核黄素生物正交光催化激活抗癌前药

Xin Yang, Limin Ma, H. Shao, Xia Ling, M. Yao, Guowen Luo, Stefano Scoditti, E. Sicilia, G. Mazzone, Meng Gao, B. Tang
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引用次数: 0

摘要

癌症的化学疗法通常靶向能力差,副作用严重。为了提高治疗效率和减少副作用,最近提出了高时空分辨率的光活化化疗用于精确治疗癌症。然而,大多数可光活化的前药需要化学计量的可光裂解基团修饰,这些基团只对紫外线照射有反应,并且反应效率低。为了应对这些挑战,我们在此提出了一种以核黄素为催化剂的生物正交光催化活化策略,用于将前药二氢白屈菜红素(DHCHE)前药原位转化为抗癌药物白屈菜白素(CHE),其可以在光照下有效杀死癌症细胞并抑制体内肿瘤生长。同时,通过绿-红荧光转化原位监测DHCHE向CHE的光催化转化,可用于精确控制治疗剂量。通过密度泛函理论(DFT)计算,对光催化机理进行了充分的探讨。我们相信这种成像引导的生物正交光催化激活策略在癌症化疗的临床应用中是有前景的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bioorthogonal Photo-Catalytic Activation of an Anti-Cancer Prodrug by Riboflavin
Chemotherapies for cancer treatment usually suffer from poor targeting ability and serious side-effects. To improve the treatment efficiency and reduce side effects, photoactivatable chemotherapy has been recently proposed for precise cancer treatment with high spatiotemporal resolution. However, most photoactivatable prodrugs require decoration by stoichiometric photo-cleavable groups, which are only responsive to ultraviolet irradiation and suffer from low reaction efficiency. To tackle these challenges, we herein propose a bioorthogonal photo-catalytic activation strategy with riboflavin as the catalyst for in situ transformation of prodrug dihydrochelerythrine (DHCHE) prodrug into anti-cancer drug chelerythrine (CHE), which can efficiently kill cancer cells and inhibit in vivo tumor growth under light irradiation. Meanwhile, the photo-catalytic transformation from DHCHE into CHE was in situ monitored by green-to-red fluorescence conversion, which can be used for precise control of the therapeutic dose. The photocatalytic mechanism was also fully explored by means of density functional theory (DFT) calculations. We believe this imaging-guided bioorthogonal photo-catalytic activation strategy is promising for cancer chemotherapy in clinical applications.
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