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用于高效光热疗法的近红外吸收二吡咯亚甲基 J 聚集体

Near-Infrared absorbing J-Aggregates of boron dipyrromethene for high efficient photothermal therapy.

作者信息

Xia Jinxiu, Li Zhensheng, Xie Zhigang, Zheng Min

机构信息

School of Chemistry and Life Science, Advanced Institute of Materials Science, Changchun University of Technology, 2055 Yanan Street, Changchun, Jilin 130012, PR China.

Key Laboratory of Chemo/Biosensing and Detection, School of Chemistry and Chemical Engineering, Xuchang University, 88 Bayi Road, Xuchang 461000, PR China.

出版信息

J Colloid Interface Sci. 2021 Oct;599:476-483. doi: 10.1016/j.jcis.2021.04.086. Epub 2021 Apr 24.

Abstract

Constructing bioactive materials remains a big challenge through the aggregates of molecules. Herein, a boron dipyrromethene (BODIPY) derivative containing three nitro groups (BDP-(NO)) was synthesized, which displays the characteristic of J-aggregate with pronounced red-shifted absorption in nonpolar solvent and aqueous media. The bathochromic shift from 635 to 765 nm facilitates photothermal transition upon the irradiation of near-infrared (NIR) light. Interestingly, BDP-(NO) nanoparticles (NPs) fabricated from BDP-(NO) and poly(oxyethylene)-poly(oxypropylene) copolymer (F-127), still exhibit obvious J-aggregate, which possess the merits of hydrophilicity, NIR absorption, high photothermal conversion efficiency, excellent biosafety, and can behave as unique candidates for photothermal therapy. In vitro and in vivo experiments validate that BDP-(NO) NPs can effectively suppress the proliferation of cancer cells and lead to tumor ablation. This assembly method would be a generic and efficient mode for reasonable design of functional nanomaterials, and could inspire more study on aggregates of organic molecules.

摘要

通过分子聚集体构建生物活性材料仍然是一个巨大的挑战。在此,合成了一种含有三个硝基的硼二吡咯亚甲基(BODIPY)衍生物(BDP-(NO)),其在非极性溶剂和水性介质中表现出具有明显红移吸收的J-聚集体特征。从635纳米到765纳米的红移有助于在近红外(NIR)光照射下发生光热转变。有趣的是,由BDP-(NO)和聚(氧乙烯)-聚(氧丙烯)共聚物(F-127)制备的BDP-(NO)纳米颗粒(NPs)仍表现出明显的J-聚集体,具有亲水性、近红外吸收、高光热转换效率、优异的生物安全性等优点,可作为光热疗法的独特候选材料。体外和体内实验证实,BDP-(NO) NPs能有效抑制癌细胞增殖并导致肿瘤消融。这种组装方法将是合理设计功能纳米材料的一种通用且有效的模式,并可能激发更多关于有机分子聚集体的研究。

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