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Electron capture induced dissociation of doubly protonated pentapeptides: Dependence on molecular structure and charge separation

机译:电子捕获引起的双质子化五肽解离:取决于分子结构和电荷分离

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摘要

We have studied electron capture induced dissociation of a set of doubly protonated pentapeptides, all composed of one lysine (K) and either four glycine (G) or four alanine (A) residues, as a function of the sequence of these building blocks. Thereby the separation of the two charges, sequestered on the N-terminal amino group and the lysine side chain, is varied. The characteristic cleavage of N-C bonds is observed for all peptides over the whole backbone length, with the charge carrying fragments always containing K. The resulting fragmentation patterns are very similar if G is replaced by A. In the case of [XKXXX+2H] 2+ (X=A or G), a distinct feature is observed in the distribution of backbone cleavage fragments and the probability for ammonia loss is drastically reduced. This may be due to an isomer with an amide oxygen as protonation site giving rise to the observed increase in breakage at a specific site in the molecule. For the other peptides, a correlation with the distance between amide oxygen and the charge at the lysine side chain has been found. This may be an indication that it is only the contribution from this site to the charge stabilization of the amide * orbitals which determines relative fragment intensities. For comparison, complexes with two crown ether molecules have been studied as well. The crown ether provides a shielding of the charge and prevents the peptide from folding and internal hydrogen bonding, which leads to a more uniform fragmentation behavior.
机译:我们已经研究了电子捕获诱导的一组双质子化五肽的解离,这些五肽均由一个赖氨酸(K)和四个甘氨酸(G)或四个丙氨酸(A)残基组成,它们是这些结构单元序列的函数。因此,改变了螯合在N末端氨基和赖氨酸侧链上的两个电荷的分离。在整个主链长度上观察到所有肽的NC键的特征性断裂,带电荷的片段始终包含K。如果G被A取代,则产生的片段化模式非常相似。在[XKXXX + 2H] 2的情况下+(X = A或G),在主链裂解片段的分布中观察到明显特征,并且氨损失的可能性大大降低。这可能是由于具有酰胺氧作为质子化位点的异构体导致观察到的分子中特定位点的断裂增加。对于其他肽,已经发现与酰胺氧和赖氨酸侧链电荷之间的距离相关。这可能表明,只有该位点对酰胺*轨道电荷稳定的贡献决定了相对碎片强度。为了进行比较,还研究了具有两个冠醚分子的配合物。冠醚提供电荷的屏蔽并防止肽折叠和内部氢键结合,从而导致更均匀的片段化行为。

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