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Photorelaxation of imidazole and adenine via electron-driven proton transfer along H2O wires

机译:咪唑和腺嘌呤通过电子驱动质子沿H2O线的光弛豫

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Photochemically created pi sigma* states were classified among the most prominent factors determining the ultrafast radiationless deactivation and photostability of many biomolecular building blocks. In the past two decades, the gas phase photochemistry of pi sigma* excitations was extensively investigated and was attributed to N-H and O-H bond fission processes. However, complete understanding of the complex photorelaxation pathways of pi sigma* states in the aqueous environment was very challenging, owing to the direct participation of solvent molecules in the excited-state deactivation. Here, we present non-adiabatic molecular dynamics simulations and potential energy surface calculations of the photoexcited imidazole-(H2O)(5) cluster using the algebraic diagrammatic construction method to the second-order [ADC(2)]. We show that electron driven proton transfer (EDPT) along a wire of at least two water molecules may lead to the formation of a pi sigma*/S-0 state crossing, similarly to what we suggested for 2-aminooxazole. We expand on our previous findings by direct comparison of the imidazole-(H2O)(5) cluster to non-adiabatic molecular dynamics simulations of imidazole in the gas phase, which reveal that the presence of water molecules extends the overall excited-state lifetime of the chromophore. To embed the results in a biological context, we provide calculations of potential energy surface cuts for the analogous photorelaxation mechanism present in adenine, which contains an imidazole ring in its structure.
机译:光化学产生的pi sigma *状态被归类为决定许多生物分子构件的超快无辐射失活和光稳定性的最突出因素之一。在过去的二十年中,对pi sigma *激发的气相光化学进行了广泛研究,并将其归因于N-H和O-H键裂变过程。然而,由于溶剂分子直接参与激发态的失活,因此对水环境中πσ*态的复杂光弛豫途径的完整理解非常具有挑战性。在这里,我们使用二阶[ADC(2)]的代数图解法,介绍了光激发的咪唑-(H2O)(5)团簇的非绝热分子动力学模拟和势能面计算。我们表明,沿至少两个水分子的线的电子驱动质子转移(EDPT)可能导致pi sigma * / S-0态交叉的形成,类似于我们对2-氨基恶唑的建议。我们通过直接比较咪唑-(H2O)(5)团簇与气相中咪唑的非绝热分子动力学模拟来扩展先前的发现,这揭示了水分子的存在延长了分子的整体激发态寿命。发色团。为了将结果嵌入生物学环境中,我们提供了腺嘌呤中存在的类似光弛豫机制的势能面切割的计算,该腺嘌呤在其结构中包含一个咪唑环。

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