Department of Physical Chemistry, University of Chemistry and Technology, Technická 5, Prague 6, Czech Republic.
Department of Chemistry, Faculty of Science, Masaryk University, Kamenice 5, 625 00 Brno, Czech Republic.
J Phys Chem A. 2020 Dec 17;124(50):10457-10471. doi: 10.1021/acs.jpca.0c08945. Epub 2020 Dec 7.
The photochemistry of bilirubin has been extensively studied due to its importance in the phototherapy of hyperbilirubinemia. In the present work, we investigated the ultrafast photodynamics of a bilirubin dipyrrinone subunit, vinylneoxanthobilirubic acid methyl ester. The photoisomerization and photocyclization reactions of its () and () isomers were studied using femtosecond transient absorption spectroscopy and by multireference electronic structure theory, where the nonadiabatic dynamics was modeled with a Landau-Zener surface hopping technique. The following picture has emerged from the combined theoretical and experimental approach. Upon excitation, dipyrrinone undergoes a very fast vibrational relaxation, followed by an internal conversion on a picosecond time scale. The internal conversion leads either to photoisomerization or regeneration of the starting material. Further relaxation dynamics on the order of tens of picoseconds was observed in the ground state. The nonadiabatic simulations revealed a strong conformational control of the photodynamics. The ultrafast formation of a cyclic photochemical product from a less-populated conformer of the studied subunit was predicted by our calculations. We discuss the relevance of the present finding for the photochemistry of native bilirubin. The work has also pointed to the limits of semiclassical nonadiabatic simulations for simulating longer photochemical processes, probably due to the zero-point leakage issue.
胆红素的光化学已经得到了广泛的研究,因为它在高胆红素血症的光疗中非常重要。在本工作中,我们研究了胆红素二吡咯酮亚基乙烯基去氧胆酸甲酯的超快光动力学。使用飞秒瞬态吸收光谱和多参考电子结构理论研究了其()和()异构体的光异构化和光环化反应,其中非绝热动力学用 Landau-Zener 表面跳跃技术进行了建模。通过综合理论和实验方法得出了以下结果。激发后,二吡咯酮经历了非常快速的振动弛豫,随后在皮秒时间尺度上发生内转换。内转换导致光异构化或起始物质的再生。在基态下观察到数十皮秒量级的进一步弛豫动力学。非绝热模拟揭示了光动力学的强构象控制。我们的计算预测了从研究亚基较少占据的构象超快形成环状光化学产物。我们讨论了本研究结果对天然胆红素光化学的相关性。该工作还指出了半经典非绝热模拟在模拟更长光化学过程中的局限性,这可能是由于零点能泄漏问题。