Burlet O, Orkiszewski R S, Ballard K D, Gaskell S J
Center for Experimental Therapeutics, Baylor College of Medicine, Houston, TX 77030.
Rapid Commun Mass Spectrom. 1992 Nov;6(11):658-62. doi: 10.1002/rcm.1290061106.
We have examined the hypothesis that structural features which predispose to localization of charge at a strongly favored site are not conducive to the low-energy fragmentation of peptide ions via a multiplicity of pathways. Consistent with this proposal, it is demonstrated that the formation of N- or C-terminal pre-charged derivatives is detrimental to the formation of sequence-specific product ions following low-energy collisional activation. Protonation of pre-charged derivatives (yielding doubly charged ions) restores favorable fragmentation properties; the effect is attributed to the fragmentation-directing properties of the proton which may occupy one of several sites. Similarly, a doubly protonated peptide which incorporates a C-terminal arginine residue as a single strongly favored site of protonation exhibits favored low-energy fragmentations attributable to location of the second proton at one of several sites remote from the C-terminus.
易于使电荷定位于一个高度有利位点的结构特征不利于肽离子通过多种途径进行低能碎片化。与该提议一致的是,已证明N端或C端预充电衍生物的形成不利于低能碰撞激活后序列特异性产物离子的形成。预充电衍生物的质子化(产生双电荷离子)恢复了良好的碎片化特性;这种效应归因于质子的碎片化导向特性,质子可能占据几个位点中的一个。同样,包含C端精氨酸残基作为单个高度有利质子化位点的双质子化肽表现出有利的低能碎片化,这归因于第二个质子位于远离C端的几个位点之一。