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磁增强细胞内活性氧的产生用于磁光动力学治疗。

Magnetically Boosted Generation of Intracellular Reactive Oxygen Species toward Magneto-Photodynamic Therapy.

机构信息

Key Laboratory of Photochemistry, Key Laboratory for Structural Chemistry of Unstable and Stable Species, Beijing National Laboratory for Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China.

Basic Medical Science, Shenyang Medical College, Shenyang 110034, China.

出版信息

J Phys Chem B. 2022 Mar 10;126(9):1895-1903. doi: 10.1021/acs.jpcb.2c00143. Epub 2022 Mar 1.

Abstract

The generation of reactive oxygen species (ROS) in photodynamic therapy (PDT) involves excited-state intermediates with both singlet and triplet spin configurations, which provides possibilities to modulate the ROS production in PDT under an external magnetic field. Here, we present that magnetically modulated ROS production can promote PDT efficacy and develop a magnetic-field-assisted PDT (magneto-PDT) method for effectively and selectively killing cancer cells. The photosensitization reaction between excited-state riboflavin and oxygen molecules is influenced by the applied field, and the overall magnetic field effect (MFE) shows a moderate increase at a low field (<1000 G) and then a boost up to the saturation ∼100% at a high field (>1000 G). It is found that the spin precession occurring in radical ion pairs (electron transfer from riboflavin to oxygen) facilitates the O generation at the low field. In comparison, the spin splitting in an encounter complex (energy transfer from riboflavin to oxygen) benefits the production of O species at the high field. The field modulation on the two types of ROS in PDT, i.e., O and O, is also demonstrated in living cells. The magneto-PDT strategy shows the capability to inhibit the proliferation of cancer cells (e.g., HeLa, RBL-2H3, and MCF-7) effectively and selectively, which reveals the potential of using the MFE on chemical reactions in biological applications.

摘要

在光动力疗法 (PDT) 中,活性氧 (ROS) 的产生涉及具有单重态和三重态自旋构型的激发态中间体,这为在外部磁场下调节 PDT 中的 ROS 产生提供了可能性。在这里,我们提出了磁场调节 ROS 产生可以提高 PDT 疗效,并开发了一种磁场辅助 PDT(磁 PDT)方法,以有效和选择性地杀死癌细胞。在磁场作用下,受激核黄素与氧分子之间的光致反应受到影响,整体磁场效应 (MFE) 在低场 (<1000 G) 下适度增加,然后在高场 (>1000 G) 下增加到约 100%的饱和。研究发现,自由基离子对(电子从核黄素转移到氧)中发生的自旋进动有利于低场中 O 的生成。相比之下,在遭遇复合物(核黄素向氧的能量转移)中发生的自旋分裂有利于高场中 O 物种的生成。在活细胞中也证明了 PDT 中两种类型的 ROS(即 O 和 O )的磁场调节。磁 PDT 策略表现出有效和选择性抑制癌细胞(如 HeLa、RBL-2H3 和 MCF-7)增殖的能力,这揭示了在生物应用中利用化学反应的 MFE 的潜力。

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