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在单氨基酸残基水平上对增强型绿色荧光蛋白中多光子吸收的量子化学研究。

Quantum chemistry study of the multiphoton absorption in enhanced green fluorescent protein at the single amino acid residue level.

作者信息

Grabarek Dawid, Andruniów Tadeusz

机构信息

Institute of Advanced Materials, Department of Chemistry, Wroclaw University of Science and Technology, Wyb. Wyspianskiego 27, 50-370, Wroclaw, Poland.

出版信息

Chemphyschem. 2022 Oct 19;23(20):e202200335. doi: 10.1002/cphc.202200335. Epub 2022 Sep 1.

DOI:10.1002/cphc.202200335
PMID:35875840
Abstract

The chromophore (CRO) of fluorescent proteins (FPs) is embedded in a complex environment that is a source of specific interactions with the CRO. Understanding how these interactions influence FPs spectral properties is important for a directed design of novel markers with desired characteristics. In this work, we apply computational chemistry methods to gain insight into one-, two- and three-photon absorption (1PA, 2PA, 3PA) tuning in enhanced green fluorescent protein (EGFP). To achieve this goal, we built EGFP models differing in: i) number and position of hydrogen-bonds (h-bonds) donors to the CRO and ii) the electric field, as approximated by polarizable force field, acting on the CRO. We find that h-bonding to the CRO's phenolate oxygen results in stronger one- and multiphoton absorption. The brighter absorption can be also achieved by creating more positive electric field near the CRO's phenolate moiety. Interestingly, while individual CRO - environment h-bonds usually enhance 1PA and 2PA, it takes a few h-bond donors to enhance 3PA. Clearly, response of the absorption intensity to many-body effects depends on the excitation mechanism. We further employ symmetry-adapted perturbation theory (SAPT) to reveal excellent (2PA) and good (3PA) correlation of multiphoton intensity with electrostatic and induction interaction energies. This points to importance of accounting for mutual CRO - environment polarization in quantitative calculations of absorption spectra in FPs.

摘要

荧光蛋白(FPs)的发色团(CRO)嵌入在一个复杂的环境中,该环境是与CRO发生特定相互作用的来源。了解这些相互作用如何影响FPs的光谱特性对于定向设计具有所需特性的新型标记物很重要。在这项工作中,我们应用计算化学方法来深入了解增强型绿色荧光蛋白(EGFP)中的单光子、双光子和三光子吸收(1PA、2PA、3PA)调谐。为实现这一目标,我们构建了不同的EGFP模型:i)与CRO形成氢键(h键)供体的数量和位置;ii)由可极化力场近似的作用于CRO的电场。我们发现,与CRO的酚盐氧形成氢键会导致更强的单光子和多光子吸收。在CRO的酚盐部分附近产生更多正电场也可以实现更强的吸收。有趣的是,虽然单个CRO-环境氢键通常会增强1PA和2PA,但需要几个氢键供体才能增强3PA。显然,吸收强度对多体效应的响应取决于激发机制。我们进一步采用对称适应微扰理论(SAPT)来揭示多光子强度与静电和诱导相互作用能之间的良好(2PA)和良好(3PA)相关性。这表明在FPs吸收光谱的定量计算中考虑CRO-环境相互极化的重要性。

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