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光激活诱导荧光团多功能偶联用于高效肿瘤治疗原位。

Photoactivation Inducing Multifunctional Coupling of Fluorophore for Efficient Tumor Therapy In Situ.

机构信息

Key Laboratory of Chemical Biology and Molecular Engineering of the Ministry of Education, Institute of Molecular Science, Shanxi University, Taiyuan, 030006, P. R. China.

Research Institute of Applied Chemistry, Shanxi University, Taiyuan, 030006, P. R. China.

出版信息

Adv Mater. 2024 Jun;36(23):e2314021. doi: 10.1002/adma.202314021. Epub 2024 Feb 23.

DOI:10.1002/adma.202314021
PMID:38359076
Abstract

Photoactivatable molecules, with high-precision spatialtemporal control, have largely promoted bioimaging and phototherapy applications of fluorescent dyes. Here, the first photoactivatable sensor (BI) is described that can be triggered by broad excitation light (405-660 nm), which further undergoes intersystem crossing and H-atom transfer processes to forming superoxide anion radicals (O ) and carbon radicals. Particularly, the photoinduced gain of carbon-centered radicals (BI•) allows for radical-radical coupling to afford the combined crosslink product (BI─BI), which would be oxidized in the presence of O to produce an extended conjugate system with near infrared emission (820 nm). Besides, the photochemically generated product (Cy─BI) possesses ultra-high photothermal conversion efficiency up to 90.9%, which optimized phototherapy potential. What's more, Western Blot assay reveals that both BI and the photoproduct Cy─BI can efficiently inhibit the expression of CHK1, and the irradiation of BI and Cy─BI further induces apoptosis and ultimately enhances the phototherapeutic effects. Thus, the combination of cell cycle block inducing apoptosis, photodynamic therapy and photothermal therapy treatments significantly suppress solid tumor in vivo antitumor efficacy explorations. This is a novel finding in developing photoactivatable molecules, as well as the broad applicability of photoimaging and phototherapy in tumor-related areas.

摘要

光激活分子具有高精度的时空控制能力,极大地促进了荧光染料在生物成像和光疗中的应用。在这里,我们首次描述了一种可以被宽激发光(405-660nm)触发的光激活传感器(BI),它进一步经历系间穿越和 H 原子转移过程,形成超氧阴离子自由基(O )和碳自由基。特别是,碳中心自由基(BI•)的光诱导增益允许自由基-自由基偶联,从而得到交联产物(BI─BI),在 O 的存在下,它会被氧化,产生具有近红外发射(820nm)的扩展共轭体系。此外,光化学生成的产物(Cy─BI)具有高达 90.9%的超高光热转换效率,优化了光疗潜力。更重要的是,Western Blot 分析表明,BI 和光产物 Cy─BI 都可以有效地抑制 CHK1 的表达,BI 和 Cy─BI 的辐照进一步诱导细胞凋亡,最终增强了光疗效果。因此,细胞周期阻断诱导细胞凋亡、光动力治疗和光热治疗的联合应用显著抑制了体内实体肿瘤的抗肿瘤疗效探索。这是开发光激活分子的一项新发现,以及光成像和光疗在肿瘤相关领域的广泛适用性。

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