Predicting nonradiative decay barrier of BODIPY dye in polar environment by applying ONIOM multiscale method

IF 0.3 4区 物理与天体物理 Q4 PHYSICS, MULTIDISCIPLINARY Lithuanian Journal of Physics Pub Date : 2024-02-23 DOI:10.3952/physics.2024.64.1.2
D. Narkevičius, S. Toliautas
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Abstract

Fluorescent molecular sensors are widely used in biological research. They allow straightforward viscosity, temperature or polarity measurements at the microscopic level, including live cells. Maps of desired physical properties can be obtained by applying fluorescence lifetime imaging microscopy (FLIM) to cells. One of the most important properties of a cell is viscosity, as it affects other parameters, such as the rate of biochemical reactions and particle diffusion. Boron-dipyrromethene (BODIPY) compounds are widely used for viscosity measurements, but current variants have the undesirable sensitivity to polarity, and more suitable alternatives are being sought using theoretical computations. The polarizable continuum model (PCM) used in previous studies did not adequately take into account the influence of the polar environment when calculating the BODIPY activation energy associated with polarity sensitivity. After applying the multilayer ONIOM method in polar and non-polar environments, the calculated maximum wavelengths of the fluorescence spectra of the 8PhBODIPY compound were closer to the experimental results compared to PCM. The activation energy was also calculated, its value in polar and non-polar environments qualitatively corresponded to the experimental results, and the quantitative agreement was reached using the empirical correction.
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应用 ONIOM 多尺度方法预测极地环境中 BODIPY 染料的非辐射衰减屏障
荧光分子传感器广泛应用于生物研究。它们可以在微观层面(包括活细胞)直接测量粘度、温度或极性。通过对细胞应用荧光寿命成像显微镜(FLIM),可以获得所需的物理特性图。粘度是细胞最重要的特性之一,因为它会影响其他参数,如生化反应速率和粒子扩散。硼-二吡咯烷(BODIPY)化合物被广泛用于粘度测量,但目前的变体对极性的敏感性并不理想,因此正在利用理论计算寻找更合适的替代品。在计算与极性敏感性相关的 BODIPY 激活能时,以往研究中使用的可极化连续体模型 (PCM) 没有充分考虑极性环境的影响。在极性和非极性环境中应用多层 ONIOM 方法后,与 PCM 相比,计算出的 8PhBODIPY 化合物荧光光谱的最大波长更接近实验结果。此外,还计算了活化能,其在极性和非极性环境中的值与实验结果定性一致,并通过经验修正达到定量一致。
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来源期刊
Lithuanian Journal of Physics
Lithuanian Journal of Physics 物理-物理:综合
CiteScore
0.90
自引率
16.70%
发文量
21
审稿时长
>12 weeks
期刊介绍: The main aim of the Lithuanian Journal of Physics is to reflect the most recent advances in various fields of theoretical, experimental, and applied physics, including: mathematical and computational physics; subatomic physics; atoms and molecules; chemical physics; electrodynamics and wave processes; nonlinear and coherent optics; spectroscopy.
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