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通过经典和非绝热分子动力学模拟合理化 DNA 发光探针的环境依赖光物理行为。

Rationalizing the environment-dependent photophysical behavior of a DNA luminescent probe by classical and non-adiabatic molecular dynamics simulations.

机构信息

Université Paris Cité and CNRS, ITODYS, 75006, Paris, France.

Institut de Chimie de Nice, UMR 7272, Université Côte d'Azur, CNRS, 06108, Nice, France.

出版信息

Photochem Photobiol Sci. 2023 Sep;22(9):2081-2092. doi: 10.1007/s43630-023-00431-3. Epub 2023 May 11.

Abstract

Environment-sensitive fluorescent nucleoside analogs are of utmost importance to investigate the structure of nucleic acids, their intrinsic flexibility, and sequence-specific DNA- and RNA-binding proteins. The latter play indeed a key role in transcription, translation as well as in the regulation of RNA stability, localization and turnover, and many other cellular processes. The sensitivity of the embedded fluorophore to polarity, hydration, and base stacking is clearly dependent on the specific excited-state relaxation mechanism and can be rationalized combining experimental and computational techniques. In this work, we elucidate the mechanisms leading to the population of the triplet state manifold for a versatile nucleobase surrogate, namely the 2-thienyl-3-hydroxychromone in gas phase, owing to non-adiabatic molecular dynamics simulations. Furthermore, we analyze its behavior in the B-DNA environment via classical molecular dynamics simulations, which evidence a rapid extrusion of the adenine facing the 2-thienyl-3-hydroxychromone nucleobase surrogate. Our simulations provide new insights into the dynamics of this family of chromophores, which could give rise to an integrated view and a fine tuning of their photochemistry, and namely the role of excited-state intramolecular proton transfer for the rational design of the next generation of fluorescent nucleoside analogs.

摘要

环境敏感型荧光核苷类似物对于研究核酸的结构、固有柔性以及序列特异性 DNA 和 RNA 结合蛋白至关重要。这些蛋白在转录、翻译以及 RNA 稳定性、定位和周转的调控等许多细胞过程中确实发挥着关键作用。嵌入荧光团对极性、水合作用和碱基堆积的敏感性显然取决于特定的激发态弛豫机制,并可以通过实验和计算技术相结合来合理化。在这项工作中,我们通过非绝热分子动力学模拟阐明了导致通用核苷类似物取代基,即 2-噻吩基-3-羟基色酮在气相中三重态态分布的机制。此外,我们通过经典分子动力学模拟分析了它在 B-DNA 环境中的行为,该模拟证明了腺嘌呤快速挤出面对 2-噻吩基-3-羟基色酮核苷类似物取代基。我们的模拟为这一类生色团的动力学提供了新的见解,这可能为它们的光化学提供一个综合的观点和精细的调整,即激发态分子内质子转移在设计下一代荧光核苷类似物中的作用。

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