2023Angewandte ChemieOpen access

Activatable Type I Photosensitizer with Quenched Photosensitization Pre and Post Photodynamic Therapy

Jianwu Tian, Bowen Li, Fu Zhang, Zhuo Yao, Wentao Song, Yufu Tang, Ping Yuan, Bin Liu

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Abstract

Abstract The phototoxicity of photosensitizers (PSs) pre and post photodynamic therapy (PDT), and the hypoxic tumor microenvironment are two major problems limiting the application of PDT. While activatable PSs can successfully address the PS phototoxicity pre PDT, and type I PS can generate reactive oxygen species (ROS) effectively in hypoxic environment, very limited approaches are available for addressing the phototoxicity post PDT. There is virtually no solution available to address all these issues using a single design. Herein, we propose a proof‐of‐concept on‐demand switchable photosensitizer with quenched photosensitization pre and post PDT, which could be activated only in tumor hypoxic environment. Particularly, a hypoxia‐normoxia cycling responsive type I PS TPFN‐AzoCF 3 was designed to demonstrate the concept, which was further formulated into TPFN‐AzoCF 3 nanoparticles (NPs) using DSPE‐PEG‐2000 as the encapsulation matrix. The NPs could be activated only in hypoxic tumors to generate type I ROS during PDT treatment, but remain non‐toxic in normal tissues, pre or after PDT, thus minimizing side effects and improving the therapeutic effect. With promising results in in vitro and in vivo tumor treatment, this presented strategy will pave the way for the design of more on‐demand switchable photosensitizers with minimized side effects in the future.

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Abstract The phototoxicity of photosensitizers (PSs) pre and post photodynamic therapy (PDT), and the hypoxic tumor microenvironment are two major problems limiting the application of PDT. While activatable PSs can successfully address the PS phototoxicity pre PDT, and type I PS can generate reactive oxygen species (ROS) effectively in hypoxic environment, very limited approaches are available for addressing the phototoxicity post PDT. There is virtually no solution available to address all these issues using a single design. Herein, we propose a proof‐of‐concept on‐demand switchable photosensitizer with quenched photosensitization pre and post PDT, which could be activated only in tumor hypoxic environment. Particularly, a hypoxia‐normoxia cycling responsive type I PS TPFN‐AzoCF 3 was designed to demonstrate the concept, which was further formulated into TPFN‐AzoCF 3 nanoparticles (NPs) using DSPE‐PEG‐2000 as the encapsulation matrix. The NPs could be activated only in hypoxic tumors to generate type I ROS during PDT treatment, but remain non‐toxic in normal tissues, pre or after PDT, thus minimizing side effects and improving the therapeutic effect. With promising results in in vitro and in vivo tumor treatment, this presented strategy will pave the way for the design of more on‐demand switchable photosensitizers with minimized side effects in the future.

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Available abstract

Abstract The phototoxicity of photosensitizers (PSs) pre and post photodynamic therapy (PDT), and the hypoxic tumor microenvironment are two major problems limiting the application of PDT. While activatable PSs can successfully address the PS phototoxicity pre PDT, and type I PS can generate reactive oxygen species (ROS) effectively in hypoxic environment, very limited approaches are available for addressing the phototoxicity post PDT. There is virtually no solution available to address all these issues using a single design. Herein, we propose a proof‐of‐concept on‐demand switchable photosensitizer with quenched photosensitization pre and post PDT, which could be activated only in tumor hypoxic environment. Particularly, a hypoxia‐normoxia cycling responsive type I PS TPFN‐AzoCF 3 was designed to demonstrate the concept, which was further formulated into TPFN‐AzoCF 3 nanoparticles (NPs) using DSPE‐PEG‐2000 as the encapsulation matrix. The NPs could be activated only in hypoxic tumors to generate type I ROS during PDT treatment, but remain non‐toxic in normal tissues, pre or after PDT, thus minimizing side effects and improving the therapeutic effect. With promising results in in vitro and in vivo tumor treatment, this presented strategy will pave the way for the design of more on‐demand switchable photosensitizers with minimized side effects in the future.

Key concepts: Phototoxicity, Photodynamic therapy, Photosensitizer, Chemistry, Reactive oxygen species, In vivo, Singlet oxygen, Limiting

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