Department of Physics, School of Science, Tianjin Chengjian University, Tianjin 300384, China.
Department of Physics and Tianjin Key Laboratory of Low Dimensional Materials Physics and Preparing Technology, School of Sciences, Tianjin University, Tianjin 300350, China.
Biomater Sci. 2023 Feb 14;11(4):1153-1181. doi: 10.1039/d2bm01698b.
Photodynamic therapy (PDT) has been applied in cancer treatment because of its high selectivity, low toxicity, and non-invasiveness. However, the limited penetration depth of the light still hampers from reaching deep-seated tumors. Considering the penetrating ability of high-energy radiotherapy, X-ray-induced photodynamic therapy (X-PDT) has evolved as an alternative to overcome tissue blocks. As the basic principle of X-PDT, X-rays stimulate the nanoparticles to emit scintillating or persistent luminescence and further activate the photosensitizers to generate reactive oxygen species (ROS), which would cause a series of molecular and cellular damages, immune response, and eventually break down the tumor tissue. In recent years, catalytic nanosystems with unique structures and functions have emerged that can enhance X-PDT therapeutic effects an immune response. The anti-cancer effect of X-PDT is closely related to the following factors: energy conversion efficiency of the material, the radiation dose of X-rays, quantum yield of the material, tumor resistance, and biocompatibility. Based on the latest research in this field and the classical theories of nanoscience, this paper systematically elucidates the current development of the X-PDT and related immunotherapy, and highlights its broad prospects in medical applications, discussing the connection between fundamental science and clinical translation.
光动力疗法(PDT)因其高选择性、低毒性和非侵入性而被应用于癌症治疗。然而,光的有限穿透深度仍然阻碍了对深部肿瘤的治疗。考虑到高能放疗的穿透能力,X 射线诱导的光动力疗法(X-PDT)已经发展成为一种替代方法,以克服组织阻塞。作为 X-PDT 的基本原理,X 射线刺激纳米颗粒发出闪烁或持续发光,并进一步激活光敏剂产生活性氧物种(ROS),这将导致一系列分子和细胞损伤、免疫反应,并最终破坏肿瘤组织。近年来,具有独特结构和功能的催化纳米系统已经出现,能够增强 X-PDT 的治疗效果和免疫反应。X-PDT 的抗癌效果与以下因素密切相关:材料的能量转换效率、X 射线的辐射剂量、材料的量子产率、肿瘤耐药性和生物相容性。基于该领域的最新研究和纳米科学的经典理论,本文系统地阐述了 X-PDT 及相关免疫疗法的最新进展,并强调了其在医学应用中的广阔前景,讨论了基础科学与临床转化之间的联系。