Hanzeng Cheng, Yanjun Wang, Jiaxue Zhang, Zhipeng Pei, Qin Yan, Zeyu Cai, Dan Zhang, Huilong Ma, Hao Liu, Dongxue Peng, Zimeng Gao, Hongyu Yuan, Bing Cui, Xiaojing Wang, Rui Wang, Luping Liu
Light-driven chemistry has revolutionized modern medicine, enabling precise disease detection and on-demand therapeutic interventions with high spatiotemporal accuracy. However, despite tremendous advances in bioorthogonal reactions, photoclick chemistry-based therapeutics remain as a challenge in vivo. To address this limitation, we have developed a multifunctional BODIPY-caged glucamine dihydrotetrazine (BGdTz) that integrates cancer-targeting, fluorescence imaging, and photoactivable tetrazine bioorthogonal chemistry. By targeting the overexpressed glucose transporter 1 (Glut1) on cancer cells, BGdTz specifically accumulates at the tumor site, leading to high-contrast fluorescence imaging of tumor in murine models. Subsequent irradiation of BGdTz with red light results in a spatialtemporal formation of glucamine-tetrazine. Furthermore, we have demonstrated an image-guided bioorthogonal prodrug activation between BGdTz and trans-cyclooctene caged doxorubicin, revealing potent antitumor efficacy and minimal systemic toxicity in A375 xenograft mouse models. In summary, we present a red light-controllable tetrazine bioorthogonal platform operable in mammals, offering a powerful tool for dual cancer diagnosis and therapy. We anticipate that this photouncaging-driven tetrazine ligation will open new avenues for precision medicine.