On the Influence of Water on the Electronic Structure of Firefly Oxyluciferin Anions from Absorption Spectroscopy of Bare and Monohydrated Ions in Vacuo

被引:46
|
作者
Stochkel, Kristian [1 ]
Hansen, Christian Nygaard [1 ]
Houmoller, Jorgen [1 ]
Nielsen, Lisbeth Munksgaard [1 ]
Anggara, Kelvin [1 ]
Linares, Mathieu [2 ]
Norman, Patrick [2 ]
Nogueira, Fernando [3 ]
Maltsev, Oleg V. [4 ]
Hintermann, Lukas [4 ]
Nielsen, Steen Brondsted [1 ]
Naumov, Pance [5 ,6 ,7 ]
Milne, Bruce F. [3 ]
机构
[1] Aarhus Univ, Dept Phys & Astron, DK-8000 Aarhus C, Denmark
[2] Linkoping Univ, Dept Phys Chem & Biol IFM, Div Computat Phys, SE-58183 Linkoping, Sweden
[3] Univ Coimbra, Dept Phys, Ctr Computat Phys, P-3004516 Coimbra, Portugal
[4] Tech Univ Munich, Dept Chem, D-85748 Garching, Germany
[5] New York Univ Abu Dhabi, Abu Dhabi, U Arab Emirates
[6] Kyoto Univ, Inst Chem Res, Uji, Kyoto 6110011, Japan
[7] Kyoto Univ, Hakubi Ctr Adv Res, Uji, Kyoto 6110011, Japan
基金
瑞典研究理事会;
关键词
DENSITY-FUNCTIONAL THEORY; COUPLED-CLUSTER METHODS; COLOR-TUNING MECHANISM; BIOLUMINESCENCE; LUCIFERASE; LIGHT; DYNAMICS; SPECTRA; CHEMILUMINESCENCE; CHEMISTRY;
D O I
10.1021/ja311400t
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
A complete understanding of the physics underlying the varied colors of firefly bioluminescence remains elusive because it is difficult to disentangle different enzyme-lumophore interactions. Experiments on isolated ions are useful to establish a proper reference when there are no microenvironmental perturbations. Here, we use action spectroscopy to compare the absorption by the firefly oxyluciferin lumophore isolated in vacuo and complexed with a single water molecule. While the process relevant to bioluminescence within the luciferase cavity is light emission, the absorption data presented here provide a unique insight into how the electronic states of oxyluciferin are altered by microenvironmental perturbations. For the bare ion we observe broad absorption with a maximum at 548 +/- 10 nm, and addition of a water molecule is found to blue-shift the absorption by approximately 50 nm (0.23 eV). Test calculations at various levels of theory uniformly predict a blue-shift in absorption caused by a single water molecule, but are only qualitatively in agreement with experiment highlighting limitations in what can be expected from methods commonly used in studies on oxyluciferin. Combined molecular dynamics simulations and time-dependent density functional theory calculations closely reproduce the broad experimental peaks and also indicate that the preferred binding site for the water molecule is the phenolate oxygen of the anion. Predicting the effects of microenvironmental interactions on the electronic structure of the oxyluciferin anion with high accuracy is a nontrivial task for theory, and our experimental results therefore serve as important benchmarks for future calculations.
引用
收藏
页码:6485 / 6493
页数:9
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