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首页> 外文期刊>NPG Asia Materials >Controlled synthesis of a core-shell nanohybrid for effective multimodal image-guided combined photothermal/photodynamic therapy of tumors
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Controlled synthesis of a core-shell nanohybrid for effective multimodal image-guided combined photothermal/photodynamic therapy of tumors

机译:控制合成核 - 壳纳米冬冬冬冬 - 用于有效多峰图像引导的肿瘤的综合光热/光动力学治疗

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In this paper, a simple strategy is proposed to prepare a core-shell nanohybrid (PB@PCN) by the controllable coating of zirconium-porphyrin (PCN) shells on Prussian blue (PB) nanoparticles.By adjusting the thickness of the PCN shell, the PB@PCN nanohybrid with the best comprehensive performance was obtained for tumor treatment and imaging.The integrated nanosystem as a tandem catalyst is able to convert H2O2 to O2 through the PB core, and then the O2 is directly injected into the PCN framework, leading to a high quantum yield of singlet oxygen to kill tumor cells and attack heat shock proteins (HSPs).The nanohybrid was further camouflaged by a tumor cell membrane (PB@PCN@MEM) with good immune evasion and active targeting ability.Upon accumulation at the tumor site, PN@PCN@MEM showed an enhanced photodynamic therapeutic effect against hypoxic tumor cells.Furthermore, coupled with the photothermal therapy of PB, photothermal/photodynamic synergistic therapy of tumors can be realized.In addition, due to its excellent imaging performance, this core-shell nanohybrid can be employed for the multimodal image-guided therapy of tumors.Nanoparticles with a photothermal core surrounded by a porous photodynamic shell were optimized for imaging and treating tumors by researchers in China.Engineered nanoparticles, once injected into the body, can attach themselves to cancerous cells.Then, nanoparticles can produce cancer-destroying reactive oxygen species (ROS) for photodynamic therapy, and generate heat to kill the cancer with photothermal therapy.Nanoparticles can also help doctors to find and analyze the tumor.Xian-Zheng Zhang and colleagues from Wuhan University created core-shell nanoparticles of a core with catalase-like activity and photothermal conversion property encased in a shell capable of generating ROS.They then coated these in a tumor cell membrane to help the particles evade the body's immune system and be recognized by cancerous cells.They could optimize the photodynamic therapeutic performance of these nanoparticles by adjusting the thickness of shell.By developing a controlled synthesis approach, the PB@PCN nanohybrid with optimal thickness is obtained for tumor treatment and imaging.The core and shell of this multifunctional nanohybrid cooperate to achieve combined photothermal/photodynamic therapy of tumor.The PB@PCN nanohybrid is further camouflaged by tumor cell membrane to endow good immune evasion and active targeting ability.
机译:在本文中,提出了一种简单的策略,通过普鲁士蓝(PB)纳米颗粒上的锆 - 卟啉(PCN)壳的可控涂层制备核 - 壳纳米嗜含量(PB @ PCN)。调节PCN壳的厚度,获得了具有最佳综合性能的PB @ PCN纳米BRID用于肿瘤处理和成像。作为串联催化剂的集成纳米系统能够通过PB核将H 2 O 2转化为O 2,然后将O 2直接注入PCN框架中,引导杀毒细胞的高量子产率和攻击热休克蛋白(HSPS)。纳米冬次通过肿瘤细胞膜(PB @ PCN @ MEM)进一步伪装,具有良好的免疫逃避和主动靶向能力。累积在肿瘤部位,PN @ PCN @ MEM表现出对缺氧肿瘤细胞的增强的光动力治疗效果。加入PB的光热疗法,肿瘤的光热/光动力学协同疗法可以实现。 DDition由于其优异的成像性能,该核 - 烷纳米冬次含量可用于肿瘤的多峰图像引导治疗。用多孔光动力壳包围的光热核心进行了针对中国的研究人员进行了成像和治疗肿瘤的纳米颗粒。注射到体内的工程纳米粒子可以将自己固定在癌细胞上。然后,纳米颗粒可以产生癌症破坏的反应性氧物种(ROS),用于光动力治疗,并产生热量以杀死癌症与光热疗法。纳米粒子也可以帮助医生寻找和分析武汉大学的tum zh章及其同事,其中包含在能够产生ROS的壳体中包封的核心壳纳米颗粒的核心 - 壳纳米颗粒,然后在能够产生ROS的壳体中涂上这些肿瘤细胞膜帮助粒子逃避身体的免疫系统并被癌细胞识别。它们可以优化光通过调节壳体厚度的这些纳米颗粒的动态性治疗性能。通过显影控制合成方法,获得具有最佳厚度的Pb纳米嗜含量用于肿瘤处理和成像。该多功能纳米冬小麦的核心和壳合作,实现了混合光热/肿瘤的光动力学疗法。PB @ PCN纳米冬次组织通过肿瘤细胞膜进一步伪装,赋予良好的免疫逃避和活性靶向能力。

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