光热治疗
纳米技术
胶体金
材料科学
纳米颗粒
光热效应
等离子体子
体内
化学工程
光电子学
生物
工程类
生物技术
作者
Ana Espinosa,Alberto Curcio,Sonia Engroba Cabana,Guillaume Radtke,Matthieu Bugnet,Jelena Kolosnjaj‐Tabi,Christine Péchoux,Carmen Alvarez‐Lorenzo,Gianluigi A. Botton,Amanda Silva,Ali Abou‐Hassan,Claire Wilhelm
出处
期刊:ACS Nano
[American Chemical Society]
日期:2018-06-15
卷期号:12 (7): 6523-6535
被引量:101
标识
DOI:10.1021/acsnano.8b00482
摘要
Despite their highly efficient plasmonic properties, gold nanoparticles are currently preferred to silver nanoparticles for biomedical applications such as photothermal therapy due to their high chemical stability in the biological environment. To confer protection while preserving their plasmonic properties, we allied the advantages of both materials and produced hybrid nanoparticles made of an anisotropic silver nanoplate core coated with a frame of gold. The efficiency of these hybrid nanoparticles (Ag@AuNPs) in photothermia was compared to monometallic silver nanoplates (AgNPs) or gold nanostars (AuNPs). The structural and functional properties of AuNPs, AgNPs, and Ag@AuNPs were investigated in environments of increasing complexity, in water suspensions, in cells, and in tumors in vivo. While AgNPs showed the greatest heating efficiency in suspension (followed by Ag@AuNPs and AuNPs), this trend was reversed intracellularly within a tissue-mimetic model. In this setup, AgNPs failed to provide consistent photothermal conversion over time, due to structural damage induced by the intracellular environment. Remarkably, the degraded Ag was found to be stored within the iron-storage ferritin protein. By contrast, the Au shell provided the Ag@AuNPs with total Ag biopersistence. As a result, photothermal therapy was successful with Ag@AuNPs in vivo in a mouse tumor model, providing the ultimate proof on Au shell's capability to shield the Ag core from the harsh biological environment and preserve its excellent heating properties.
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