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首页> 外文期刊>Journal of the American Chemical Society >Role Of Sequence In Salt-bridge Formation For Alkali Metalcationized Glyarg And Arggly Investigated With Irmpdrnspectroscopy And Theory
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Role Of Sequence In Salt-bridge Formation For Alkali Metalcationized Glyarg And Arggly Investigated With Irmpdrnspectroscopy And Theory

机译:序列在碱金属化甘氨酸盐桥形成中的作用并用红外光谱和理论研究

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摘要

The roles of hydrogen bonding, electrostatic interactions, sequence, gas-phase basicity, and molecular geometry in determining the structures of protonated and alkali metal-cationized glycyl-L-arginine (GlyArg) and L-arginylglycine (ArgGly) were investigated using infrared multiple photon dissociation spectroscopy in the spectral range 900-1800 cm~(-1) and theory. The IRMPD spectra clearly indicate that GlyArg·M~+, M = Li, Na, and Cs, form similar salt-bridge (SB) structures that do not depend significantly on metal ion size. In striking contrast, ArgGly·Li~+ exists in a charge-solvated (CS) form, whereas ArgGly·M~+, M = K and Cs, form SB structures. SB and CS structures are similarly populated for ArgGly·Na~+. Computed energies of low-energy structures are consistent with these results deduced from the experimental spectra. By comparison to Arg·M~+, GlyArg·M~+ and ArgGly·M~+ have a greater and lesser propensity, respectively, to form SB structures. The greater propensity for GlyArg to adopt SB structures in complexes with smaller metal cations than for ArgGly is due to the ability of alkali metal-cationized GlyArg to adopt a nearly linear arrangement of formal charge sites, a structure unfavorable for ArgGly complexes due to geometric constraints induced by its different amino acid sequence. The amide carbonyl oxygen solvates charge in both the SB and CS form of both dipeptides. ArgGly is calculated to be slightly more basic than GlyArg, indicating that differences in intrinsic basicity do not play a role in the relative SB stabilization of these ions. Loss of a neutral water molecule from complexes in which SB structures are most stable indicates that CS structures are intermediates in the dissociation pathway, but these intermediates do not contribute to the measured IRMPD spectra.
机译:研究了氢键,静电相互作用,序列,气相碱度和分子几何结构在确定质子化和碱金属阳离子化的甘氨酰-L-精氨酸(GlyArg)和L-精氨酸甘氨酸(ArgGly)的结构中的作用。 900-1800 cm〜(-1)光谱范围内的光子解离光谱学及理论研究。 IRMPD光谱清楚地表明,GlyArg·M〜+,M = Li,Na和Cs,形成相似的盐桥(SB)结构,而该结构并不显着依赖金属离子的大小。形成鲜明对比的是,ArgGly·Li〜+以电荷溶剂化(CS)的形式存在,而ArgGly·M〜+,M = K和Cs形成SB结构。对于ArgGly·Na〜+,SB和CS结构也类似。低能结构的计算能量与从实验光谱中得出的这些结果一致。与Arg·M〜+相比,GlyArg·M〜+和ArgGly·M〜+分别具有形成SB结构的倾向。与具有ArgGly的金属阳离子相比,GlyArg在具有较小金属阳离子的复合物中采用SB结构的倾向更大,这是由于碱金属阳离子化的GlyArg具有几乎线性排列的形式电荷位点的能力,由于几何约束,该结构不适用于ArgGly络合物由其不同的氨基酸序列诱导。酰胺羰基氧溶剂化物以两个二肽的SB和CS形式带电。计算得出的ArgGly比GlyArg的碱性略强,这表明内在碱性的差异在这些离子的相对SB稳定性中不起作用。 SB结构最稳定的络合物损失中性水分子表明CS结构是解离途径的中间体,但这些中间体对测量的IRMPD谱无贡献。

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