State Key Laboratory of Fine Chemicals, Frontiers Science Center for Smart Materials, Oriented Chemical Engineering, School of Chemical Engineering, Dalian University of Technology, Dalian, 116024, China.
Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, IL, 60208, USA.
Adv Mater. 2023 Nov;35(44):e2305163. doi: 10.1002/adma.202305163. Epub 2023 Sep 28.
The hydroxyl radical (•OH) is an extremely potent reactive oxygen species that plays a crucial role in photooxidations within the realm of hypoxic tumor therapy. However, the current methods for •OH photogeneration typically rely on inorganic materials that require UV/vis light excitation. Consequently, photogenerators based on organic molecules, especially those utilizing near-infrared (NIR) light excitation, are rare. In this study, the concept of photoinduced cascade charge transfer (PICET), which utilizes NIR heavy-atom-free photosensitizers (ANOR-Cy5) to generate •OH is introduced. The ANOR-Cy5 photosensitizer, with its flexible hydrophobic structure, enables the formation of nanoparticles in aqueous solutions through molecular assembly. PICET involves a symmetry-breaking charge separation-induced localized charge-separated state, transitioning to a delocalized charge-separated state, which governs the efficiency of •OH generation. Thanks to the oxygen-independent nature of •OH generation and its robust oxidative properties, the ANOR-Cy5-based photosensitizer demonstrates highly effective photoinduced anti-cancer effects, even under severely hypoxic conditions. This discovery emphasizes the potential for achieving •OH photogeneration using a single organic molecule through the engineering of molecular self-assembly, thereby opening up new possibilities for phototherapy and beyond.
羟基自由基(•OH)是一种极其强大的活性氧物种,在缺氧肿瘤治疗的光氧化过程中发挥着关键作用。然而,目前生成•OH 的光化学方法通常依赖于需要紫外/可见光激发的无机材料。因此,基于有机分子的光化学发生器,特别是利用近红外(NIR)光激发的光化学发生器非常少见。在本研究中,引入了利用 NIR 无重原子光敏剂(ANOR-Cy5)生成•OH 的光诱导级联电荷转移(PICET)概念。ANOR-Cy5 光敏剂具有灵活的疏水性结构,能够通过分子组装在水溶液中形成纳米颗粒。PICET 涉及打破对称的电荷分离诱导局部电荷分离态,向离域电荷分离态转变,这控制着•OH 生成的效率。由于•OH 生成的与氧无关的性质和其强大的氧化性质,基于 ANOR-Cy5 的光敏剂在严重缺氧条件下也表现出高效的光诱导抗癌效果。这一发现强调了通过分子自组装工程实现单一有机分子生成•OH 的潜力,为光疗及其他领域开辟了新的可能性。