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金纳米颗粒等离子体加热后其蛋白冠组成的变化。

Variation of protein corona composition of gold nanoparticles following plasmonic heating.

机构信息

Department of Chemistry, University of Illinois at Urbana-Champaign , 600 S. Mathews Avenue, Urbana, Illinois 61801, United States.

出版信息

Nano Lett. 2014 Jan 8;14(1):6-12. doi: 10.1021/nl403419e. Epub 2013 Dec 12.

Abstract

It is well recognized that the primary interaction of most biological environments with nanoparticles (NPs) is strongly influenced by a long-lived ("hard") protein corona that surrounds the NP and remains strongly adsorbed to its surface. The amount and composition of associated proteins in the corona adsorbed onto the NPs is related to several important factors, including the physicochemical properties of the NPs and the composition of the protein solution. Here, for the first time, it is shown that plasmonic heat induction (by laser activation) leads to significant changes in the composition of the hard protein corona adsorbed on low aspect ratio gold nanorods. Using mass spectrometry, several proteins in the corona were identified whose concentrations change most substantially as a result of photoinduced (plasmonic) heating versus simple thermal heating. Molecular modeling suggests that the origin of these changes in protein adsorption may be the result of protein conformational changes in response to much higher local temperatures that occur near the gold nanorods during photoinduced, plasmonic heating. These results may define new applications in vivo for NPs with hyperthermia capability and better define the likely interactions of cells with NPs after plasmonic heating. Potential changes in the protein corona following hyperthermia treatment may influence the final biological fate of plasmonic NPs in clinical applications and help elucidate safety considerations for hyperthermia applications.

摘要

人们普遍认识到,大多数生物环境与纳米颗粒(NPs)的主要相互作用强烈受围绕 NP 并仍然强烈吸附在其表面的长寿命(“硬”)蛋白质冠层的影响。吸附在 NPs 上的冠层中相关蛋白的数量和组成与几个重要因素有关,包括 NPs 的物理化学性质和蛋白质溶液的组成。在这里,首次表明等离子体热感应(通过激光激活)导致吸附在低纵横比金纳米棒上的硬蛋白冠层的组成发生显著变化。使用质谱法,鉴定了冠层中的几种蛋白质,其浓度由于光诱导(等离子体)加热与简单热加热相比变化最大。分子建模表明,这些蛋白质吸附变化的原因可能是由于蛋白质构象的变化,以响应在光诱导等离子体加热期间金纳米棒附近发生的更高局部温度。这些结果可能为具有热疗能力的 NPs 定义新的体内应用,并更好地定义细胞与等离子体加热后的 NPs 的可能相互作用。热疗处理后蛋白质冠层的潜在变化可能会影响等离子体 NPs 在临床应用中的最终生物学命运,并有助于阐明热疗应用的安全性考虑因素。

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