Grimme Stefan, Bauer Christopher Alexander
Mulliken Center for Theoretical Chemistry, Institut für Physikalische und Theoretische Chemie der Rheinischen Friedrich- Wilhelms-Universität Bonn, Beringstr. 4, D-53115, Bonn, Germany.
Mulliken Center for Theoretical Chemistry, Institut für Physikalische und Theoretische Chemie der Rheinischen Friedrich-Wilhelms-Universität Bonn, Beringstr. 4, D-53115, Bonn, Germany.
Eur J Mass Spectrom (Chichester). 2015;21(3):125-40. doi: 10.1255/ejms.1313.
The gas-phase decomposition pathways of electron ionization (EI)-induced radical cations of the nucleobases uracil, thymine, cytosine, and guanine are investigated by means of mixed quantum-classical molecular dynamics. No preconceived fragmentation channels are used in the calculations. The results compare well to a plethora of experimental and theoretical data for these important biomolecules. With our combined stochastic and dynamic approach, one can access in an unbiased way the energetically available decomposition mechanisms. Additionally, we are able to separate the EI mass spectra of different tautomers of cytosine and guanine. Our method (previously termed quantum chemistry electron ionization mass spectra) reproduces free nucleobase experimental mass spectra well and provides detailed mechanistic in-sight into high-energy unimolecular decomposition processes.
通过混合量子经典分子动力学方法研究了尿嘧啶、胸腺嘧啶、胞嘧啶和鸟嘌呤等核碱基的电子电离(EI)诱导自由基阳离子的气相分解途径。计算中未使用预先设定的碎片化通道。结果与这些重要生物分子的大量实验和理论数据吻合良好。通过我们结合的随机和动态方法,可以以无偏差的方式获得能量上可行的分解机制。此外,我们能够区分胞嘧啶和鸟嘌呤不同互变异构体的EI质谱。我们的方法(以前称为量子化学电子电离质谱)能很好地重现游离核碱基的实验质谱,并为高能单分子分解过程提供详细的机理见解。