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Azobenzene as a photoregulator covalently attached to RNA: a quantum mechanics/molecular mechanics-surface hopping dynamics study

机译:偶氮苯作为光调节剂共价附于RNA:量子力学/分子力学-表面跳跃动力学研究

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摘要

The photoregulation of nucleic acids by azobenzene photoswitches has recently attracted considerable interest in the context of emerging biotechnological applications. To understand the mechanism of photoinduced isomerisation and conformational control in these complex biological environments, we employ a Quantum Mechanics/Molecular Mechanics (QM/MM) approach in conjunction with nonadiabatic Surface Hopping (SH) dynamics. Two representative RNA–azobenzene complexes are investigated, both of which contain the azobenzene chromophore covalently attached to an RNA double strand via a β-deoxyribose linker. Due to the pronounced constraints of the local RNA environment, it is found that trans-to-cis isomerization is slowed down to a time scale of ∼10–15 picoseconds, in contrast to 500 femtoseconds in vacuo, with a quantum yield reduced by a factor of two. By contrast, cis-to-trans isomerization remains in a sub-picosecond regime. A volume-conserving isomerization mechanism is found, similarly to the pedal-like mechanism previously identified for azobenzene in solution phase. Strikingly, the chiral RNA environment induces opposite right-handed and left-handed helicities of the ground-state cis-azobenzene chromophore in the two RNA–azobenzene complexes, along with an almost completely chirality conserving photochemical pathway for these helical enantiomers.
机译:在新兴的生物技术应用中,偶氮苯光开关对核酸的光调节最近引起了相当大的兴趣。要了解在这些复杂的生物环境中光诱导的异构化和构象控制的机理,我们结合非绝热表面跳变(SH)动力学采用了量子力学/分子力学(QM / MM)方法。研究了两种代表性的RNA-偶氮苯配合物,它们都包含通过β-脱氧核糖接头共价连接至RNA双链的偶氮苯生色团。由于局部RNA环境的明显限制,发现反式至顺式异构化的速度减慢到约10-15皮秒的时间尺度,而真空中则为500飞秒,量子产率降低了10%。两倍。相比之下,顺式至反式异构化仍处于亚皮秒级状态。发现了体积节省的异构化机理,类似于先前在溶液相中发现的偶氮苯的踏板状机理。引人注目的是,手性RNA环境在两个RNA-偶氮苯络合物中诱导了基态顺式-偶氮苯发色团的右手和左手相反的螺旋,以及这些螺旋对映体几乎完全保留手性的光化学途径。

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