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辅酶 NADH 中的亚 100 飞秒能量转移是一个相干过程,由电荷转移态辅助。

Sub-100-fs energy transfer in coenzyme NADH is a coherent process assisted by a charge-transfer state.

机构信息

Dipartimento di Chimica industriale "Toso Montanari", Università di Bologna, Viale del Risorgimento 4, 40136, Bologna, Italy.

ICMol, Universidad de Valencia, Catedrático José Beltrán Martínez, 2, 46980, Paterna, Spain.

出版信息

Nat Commun. 2024 Jun 8;15(1):4900. doi: 10.1038/s41467-024-48871-4.

Abstract

Excitation energy transfer (EET) is a key photoinduced process in biological chromophoric assemblies. Here we investigate the factors which can drive EET into efficient ultrafast sub-ps regimes. We demonstrate how a coherent transport of electronic population could facilitate this in water solvated NADH coenzyme and uncover the role of an intermediate dark charge-transfer state. High temporal resolution ultrafast optical spectroscopy gives a 54±11 fs time constant for the EET process. Nonadiabatic quantum dynamical simulations computed through the time-evolution of multidimensional wavepackets suggest that the population transfer is mediated by photoexcited molecular vibrations due to strong coupling between the electronic states. The polar aqueous solvent environment leads to the active participation of a dark charge transfer state, accelerating the vibronically coherent EET process in favorably stacked conformers and solvent cavities. Our work demonstrates how the interplay of structural and environmental factors leads to diverse pathways for the EET process in flexible heterodimers and provides general insights relevant for coherent EET processes in stacked multichromophoric aggregates like DNA strands.

摘要

激发能量转移 (EET) 是生物发色团组装体中的关键光诱导过程。在这里,我们研究了可以将 EET 驱动到高效超快亚皮秒(ps)范围内的因素。我们展示了电子种群的相干输运如何促进水溶剂化 NADH 辅酶中的这种情况,并揭示了中间暗电荷转移态的作用。高时间分辨率超快光学光谱给出了 EET 过程的 54±11fs 时间常数。通过多维波包的时演变计算的非绝热量子动力学模拟表明,由于电子态之间的强耦合,电子激发分子振动介导了种群转移。极性水溶剂环境导致暗电荷转移态的积极参与,从而在有利堆叠构象和溶剂腔中加速了与振动相干的 EET 过程。我们的工作表明,结构和环境因素的相互作用如何导致灵活杂二聚体中 EET 过程的不同途径,并为 DNA 链等堆叠多色团聚集物中相干 EET 过程提供了一般性见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aaf5/11162464/b8b4f195af4e/41467_2024_48871_Fig1_HTML.jpg

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