine M. [1 ]
Gilbert, Joshua D. [1 ]
Prentice, Boone M. [1 ]
McLuckey, Scott A. [1 ]
机构
[1] Purdue Univ, Dept Chem, W Lafayette, IN 47907 USA
关键词
Ion/ion reactions; Covalent reactivity; Gas-phase nucleophilic substitution; PROTEIN-SEQUENCE ANALYSIS; MASS-SPECTROMETRY; ELECTRON-TRANSFER; PROTON-TRANSFER; ION-TRAP; CROSS-LINKING; PEPTIDES; CATIONS; IONIZATION;
D O I
10.1007/s13361-016-1359-3
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Selective covalent bond forming reactions (referred to as covalent reactions) can occur in gas-phase ion/ion reactions and take place via the formation of a long-lived chemical complex. The gas-phase ion/ion reactivity between sulfo-N-hydroxysuccinimide (sulfo-NHS) ester reagent anions and peptide cations containing a primary amine or guanidine group has been examined via DFT calculations and complex dissociation rate measurements. The results reveal insights regarding the roles of the barriers of competing processes within the complex. When the covalent reaction is exothermic, two prototypical cases, determined by the nature of the energy surface, are apparent. The product partitioning between covalent reaction and simple proton transfer upon dissociation of the long-lived complex is sensitive to activation conditions when the transition state barrier for covalent reaction is relatively high (case 1) but is insensitive to activation conditions when the transition state barrier is relatively low (case 2). Covalent reaction efficiencies are very high in case 2 scenarios, such as when the reactive site is a guanidine and the anion attachment site is a guanidinium ion. Covalent reaction efficiencies are variable, and generally low, in case 1 scenarios, such as when an amine is the reactive site and an ammonium ion is the site of anion attachment. A relatively long slow-heating step prior to the complex dissociation step, however, can dramatically increase covalent reaction yield in case 1 scenarios.
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页码:1089 / 1098
页数:10
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