首页> 外文期刊>Journal of the American Chemical Society >Infrared Spectroscopy of Phenylalanine Ag(Ⅰ) and Zn(Ⅱ) Complexes in the Gas Phase
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Infrared Spectroscopy of Phenylalanine Ag(Ⅰ) and Zn(Ⅱ) Complexes in the Gas Phase

机译:气相中苯丙氨酸Ag(Ⅰ)和Zn(Ⅱ)配合物的红外光谱

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Infrared multiple-photon dissociation (IR-MPD) spectroscopy has been applied to singly-charged complexes involving the transition metals Ag~+ and Zn~(2+) with the aromatic amino acid phenylalanine. These studies are complemented by DFT calculations. For [Phe+Ag]~+ the calculations favor a tridentate charge solvation N/O/ring structure. The experimental spectrum strongly supports this as the predominant binding geometry and, in particular, rules out a significant presence of the salt-bridge conformation. Zn~(2+) forms a deprotonated dimer complex with Phe, [Zn+Phe_2-H]~+, in which the +2 oxidation state serves as a useful biomimetic model for zinc protein sites. A number of low-energy conformations were located, of which the lowest-energy conformer predicted by the calculations involves a Phe ligand deprotonated on the carboxylic acid, while the other Phe ligand is in the tridentate charge solvation conformation. The calculated IR spectrum of this conformer gives a close fit to the experimental spectrum, strongly supporting this as the predominant binding geometry. This most stable calculated complex is characterized by N/ O/ring metal chelation with a tetrahedral-type coordination core of Zn~(2+) to N and O of both ligands. Another similar tightly chelated structure shows a square-planar-type coordination core, but this structure is computed to be less stable and gives a less satisfactory match to the experimental spectrum. This preference for the tetrahedral geometry of the Lewis-basic atomic ligands parallels the common Zn(Ⅱ) coordination geometry in proteins. The number of clearly identifiable peaks resolved in the IR-MPD spectra as well as the much-improved matches between the observed spectra and the DFT-calculated spectra of the most stable geometries compared to previous studies are noteworthy for systems of this size and complexity. These results demonstrate that IR spectroscopy of transition metal-amino acid complexes in combination with DFT calculations is a very powerful structural tool, readily applicable to biomimetic systems that model, for example, the reaction centers of proteins in the solvent-free environment. In addition, we present a novel ion-capturing method for Fourier transform ion cyclotron resonance mass spectrometry which removes the necessity of a buffer gas pulse, while allowing ion trapping at moderate voltages with apparently reduced collisional excitation of the ions.
机译:红外多光子离解(IR-MPD)光谱技术已应用于涉及过渡金属Ag〜+和Zn〜(2+)与芳香族氨基酸苯丙氨酸的单电荷配合物。这些研究得到DFT计算的补充。对于[Phe + Ag]〜+,计算有利于三齿电荷溶剂化N / O /环结构。实验光谱强烈支持这是主要的结合几何形状,特别是排除了盐桥构象的显着存在。 Zn〜(2+)与Phe [Zn + Phe_2-H]〜+形成去质子化的二聚体复合物,其中+2氧化态可作为锌蛋白位点的仿生模型。定位了许多低能构象,其中通过计算预测的最低能构象涉及在羧酸上去质子化的Phe配体,而另一个Phe配体则处于三齿电荷溶剂化构象。计算出的该构象异构体的红外光谱与实验光谱非常吻合,这强烈支持了其作为主要的结合几何形状。这种最稳定的计算配合物的特征是N / O /环金属螯合,具有Zn〜(2+)与两个配体的N和O的四面体型配位核心。另一种类似的紧密螯合结构显示出正方形-平面型配位核,但是计算出该结构的稳定性较差,与实验光谱的匹配度较差。对路易斯基本原子配体的四面体几何的这种偏好与蛋白质中常见的Zn(Ⅱ)配位几何平行。与以前的研究相比,IR-MPD光谱中分辨出的清晰可辨的峰数以及观察到的光谱与最稳定几何结构的DFT计算光谱之间的匹配度大大提高,对于这种规模和复杂性的系统而言,值得注意。这些结果表明,过渡金属-氨基酸配合物的红外光谱与DFT计算相结合是一种非常强大的结构工具,可轻松应用于模拟例如无溶剂环境中蛋白质反应中心的仿生系统。此外,我们提出了一种用于傅立叶变换离子回旋共振质谱的新型离子捕获方法,该方法消除了缓冲气体脉冲的必要性,同时允许在中等电压下捕获离子,从而明显减少了离子的碰撞激发。

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