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Carboxyl-Catalyzed Prototropic Rearrangements in Histidine Peptide Radicals upon Electron Transfer: Effects of Peptide Sequence and Conformation

机译:组氨酸肽自由基在电子转移后的羧基催化质子重排:肽序列和构象的影响。

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摘要

We report an unusual prototropic rearrangement in gas-phase radicals formed by collisional electron transfer from cesium atoms to protonated peptides HAL, AHL, and ALH at 50 keV. The rearrangement depends on the peptide amino acid sequence and presence or steric accessibility of a free carboxyl group. Upon electron transfer, protonated HAL and ALH rearrange to tautomers that are detected as nondissociated anions in charge-reversal mass spectra. The isomerization is minor in protonated ALH and virtually absent in HAL amide. Electron structure calculations indicate that the gas-phase ions are preferentially protonated in the His imidazole ring and consist of multiple conformers that differ in their hydrogen bonding patterns. Electron transfer to protonated HAL and AHL triggers an exothermic and dynamically barrierless transfer of the carboxyl proton onto the C-2' position of the His ring that occurs on a 120-240 ns time scale. The kinetics of this isomerization are controlled by internal rotations in the radicals to assume conformations favoring the proton transfer. The radical conformations also affect subsequent proton migrations in zwitterionic His imidazoline intermediates that reform the COOH group and result in His ring isomerization. This autocatalytic prototropic rearrangement in gas-phase peptide radicals-is analogous to enzyme catalytic reactions involving His and acidic amino acid residues. In contrast to HAL and AHL, the C-2' position is sterically inaccessible in ALH radicals. These radicals undergo proton migrations to the His ring C-5' positions that have moderate energy barriers and are less efficient. RRKM calculations on the combined B3LYP and PMP2/6-311++G(2d,p) potential energy surface of the ground doublet electronic state of the peptide radicals provided rate constants that were quantitatively consistent with the dissociations observed in the gas phase. The formation of minor sequence z_1 and z_2 fragments from AHL was interpreted as occurring in the first excited state of the radical.
机译:我们报道了由铯原子碰撞电子转移到50 keV的质子化肽HAL,AHL和ALH形成的气相自由基中异常的质子重排。重排取决于肽氨基酸序列和游离羧基的存在或空间可及性。电子转移后,质子化的HAL和ALH重排为互变异构体,在电荷反转质谱图中检测为非离解阴离子。质子化的ALH中异构化很小,而HAL酰胺中几乎不存在。电子结构计算表明,气相离子优先在His咪唑环中质子化,并由氢键模式不同的多个构象体组成。电子转移到质子化的HAL和AHL会触发羧基质子在120-240 ns时间尺度上发生放热和动态无障碍转移到His环的C-2'位置。该异构化的动力学由自由基的内部旋转控制,以呈现有利于质子转移的构象。自由基构象还影响两性离子His咪唑啉中间体中随后的质子迁移,该中间体重整COOH基团并导致His环异构化。气相肽自由基中的这种自催化质子重排类似于涉及His和酸性氨基酸残基的酶催化反应。与HAL和AHL相比,ALH自由基在空间上无法接近C-2'位置。这些自由基经过质子迁移到具有中等能垒且效率较低的His C-5'环位置。对肽基团的双重态电子态的B3LYP和PMP2 / 6-311 ++ G(2d,p)势能面进行组合的RRKM计算提供了速率常数,该常数与在气相中观察到的解离在数量上是一致的。从AHL形成次要序列z_1和z_2片段的过程被解释为以自由基的第一激发态发生。

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  • 来源
    《Journal of the American Chemical Society》 |2009年第45期|16472-16487|共16页
  • 作者单位

    Department of Chemistry, Bagley Hall, Box 351700, University of Washington, Seattle, Washington 98195-1700, Department of Physics and Astronomy, Aarhus University, Aarhus, Denmark, and Department of Molecular Biophysics, German Cancer Research Center, Im Neuenheimer Feld 580, D-69120 Heidelberg, Germany;

    Department of Chemistry, Bagley Hall, Box 351700, University of Washington, Seattle, Washington 98195-1700, Department of Physics and Astronomy, Aarhus University, Aarhus, Denmark, and Department of Molecular Biophysics, German Cancer Research Center, Im Neuenheimer Feld 580, D-69120 Heidelberg, Germany;

    Department of Chemistry, Bagley Hall, Box 351700, University of Washington, Seattle, Washington 98195-1700, Department of Physics and Astronomy, Aarhus University, Aarhus, Denmark, and Department of Molecular Biophysics, German Cancer Research Center, Im Neuenheimer Feld 580, D-69120 Heidelberg, Germany;

    Department of Chemistry, Bagley Hall, Box 351700, University of Washington, Seattle, Washington 98195-1700, Department of Physics and Astronomy, Aarhus University, Aarhus, Denmark, and Department of Molecular Biophysics, German Cancer Research Center, Im Neuenheimer Feld 580, D-69120 Heidelberg, Germany;

    Department of Chemistry, Bagley Hall, Box 351700, University of Washington, Seattle, Washington 98195-1700, Department of Physics and Astronomy, Aarhus University, Aarhus, Denmark, and Department of Molecular Biophysics, German Cancer Research Center, Im Neuenheimer Feld 580, D-69120 Heidelberg, Germany;

    Department of Chemistry, Bagley Hall, Box 351700, University of Washington, Seattle, Washington 98195-1700, Department of Physics and Astronomy, Aarhus University, Aarhus, Denmark, and Department of Molecular Biophysics, German Cancer Research Center, Im Neuenheimer Feld 580, D-69120 Heidelberg, Germany;

    Department of Chemistry, Bagley Hall, Box 351700, University of Washington, Seattle, Washington 98195-1700, Department of Physics and Astronomy, Aarhus University, Aarhus, Denmark, and Department of Molecular Biophysics, German Cancer Research Center, Im Neuenheimer Feld 580, D-69120 Heidelberg, Germany;

    Department of Chemistry, Bagley Hall, Box 351700, University of Washington, Seattle, Washington 98195-1700, Department of Physics and Astronomy, Aarhus University, Aarhus, Denmark, and Department of Molecular Biophysics, German Cancer Research Center, Im Neuenheimer Feld 580, D-69120 Heidelberg, Germany;

    Department of Chemistry, Bagley Hall, Box 351700, University of Washington, Seattle, Washington 98195-1700, Department of Physics and Astronomy, Aarhus University, Aarhus, Denmark, and Department of Molecular Biophysics, German Cancer Research Center, Im Neuenheimer Feld 580, D-69120 Heidelberg, Germany;

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  • 入库时间 2022-08-18 03:17:29

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