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首页> 外文期刊>Theranostics >Near-infrared light-regulated cancer theranostic nanoplatform based on aggregation-induced emission luminogen encapsulated upconversion nanoparticles
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Near-infrared light-regulated cancer theranostic nanoplatform based on aggregation-induced emission luminogen encapsulated upconversion nanoparticles

机译:基于聚集诱导的发光原包裹的上转换纳米粒子的近红外光调节癌症治疗纳米平台

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摘要

Photodynamic therapy (PDT) has been widely applied in the clinic for the treatment of various types of cancer due to its precise controllability, minimally invasive approach and high spatiotemporal accuracy as compared with conventional chemotherapy. However, the porphyrin-based photosensitizers (PSs) used in clinics generally suffer from aggregation-caused reductions in the generation of reactive oxygen species (ROS) and limited tissue penetration because of visible light activation, which greatly hampers their applications for the treatment of deep-seated tumors. Methods : We present a facile strategy for constructing a NIR-regulated cancer theranostic nanoplatform by encapsulating upconversion nanoparticles (UCNPs) and a luminogen (2-(2,6-bis((E)-4-(phenyl(40-(1,2,2-triphenylvinyl)-[1,10-biphenyl]-4-yl)amino)styryl)-4H-pyran-4-ylidene)malononitrile, TTD) with aggregation-induced emission (AIEgen) characteristics using an amphiphilic polymer, and further conjugating cyclic arginine-glycine-aspartic acid (cRGD) peptide to yield UCNP@TTD-cRGD NPs. We then evaluated the bioimaging and anti-tumor capability of the UCNP@TTD-cRGD NPs under NIR light illumination in an in vitro three-dimensional (3D) cancer spheroid and in a murine tumor model, respectively. Results : With a close match between the UCNP emission and absorption of the AIEgen, the synthesized NPs could efficiently generate ROS, even under excitation through thick tissues. The NIR-regulated UCNP@TTD-cRGD NPs that were developed could selectively light up the targeted cancer cells and significantly inhibit tumor growth during the NIR-regulated PDT treatment as compared with the cells under white light excitation. Conclusion : In summary, the synthesized UCNP@TTD-cRGD NPs showed great potential in NIR light-regulated photodynamic therapy of deep-seated tumors. Our study will inspire further exploration of novel theranostic nanoplatforms that combine UCNPs and various AIEgen PSs for the advancement of deep-seated tumor treatments with potential clinical translations.
机译:由于光动力疗法(PDT)与常规化学疗法相比具有精确的可控制性,微创方法和较高的时空准确性,因此已在临床上广泛用于治疗各种类型的癌症。但是,由于可见光的激活,临床上使用的基于卟啉的光敏剂(PSs)通常会因活性氧(ROS)的生成而聚集减少,并且由于可见光的活化而组织渗透受限,这极大地阻碍了它们在深层治疗中的应用。肿瘤。方法:我们提出了一种通过包封上转换纳米粒子(UCNPs)和发光剂(2-(2,6-bis((E)-4-(phenyl(40-(1, (2,2-三苯基乙烯基)-[1,10-联苯基] -4-基)氨基)苯乙烯基)-4H-吡喃-4-亚烷基)丙二腈(TTD),具有使用两亲聚合物的聚集诱导发射(AIEgen)特性,进一步缀合环状精氨酸-甘氨酸-天冬氨酸(cRGD)肽以产生UCNP @ TTD-cRGD NP。然后,我们分别在体外三维(3D)癌症球体和鼠类肿瘤模型中评估了NIR光照下UCNP @ TTD-cRGD NP的生物成像和抗肿瘤能力。结果:UCNP的发射与AIEgen的吸收紧密匹配,即使在厚组织的激发下,合成的NP也可以有效产生ROS。与在白光激发下的细胞相比,NIR调控的UCNP @ TTD-cRGD NPs可以选择性地点亮目标癌细胞并在NIR调控的PDT处理过程中显着抑制肿瘤生长。结论:总的来说,合成的UCNP @ TTD-cRGD NPs在近红外肿瘤的近红外光调节光动力疗法中显示出巨大的潜力。我们的研究将启发进一步探索结合UCNPs和各种AIEgen PSs的新型治疗学纳米平台,以促进具有潜在临床翻译意义的深层肿瘤治疗。

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