College of Chemistry and Chemical Engineering, Nanjing University, 210023, Nanjing, China.
Department of Radiology and Imaging Sciences, Emory University, Atlanta, GA, 30322, USA.
Nat Commun. 2024 Jan 2;15(1):153. doi: 10.1038/s41467-023-44429-y.
While performing oxygen-related tumour treatments such as chemotherapy and photodynamic therapy, real-time monitoring hypoxia of tumour is of great value and significance. Here, we design a theranostic combination for light-activated ratiometric hypoxia imaging, hypoxia modulating and prodrug activation. This combination consisted of an oxygen-sensitive near-infrared-emitting ratiometric phosphorescence probe and a hypoxia-activated prodrug-loaded covalent organic framework. In this combination, the probe plays two roles, including quantitative monitoring of oxygen concentration by ratiometric imaging and consuming the oxygen of tumour under light excitation by photodynamic therapy. Meanwhile, the enhanced hypoxia microenvironment of tumour can raise the cytotoxicity of prodrug loaded in covalent organic framework, resulting in boosting antitumour therapeutic effects in vivo. This theranostic combination can precisely provide therapeutic regime and screen hypoxia-activated prodrugs based on real-time tumour hypoxia level, offering a strategy to develop hypoxia mediated tumour theranostics with hypoxia targeted prodrugs.
在进行与氧相关的肿瘤治疗,如化疗和光动力治疗时,实时监测肿瘤缺氧具有重要的价值和意义。在这里,我们设计了一种用于光激活比率型缺氧成像、缺氧调节和前药激活的治疗组合。该组合由一个氧敏近红外发射比率型磷光探针和一个缺氧激活前药负载的共价有机骨架组成。在该组合中,探针发挥了两个作用,包括通过比率成像定量监测氧浓度,以及通过光动力治疗下的光激发消耗肿瘤中的氧。同时,肿瘤增强的缺氧微环境可以提高共价有机骨架中负载的前药的细胞毒性,从而增强体内抗肿瘤治疗效果。这种治疗组合可以根据实时肿瘤缺氧水平精确提供治疗方案并筛选缺氧激活前药,为开发基于缺氧靶向前药的缺氧介导肿瘤治疗提供了一种策略。