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采用多极树状大分子设计对 SOCT-ISC 型三苯胺-BODIPY 光敏剂进行修饰,用于光动力治疗和双光子荧光成像。

Modification of a SOCT-ISC type triphenylamine-BODIPY photosensitizer by a multipolar dendrimer design for photodynamic therapy and two-photon fluorescence imaging.

机构信息

School of Chemistry and Chemical Engineering, Southeast University, Nanjing 211189, China.

出版信息

Biomater Sci. 2023 Feb 14;11(4):1459-1469. doi: 10.1039/d2bm01838a.

Abstract

In this study, a series of multipolar triphenylamine-BODIPY photosensitizers T-BDP ( = 1, 2, 3) was synthesized. Compared with T-BDP of D-A configuration, the multipolar T-BDP dendrimer have higher singlet oxygen efficiency (44%), better fluorescence quantum yield (7.45%), and could be used in the simulated photodynamic therapy in A-549 cells and two-photon fluorescence imaging in zebrafish. The theoretical calculation and fs-transient absorption spectra indicated that the reason of its higher singlet oxygen efficiency was that the multipolar T-BDP dendrimer could generate more nearly degenerate charge transfer (CT) states and triplet states, which could further increase the possibility of spin-orbit charge-transfer intersystem crossing (SOCT-ISC) process. In the simulated photodynamic therapy of A-549 cells, T-BDP shows good cytocompatibility, great phototoxicity with its IC value of 3.17 μM, and could kill cancer cells effectively with the dosage of 5 μM under 10 min irradiation in the AO/EB double-staining experiment. In the fluorescence imaging of zebrafish, the experiment results indicate that T-BDP could generate superoxide radical (O˙) in the body of zebrafish and could be applied to the two-photon fluorescence imaging under 800 nm excitation. The above experiment results shown that the multipolar dendrimer design was an effective approach to improve the key parameters of SOCT-ISC-type BODIPY photosensitizer and was ready for further two-photon photodynamic therapy in organisms.

摘要

在这项研究中,合成了一系列多极三苯胺-BODIPY 敏化剂 T-BDP(=1,2,3)。与 D-A 构型的 T-BDP 相比,多极 T-BDP 树状大分子具有更高的单线态氧效率(44%)、更好的荧光量子产率(7.45%),可用于 A-549 细胞的模拟光动力疗法和斑马鱼的双光子荧光成像。理论计算和 fs 瞬态吸收光谱表明,其单线态氧效率较高的原因是多极 T-BDP 树状大分子可以产生更多的近乎简并的电荷转移(CT)态和三重态,从而进一步增加自旋轨道电荷转移系间窜越(SOCT-ISC)过程的可能性。在 A-549 细胞的模拟光动力疗法中,T-BDP 表现出良好的细胞相容性,其 IC 值为 3.17 μM 时具有很强的光毒性,在 AO/EB 双重染色实验中,以 5 μM 的剂量照射 10 分钟,可有效杀死癌细胞。在斑马鱼的荧光成像中,实验结果表明 T-BDP 可以在斑马鱼体内产生超氧自由基(O˙),并可以在 800nm 激发下进行双光子荧光成像。上述实验结果表明,多极树状大分子设计是提高 SOCT-ISC 型 BODIPY 敏化剂关键参数的有效方法,为进一步在生物体中进行双光子光动力治疗做好了准备。

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