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Synthesis and photophysics of novel biocompatible fluorescent oxocines and azocines in aqueous solution

机译:新型生物相容性荧光氧肟酮和偶氮碱在水溶液中的合成与光物理

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摘要

The spectroscopic properties in water solution of the different prototropic forms of the strongly fluorescent hemiacetal 4,9-dihydroxy-1,2-dihydro-4,11a- methanooxocino[4,5-b]benzofuran-5(4H)-one (1a, monardine), the aza analogue 4,9-dihydroxy-3,4-dihydro-1H-4,11a-methanobenzofuro[2,3-d]azocin-5(2H)-one (2a, azamonardine) and the respective 2-carboxyl derivatives (1b, 2b) have been studied by experimental and quantum-chemical methods. Monardine and carboxymonardine are the major products of new fluorogenic, room-temperature reactions of hydroxytyrosol or salvianic acid in aqueous solution, respectively, and present unique photophysical properties. Near neutral pH (pKa = 7.2) monardine switches from a weakly emitting, UV-absorbing (382 nm) neutral species to a VIS-absorbing (426 nm), blue emitting (464 nm) anion form, with a fluorescence quantum yield φF = 1 and single-exponential decay τF = 2.74 ns. This binary-like spectroscopic change from the neutral to the anionic form was interpreted based on time-dependent density functional theory (TDDFT) calculations as due to (i) the reversal of (n,π*) and (π,π*) lowest-lying singlet excited states, and (ii) a change in the triplet-state distribution accompanying monardine ionization which may abolish de-excitation via intersystem crossing. A similar fluorogenic reaction takes place with catecholamines such as dopamine and DOPA, to yield fluorescent azocines 2a and 2b which, depending on pH, may be present as cationic, neutral or anionic species. TDDFT computations of these forms were also carried out to assign the corresponding excitation transitions and emission properties. Besides the analytical interest of the fluorogenic reactions, the photochemical stability and biocompatibility of the bright-dark pH-controlled molecular switches 1a and 1b may facilitate novel labels and probes to be developed for superresolution fluorescence microscopy.
机译:不同质子形式的强荧光半缩醛4,9-二羟基-1,2-二氢-4,11a-甲氧羰基[4,5-b]苯并呋喃-5(4H)-one(1a)在水溶液中的光谱性质,金刚烷胺),氮杂类似物4,9-二羟基-3,4-二氢-1H-4,11a-甲基苯并呋喃[2,3-d]偶氮星5(2H)-一个(2a,氮杂莫尼丁)和相应的2 -羧基衍生物(1b,2b)已经通过实验和量子化学方法进行了研究。莫纳丁和羧莫纳丁分别是水溶液中羟基酪醇或丹酚酸的新型荧光室温反应的主要产物,它们具有独特的光物理性质。接近中性pH(pKa = 7.2)的金刚烷胺从弱发射,吸收紫外线的(382 nm)中性物质切换为吸收VIS(426 nm),发射蓝光(464 nm)的阴离子形式,荧光量子产率φF= 1和单指数衰减τF= 2.74 ns。基于时间依赖性密度泛函理论(TDDFT)的计算,解释了这种从中性到阴离子形式的二元光谱变化,这是由于(i)最低(n,π*)和(π,π*)的反转-单线激发态,以及(ii)伴随山红石离子化的三重态分布变化,这可能会消除通过系统间交叉产生的去激发。与儿茶酚胺例如多巴胺和DOPA发生类似的荧光反应,以产生荧光偶氮化合物2a和2b,其取决于pH,可以阳离子,中性或阴离子形式存在。还进行了这些形式的TDDFT计算,以指定相应的激发跃迁和发射特性。除了对荧光反应的分析兴趣外,明暗pH值控制的分子开关1a和1b的光化学稳定性和生物相容性还可促进新型标记和探针的开发,以用于超分辨率荧光显微镜检查。

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