首页> 外文期刊>Journal of the American Chemical Society >Energetics and Dynamics of Electron Transfer and Proton Transfer in Dissociation of Metal~Ⅲ(salen)-Peptide Complexes in the Gas Phase
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Energetics and Dynamics of Electron Transfer and Proton Transfer in Dissociation of Metal~Ⅲ(salen)-Peptide Complexes in the Gas Phase

机译:金属〜Ⅲ(salen)-肽配合物在气相中解离时电子转移和质子转移的能量和动力学

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Time- and collision energy-resolved surface-induced dissociation (SID) of ternary complexes of Co~Ⅲ(salen)~+, Fe~Ⅲ(salen)~+, and Mn~Ⅲ(salen)~+ with several angiotensin peptide analogues was studied using a Fourier transform ion cyclotron resonance mass spectrometer (FT-ICR MS) specially equipped to perform SID experiments. Time-resolved fragmentation efficiency curves (TFECs) were modeled using an RRKM-based approach developed in our laboratory. The approach utilizes a very flexible analytical expression for the internal energy deposition function that is capable of reproducing both single-collision and multiple-collision activation in the gas phase and excitation by collisions with a surface. The energetics and dynamics of competing dissociation pathways obtained from the modeling provides important insight on the competition between proton transfer, electron transfer, loss of neutral peptide ligand, and other processes that determine gas-phase fragmentation of these model systems. Similar fragmentation behavior was obtained for various Co~Ⅲ(salen)-peptide systems of different angiotensin analogues. In contrast, dissociation pathways and relative stabilities of the complexes changed dramatically when cobalt was replaced with trivalent iron or manganese. We demonstrate that the electron-transfer efficiency is correlated with redox properties of the metal~Ⅲ(salen) complexes (Co > Fe > Mn), while differences in the types of fragments formed from the complexes reflect differences in the modes of binding between the metal-salen complex and the peptide ligand. RRKM modeling of time- and collision-energy-resolved SID data suggests that the competition between proton transfer and electron transfer during dissociation of Co~Ⅲ(salen)-peptide complexes is mainly determined by differences in entropy effects while the energetics of these two pathways are very similar.
机译:Co〜Ⅲ(salen)〜+,Fe〜Ⅲ(salen)〜+和Mn〜Ⅲ(salen)〜+与几种血管紧张素肽类似物的三元复合物的时间和碰撞能分辨表面诱导解离(SID)使用专门配置用于执行SID实验的傅里叶变换离子回旋共振质谱仪(FT-ICR MS)研究了C.使用我们实验室开发的基于RRKM的方法对时间分辨的碎片效率曲线(TFEC)进行建模。该方法对内部能量沉积功能采用了非常灵活的分析表达式,该函数能够在气相中重现单碰撞和多碰撞激活以及与表面碰撞而激发的现象。从建模中获得的竞争解离途径的能量和动力学为质子转移,电子转移,中性肽配体的损失以及确定这些模型系统气相裂解的其他过程之间的竞争提供了重要的见识。不同血管紧张素类似物的多种Co〜Ⅲ(salen)-肽系统也获得了相似的断裂行为。相反,当钴被三价铁或锰替代时,复合物的解离途径和相对稳定性发生了巨大变化。我们证明了电子传递效率与金属〜Ⅲ(salen)配合物(Co> Fe> Mn)的氧化还原特性相关,而由配合物形成的碎片类型的差异反映了金属之间的结合方式的差异。金属-salen复合物和肽配体。时间和碰撞能量解析SID数据的RRKM建模表明,Co〜Ⅲ(salen)-肽配合物解离过程中质子传递与电子传递之间的竞争主要取决于熵效应的差异,而这两种途径的能量非常相似。

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