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The structure of alanine anionic-zwitterionic dimers on Pd(111); formation of salt bridges

机译:Pd(111)上丙氨酸阴离子-两性离子二聚体的结构;盐桥的形成

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The structure of alanine zwitterion-anion dimers previously proposed to form on Pd(111) is investigated using low-energy electron diffraction (LEED). Because of the propensity of amino acids on Pd(111) to undergo electron-beam-induced decomposition, LEED intensity versus beam voltage (I-V) curves were measured using a delay line detector LEED (DLD-LEED) system, which enables the complete LEED I-V curves to be obtained for an electron exposure of less than one electron per adsorbate. Since no long-range order is found following alanine adsorption on Pd(111), the adsorbate structure is determined from the substrate diffraction spots. The I-V data were analyzed using the CLEED: Automated Surface Structure package for an initial input structure from previous DFT calculations of the alanine zwitterion-anion dimer, the best fit structure yielded a satisfactory Pendry R-factor of 0.249, thus confirming the correctness of the originally proposed structure. Such anionic-zwitterionic dimers are a class of hydrogen-bonding intermolecular interactions in proteins that are dominated by direct electrostatic interactions, in particular for residues such a lysine and arginine, known as salt bridges. While such salt bridges interactions are relatively weak in biological systems, the attractive interaction energy between the anion and the zwitterion in the dimer on Pd(111) in vacuo is found to be ∼95 kJ/mol. It is proposed that the weaker binding biological systems occurs because the electrostatic screening in aqueous media weakens the electrostatic interaction between the anion and zwitterion, causing their structures to relax.
机译:使用低能电子衍射(LEED)研究了先前提议在Pd(111)上形成的丙氨酸两性离子-阴离子二聚体的结构。由于Pd(111)上的氨基酸易于发生电子束诱导的分解,因此使用延迟线检测器LEED(DLD-LEED)系统测量了LEED强度与电子束电压(IV)的关系曲线,从而实现了完整的LEED对于每个吸附物少于一个电子的电子暴露,将获得IV曲线。由于丙氨酸在Pd(111)上吸附后未发现长程有序,因此可从基质衍射点确定被吸附物的结构。使用CLEED:Automated Surface Structure软件包对IV数据进行了分析,该数据包是通过先前DFT计算得出的丙氨酸两性离子-阴离子二聚体的初始输入结构而得出的,最佳拟合结构产生了令人满意的Pendry R系数0.249,从而确认了最初提出的结构。这样的阴离子-两性离子二聚体是蛋白质中一类氢键键合的分子间相互作用,主要通过直接的静电相互作用来控制,特别是对于赖氨酸和精氨酸这样的残基,称为盐桥。尽管这种盐桥相互作用在生物系统中相对较弱,但在真空中Pd(111)上的二聚体中阴离子和两性离子之间的吸引力相互作用能为〜95 kJ / mol。提出存在较弱的结合生物系统是因为在水性介质中的静电筛选削弱了阴离子和两性离子之间的静电相互作用,从而导致其结构松弛。

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