Applied Chemistry and Biochemical Engineering Course, Department of Engineering, Graduate School of Integrated Science and Technology, Shizuoka University, Hamamatsu, Shizuoka, Japan.
Department of Optoelectronics and Nanostructure Science, Graduate School of Science and Technology, Shizuoka University, Hamamatsu, Shizuoka, Japan.
Photochem Photobiol. 2022 Mar;98(2):434-441. doi: 10.1111/php.13517. Epub 2021 Sep 30.
DiethyleneglycoxyP(V)tetrakis(p-n-butoxyphenyl)porphyrin (EGP(V)TBPP) forms a self-aggregation in an aqueous solution, and the photoexcited state of this molecule was effectively deactivated. Association with human serum albumin (HSA), a water-soluble protein, causes dissociation of the self-aggregation, resulting in recovery of the photosensitizer activity of EGP(V)TBPP. Under visible light irradiation, EGP(V)TBPP photosensitized HSA oxidation. The photosensitized singlet oxygen-generating activity of EGP(V)TBPP was confirmed by near-infrared emission measurement. A singlet oxygen quencher, sodium azide, partially inhibited the HSA photodamage; however, the quenching effect was estimated to be 57%. Another 43% of the HSA photodamage could be explained by the electron transfer mechanism. The redox potential of EGP(V)TBPP and the calculated Gibbs energy of electron transfer from tryptophan to photoexcited EGP(V)TBPP demonstrated the possibility of HSA oxidation through electron extraction. Fluorescence lifetime measurements of EGP(V)TBPP verified the electron transfer from HSA. The photosensitizer activity of EGP(V)TBPP can be controlled through an association with biomolecules, such as protein, and the electron transfer-mediated biomolecule photooxidation plays an important role in photodynamic therapy under hypoxia.
二甘醇氧基 P(V) 四(对正丁氧基苯基)卟啉(EGP(V)TBPP)在水溶液中形成自聚集,该分子的光激发态被有效猝灭。与水溶性蛋白质人血清白蛋白(HSA)结合导致自聚集的解离,从而恢复 EGP(V)TBPP 的光敏剂活性。在可见光照射下,EGP(V)TBPP 敏化 HSA 氧化。通过近红外发射测量证实了 EGP(V)TBPP 的光致敏单线态氧生成活性。单线态氧猝灭剂叠氮化钠部分抑制了 HSA 的光损伤;然而,猝灭效应估计为 57%。HSA 光损伤的另外 43%可以通过电子转移机制来解释。EGP(V)TBPP 的氧化还原电位和从色氨酸到光激发的 EGP(V)TBPP 的电子转移计算吉布斯自由能表明通过电子提取 HSA 氧化的可能性。EGP(V)TBPP 的荧光寿命测量验证了 HSA 中的电子转移。通过与生物分子(如蛋白质)的结合可以控制 EGP(V)TBPP 的光敏剂活性,电子转移介导的生物分子光氧化在缺氧条件下的光动力治疗中起着重要作用。