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Plasmono-magnetic material for precise photothermal heating

机译:等离子体磁材料,用于精确的光热加热

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Noble metal nanoparticles have been extensively studied as photo-sensitive agents for photothermal cancer therapy. Precise control over the size and shape of the nanoparticles allowed strong optical absorption and efficient heat generation necessary for destroying a tumor to be achieved. However, one of the fundamental challenges of application of the nanoparticles towards photothermal cancer therapy is low specificity in the targeting tumor tissue in comparison with the healthy tissue and the resulting unfavorable biodistribution of the nanoparticles. Additional levels of control over particle distribution can be achieved by making the particles magnetic and using external magnets to control their accumulation in a tumor. Since the direct synthesis of particles with a magnetic core and a metallic shell limits the options for design and fine-tuning of plasmonic properties, the alternative approaches to the design of such materials have to be investigated. Here we propose and demonstrate a new design of a hybrid plasmono-magnetic material for photothermal heating created by grafting Au nanocages onto a surface of magnetic micro-beads. Next, we confirm its dual functionality in in vitro studies and show that individual hybrid particles can be magnetically controlled with a precision of a few micrometers and precisely destroy individual cells using plasmonic heating.
机译:贵金属纳米颗粒已被广泛研究用作光热癌症治疗的光敏剂。精确控制纳米颗粒的大小和形状可以实现强大的光吸收和有效的热生成,而这是破坏肿瘤所必需的。然而,将纳米颗粒用于光热癌症治疗的基本挑战之一是与健康组织相比,靶向肿瘤组织的特异性低,并且纳米颗粒的生物分布不利。通过使粒子具有磁性并使用外部磁体控制其在肿瘤中的积累,可以实现对粒子分布的控制。由于具有磁芯和金属壳的颗粒的直接合成限制了等离激元性质的设计和微调的选择,因此必须研究设计此类材料的替代方法。在这里,我们提出并演示了一种用于光热加热的杂化等离子体电磁材料的新设计,该材料是通过将Au纳米笼接枝到磁性微珠的表面上而产生的。接下来,我们在体外研究中证实了其双重功能,并表明可以以几微米的精度对单个混合粒子进行磁控制,并使用等离激元加热精确地破坏单个细胞。

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