Acceptor engineering-facilitated versatile AIEgen for mitochondria-targeted multimodal imaging-guided cancer photoimmunotherapy

光热治疗 材料科学 癌症 荧光 活性氧 癌细胞 电子受体 免疫疗法 纳米技术 癌症研究 生物物理学 光化学 化学 医学 生物化学 生物 光学 物理 内科学
作者
Zhe Sun,Haifei Wen,Zhijun Zhang,Weilin Xu,Mengni Bao,Mo Han,Xiumeng Hua,Jianlou Niu,Jiangping Song,Miaomiao Kang,Dong Wang,Wei He
出处
期刊:Biomaterials [Elsevier BV]
卷期号:301: 122276-122276 被引量:6
标识
DOI:10.1016/j.biomaterials.2023.122276
摘要

Photoimmunotherapy has been acknowledged to be an unprecedented strategy to obtain significantly improved cancer treatment efficacy. In this regard, the exploitation of high-performance multimodal phototheranostic agents is highly desired. Apart from tailoring electron donors, acceptor engineering is gradually rising as a deliberate approach in this field. Herein, we rationally designed a family of aggregation-induced emission (AIE)-active compounds with the same donors but different acceptors based on the acceptor engineering. Through finely adjusting the functional groups on electron acceptors, the electron affinity of electron acceptors and the conformation of the compounds were simultaneously modulated. It was found that one of the molecules (named DCTIC), bearing a moderately electrophilic electron acceptor and the best planarity, exhibited optimal phototheranostic properties in terms of light-harvesting ability, fluorescence emission, reactive oxygen species (ROS) production, and photothermal performance. For the purpose of amplified therapeutic outcomes, DCTIC was fabricated into tumor and mitochondria dual-targeted DCTIC nanoparticles (NPs), which afforded good performance in the fluorescence/photoacoustic/photothermal trimodal imaging-guided photodynamic/photothermal-synergized cancer immunotherapy with the combination of programmed cell death protein-1 (PD-1) antibody. Not only the primary tumors were totally eradicated, but efficient growth inhibition of distant tumors was also realized.

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