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首页> 外文期刊>Advanced Science >Synthesis and Optimization of MoS 2 @Fe 3 O 4 -ICG/Pt(IV) Nanoflowers for MR/IR/PA Bioimaging and Combined PTT/PDT/Chemotherapy Triggered by 808 nm Laser
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Synthesis and Optimization of MoS 2 @Fe 3 O 4 -ICG/Pt(IV) Nanoflowers for MR/IR/PA Bioimaging and Combined PTT/PDT/Chemotherapy Triggered by 808 nm Laser

机译:用于MR / IR / PA生物成像以及808 nm激光触发的PTT / PDT /化学联合治疗的MoS 2 @Fe 3 O 4 -ICG / Pt(IV)纳米花的合成与优化

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摘要

Abstract Elaborately designed biocompatible nanoplatforms simultaneously achieving multimodal bioimaging and therapeutic functions are highly desirable for modern biomedical applications. Herein, uniform MoS 2 nanoflowers with a broad size range of 80?¢????180 nm have been synthesized through a facile, controllable, and scalable hydrothermal method. The strong absorbance of MoS 2 nanoflowers at 808 nm imparts them with high efficiency and stability of photothermal conversion. Then a novel multifunctional composite of MoS 2 @Fe 3 O 4 -ICG/Pt(IV) (labeled as Mo@Fe-ICG/Pt) is designed by covalently grafting Fe 3 O 4 nanoparticles with polyethylenimine (PEI) functionalized MoS 2 , and then loading indocyanine green molecules (ICG, photosensitizers) and platinum (IV) prodrugs (labeled as Pt(IV) prodrugs) on the surface of MoS 2 @Fe 3 O 4 . The resulting Mo@Fe-ICG/Pt nanocomposites can achieve excellent magnetic resonance/infrared thermal/photoacoustic trimodal biomaging as well as remarkably enhanced antitumor efficacy of combined photothermal therapy, photodynamic therapy, and chemotherapy triggered by a single 808 nm NIR laser, thus leading to an ideal nanoplatform for cancer diagnosis and treatment in future.
机译:摘要精心设计的生物相容性纳米平台能够同时实现多峰生物成像和治疗功能,对于现代生物医学应用来说是非常需要的。在此,已经通过简便,可控和可扩展的水热法合成了具有在80nm〜180nm范围内的宽尺寸范围的均匀的MoS 2纳米花。 MoS 2纳米花在808 nm处的强吸收性使它们具有高效率和光热转换稳定性。然后,通过将聚乙烯亚胺(PEI)官能化的MoS 2共价接枝Fe 3 O 4纳米粒子,设计出一种新型的MoS 2 @Fe 3 O 4 -ICG / Pt(IV)多功能复合材料(标记为Mo @ Fe-ICG / Pt)。然后将吲哚菁绿色分子(ICG,光敏剂)和铂(IV)前药(标记为Pt(IV)前药)加载到MoS 2 @Fe 3 O 4的表面上。所产生的Mo @ Fe-ICG / Pt纳米复合材料可以实现出色的磁共振/红外热/光声三峰生物成像,并通过单个808 nm NIR激光触发的光热疗法,光动力疗法和化学疗法的联合应用显着提高抗肿瘤功效,从而引领未来用于癌症诊断和治疗的理想纳米平台。

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