Harada Takaaki, McTernan Hamish L, Pham Duc-Truc, Lincoln Stephen F, Kee Tak W
Department of Chemistry, The University of Adelaide , Adelaide, South Australia 5005, Australia.
J Phys Chem B. 2015 Feb 12;119(6):2425-33. doi: 10.1021/jp507272f. Epub 2014 Oct 2.
Curcumin is a biologically active polyphenol and a yellow pigment extracted from turmeric. Our previous study has shown effective encapsulation of curcumin using diamide linked γ-cyclodextrin dimers, namely 66γCD2su and 66γCD2ur, through cooperative 1:1 host-guest complexation. In this study, the excited-state dynamics of curcumin complexed with either 66γCD2su or 66γCD2ur in water are investigated using femtosecond transient absorption spectroscopy. Both 66γCD2su-curcumin and 66γCD2ur-curcumin complexes in water show only an excited-state absorption (ESA) band at 530 nm without any stimulated emission (SE) signals, indicating non-radiative decays as the major relaxation pathways. The ESA dynamics of 66γCD2su-curcumin are similar to those of 66γCD2ur-curcumin, consisting of a rapid growth component and three decay components. The growth component, which has a time constant of 0.25-0.41 ps, is assigned to solvent reorganization. The relatively fast decay components with time constants of 9.3-21.8 ps show significant deuterium isotope effect, consistent with the presence of excited-state intramolecular hydrogen atom transfer (ESIHT) of curcumin. The small-amplitude and slow decay components may be attributed to the dynamics of complexed curcumin and molecular motions due to flexibility of 66γCD2su and 66γCD2ur. In addition, transient absorption anisotropy measurements reveal slow rotational motions of 66γCD2su-curcumin and 66γCD2ur-curcumin complexes. The overall results show that complexation in 66γCD2su and 66γCD2ur has pronounced effects on the photophysics of curcumin.
姜黄素是一种具有生物活性的多酚类物质,是从姜黄中提取的黄色色素。我们之前的研究表明,通过1:1的主客体协同络合作用,使用二酰胺连接的γ-环糊精二聚体(即66γCD2su和66γCD2ur)能够有效地包封姜黄素。在本研究中,利用飞秒瞬态吸收光谱研究了姜黄素与66γCD2su或66γCD2ur在水中络合物的激发态动力学。66γCD2su-姜黄素和66γCD2ur-姜黄素在水中的络合物在530nm处仅显示一个激发态吸收(ESA)带,没有任何受激发射(SE)信号,这表明非辐射衰变是主要的弛豫途径。66γCD2su-姜黄素的ESA动力学与66γCD2ur-姜黄素相似,由一个快速增长成分和三个衰减成分组成。时间常数为0.25-0.41ps的增长成分归因于溶剂重组。时间常数为9.3-21.8ps的相对快速衰减成分显示出显著的氘同位素效应,这与姜黄素存在激发态分子内氢原子转移(ESIHT)一致。小幅度和缓慢衰减成分可能归因于络合姜黄素的动力学以及由于66γCD2su和66γCD2ur的柔韧性导致分子运动。此外,瞬态吸收各向异性测量揭示了66γCD2su-姜黄素和66γCD2ur-姜黄素络合物的缓慢旋转运动。总体结果表明,66γCD2su和66γCD2ur中的络合作用对姜黄素的光物理性质有显著影响。