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One Water Molecule Stabilizes the Cationized Arginine Zwitterion

机译:一种水分子可稳定阳离子化的精氨酸两性离子

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Singly hydrated clusters of lithiated arginine, sodiated arginine, and lithiated arginine methyl ester are investigated using infrared action spectroscopy and computational chemistry. Whereas unsolvated lithiated arginine is nonzwitterionic, these results provide compelling evidence that attachment of a single water molecule to this ion makes the zwitterionic form of arginine, in which the side chain is protonated, more stable. The experimental spectra of lithiated and sodiated arginine with one water molecule are very similar and contain spectral signatures for protonated side chains, whereas those of lithiated arginine and singly hydrated lithiated arginine methyl ester are different and contain spectral signatures for neutral side chains. Calculations at the B3LYP/6-31++G~(**) level of theory indicate that solvating lithiated arginine with a single water molecule preferentially stabilizes the zwitterionic forms of this ion by 25—32 kJ/mol and two essentially isoenergetic zwitterionic structure are most stable. In these structures, the metal ion either coordinates with the N-terminal amino group and an oxygen atom of the carboxylate group (NO coordinated) or with both oxygen atoms of the carboxylate group (OO coordinated). In contrast, the OO-coordinated zwitterionic structure of sodiated arginine, both with and without a water molecule, is clearly lowest in energy for both ions. Hydration of the metal ion in these clusters weakens the interactions between the metal ion and the amino acid, whereas hydrogen-bond strengths are largely unaffected. Thus, hydration preferentially stabilizes the zwitterionic structures, all of which contain strong hydrogen bonds. Metal ion size strongly affects the relative propensity for these ions to form NO or OO coordinated structures and results in different zwitterionic structures for lithiated and sodiated arginine clusters containing one water molecule.
机译:使用红外光谱和计算化学研究了锂化精氨酸,磺化精氨酸和锂化精氨酸甲酯的单水合簇。尽管未溶剂化的锂化精氨酸是非两性离子的,但这些结果提供了令人信服的证据,即单个水分子与该离子的连接使精氨酸的两性离子形式更稳定,其中侧链被质子化。具有一个水分子的锂化和磺化精氨酸的实验光谱非常相似,并且包含质子化侧链的光谱特征,而锂化的精氨酸和单水合的锂化的精氨酸甲酯的光谱特征不同,并且包含中性侧链的光谱特征。在理论水平的B3LYP / 6-31 ++ G〜(**)处进行的计算表明,用一个水分子将锂化的精氨酸溶剂化可将离子的两性离子形式优先稳定在25-32 kJ / mol以及两个基本等能量的两性离子结构上最稳定。在这些结构中,金属离子或者与N-末端氨基和羧酸酯基团的氧原子配位(NO配位),或者与羧酸酯基团的两个氧原子配位(OO配位)。相比之下,无论有无水分子,精氨酸的OO配位两性离子结构的能量显然都最低。这些簇中金属离子的水合作用削弱了金属离子与氨基酸之间的相互作用,而氢键强度在很大程度上不受影响。因此,水合优先稳定两性离子结构,两性结构均包含强氢键。金属离子的大小强烈影响这些离子形成NO或OO配位结构的相对倾向,并导致含有一个水分子的锂化和磺化精氨酸簇的两性离子结构不同。

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