利用铱(III)硫酯配合物的氨基硫醇特异性产磷反应开发细胞内传感器和癌症光疗

IF 8.5 Q1 CHEMISTRY, MULTIDISCIPLINARY
Eunice Chiu-Lam Mak, Ziyong Chen, Lawrence Cho-Cheung Lee, Liang-Liang Yan, Vivian Wing-Wah Yam* and Kenneth Kam-Wing Lo*, 
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引用次数: 0

摘要

位点特异性生物偶联技术广泛应用于生物和生物医学领域,通过发光标记精确标记生物分子,从而直接可视化其细胞内动力学或与细胞毒性药物一起用于开发新的抗癌治疗方法。在这项工作中,设计了一系列具有硫酯部分的环金属化铱(III)多吡啶配合物,作为标记n端半胱氨酸(N-Cys)生物分子的新型产磷探针。这些硫酯配合物在溶液中是弱发射的,这是由于硫酯单元上存在一个低洼的非辐射扭曲的三态配体内(3IL)态,计算分析证实了这一点。然而,它们的发射强度和单线态氧(1O2)光敏化效率在与l-Cys反应后显著提高,这是由于猝灭的硫酯部分转化为非猝灭的酰胺单元。此外,硫酯配合物对N-Cys具有很高的选择性,并且由于具有吸电子性的铱(III)多吡啶部分,其反应活性显著增强。利用氨基硫醇诱导的显著发射和硫酯复合物的o2光敏化开启,开发了细胞内Cys传感器和可激活Cys光敏剂,用于癌症靶向光动力治疗。此外,选择一种硫酯配合物与各种n - cys修饰的肿瘤靶向肽反应,产生具有高1O2生成效率的光功能铱(III)肽偶联物。与MCF-7和HEK-293细胞相比,这些偶联物保留了原始肽的肿瘤靶向能力,并对MDA-MB-231细胞显示出高特异性,从而对这种三阴性乳腺癌细胞系产生选择性光细胞毒性。我们相信,我们的设计方法将激发新型发光硫酯基试剂的开发,用于生物偶联、生物成像和治疗应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Leveraging the Aminothiol-Specific Phosphorogenic Response of Iridium(III) Thioester Complexes for the Development of Intracellular Sensors and Cancer Phototherapeutics

Site-specific bioconjugation techniques are extensively utilized in biological and biomedical fields to precisely label biomolecules with luminescent tags for direct visualization of their intracellular dynamics or with cytotoxic agents for the development of novel anticancer therapeutics. In this work, a series of cyclometalated iridium(III) polypyridine complexes featuring a thioester moiety was designed as novel phosphorogenic probes for labeling N-terminal cysteine (N-Cys)-containing biomolecules. These thioester complexes were weakly emissive in solutions due to the presence of a low-lying nonradiative distorted triplet intraligand (3IL) state localized on the thioester unit, as elucidated by computational analyses. However, their emission intensities and singlet oxygen (1O2)-photosensitization efficiencies substantially increased upon reaction with l-Cys due to the conversion of the quenching thioester moiety to a nonquenching amide unit. Additionally, the thioester complexes exhibited high selectivity toward N-Cys and displayed significantly enhanced reactivity due to the electron-withdrawing iridium(III) polypyridine moiety. The remarkable aminothiol-induced emission and 1O2-photosensitization turn-on of the thioester complexes were exploited for the development of intracellular Cys sensors and Cys-activatable photosensitizers for cancer-targeted photodynamic therapy. Furthermore, one of the thioester complexes was selected to react with various N-Cys-modified tumor-targeting peptides, yielding photofunctional iridium(III)–peptide conjugates with high 1O2 generation efficiencies. These conjugates retained the tumor-targeting capabilities of the original peptides and showed high specificity for MDA-MB-231 cells compared to MCF-7 and HEK-293 cells, resulting in selective photocytotoxicity toward this triple-negative breast cancer cell line. We believe that our design approach will inspire the development of novel luminogenic thioester-based reagents for bioconjugation, bioimaging, and therapeutic applications.

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