Zhang Yongkang, Zheng Jie, Jin Fangzhou, Xiao Jie, Lan Ni, Xu Zhiyuan, Yue Xu, Li Zesen, Li Chengzhi, Cao Donglin, Wang Yifei, Zhong Wenbin, Ran Yang, Guan Bai-Ou
Guangdong Provincial Key Laboratory of Optical Fiber Sensing and Communications, Institute of Photonics Technology, Jinan University, Guangzhou, China.
College of Physics & Optoelectronic Engineering, Jinan University, Guangzhou, China.
Light Sci Appl. 2024 Sep 3;13(1):228. doi: 10.1038/s41377-024-01586-z.
Chemotherapy is one of the conventional treatments for cancer in clinical practice. However, poor delivery efficiency, systemic toxicity, and the lack of pharmacokinetic monitoring during treatment are the critical limitations of current chemotherapy. Herein, we reported a brand-new antitumor drug delivery strategy that harnesses an optical fiber endoscopically therapeutic probe. The fiber probe carries photosensitizers in the fiber core and antitumor agents on the fiber surface mediated by a temperature-responsive hydrogel film, giving rise to an activable photothermal-chemotherapy that orchestrates the localized hyperthermia and thermal-stimuli drug release to the tumor lesion. Furthermore, the dynamical drug release and in-situ temperature can be real-time supervised through the built-in fiber sensors, including the reflective Mach-Zehnder interferometer and fiber Bragg grating, to visualize the therapy process and thus improve the safety of treatment. Compared with conventional methods, the fiber-optic drug delivery can adequately take advantage of the chemotherapeutics through collaboratively recruiting the photoheating-mediated enhanced permeability and the hydrogel particle-assisted high drug retention, shedding new light on a "central-to-peripheral" drug pervasion and retention mechanism to destroy tumors completely. The fiber-optic chemotherapy strategy incorporates precise drug delivery, accurate controllability of drug release, high drug permeability and retention in tumor, low off-target rate, and real-time drug release and temperature feedback, performing a straightforward and precise photothermal-chemotherapy pathway. More than that, the proposed strategy holds tremendous promise to provide a revolutionized on-demand drug delivery platform for the highly efficient evaluation and screening of antitumor pharmaceuticals.
化疗是临床实践中治疗癌症的传统方法之一。然而,当前化疗的关键局限性在于给药效率低下、全身毒性以及治疗过程中缺乏药代动力学监测。在此,我们报道了一种全新的抗肿瘤药物递送策略,该策略利用光纤内镜治疗探头。光纤探头在光纤芯中携带光敏剂,并通过温度响应水凝胶膜在光纤表面负载抗肿瘤药物,从而产生一种可激活的光热化疗,协调局部热疗和热刺激药物向肿瘤病变部位释放。此外,通过内置的光纤传感器,包括反射式马赫-曾德尔干涉仪和光纤布拉格光栅,可以实时监测动态药物释放和原位温度,以可视化治疗过程,从而提高治疗的安全性。与传统方法相比,光纤药物递送可以通过协同利用光热介导的增强通透性和水凝胶颗粒辅助的高药物滞留性,充分发挥化疗药物的优势,为“从中心到周边”的药物渗透和滞留机制提供了新的思路,从而彻底摧毁肿瘤。光纤化疗策略结合了精确的药物递送、药物释放的精确可控性、药物在肿瘤中的高渗透性和滞留性、低脱靶率以及实时药物释放和温度反馈,实现了直接而精确的光热化疗途径。不仅如此,所提出的策略有望为高效评估和筛选抗肿瘤药物提供一个革命性的按需药物递送平台。