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通过等离子体壳的界面工程设计磁性-等离子体纳米粒子组装体用于靶向癌细胞成像和分离。

Design of Magnetic-Plasmonic Nanoparticle Assemblies via Interface Engineering of Plasmonic Shells for Targeted Cancer Cell Imaging and Separation.

机构信息

Department of Biomicrosystem Technology, Korea University, Seoul, 02481, Republic of Korea.

Research Institute of Engineering and Technology, BK21 Plus Center for Creative Materials and Components, Korea University, Seoul, 02481, Republic of Korea.

出版信息

Small. 2020 May;16(20):e2001103. doi: 10.1002/smll.202001103. Epub 2020 Apr 24.

DOI:10.1002/smll.202001103
PMID:32329574
Abstract

Magnetic-plasmonic nanoparticles have received considerable attention for widespread applications. These nanoparticles (NPs) exhibiting surface-enhanced Raman scattering (SERS) activities are developed due to their potential in bio-sensing applicable in non-destructive and sensitive analysis with target-specific separation. However, it is challenging to synthesize these NPs that simultaneously exhibit low remanence, maximized magnetic content, plasmonic coverage with abundant hotspots, and structural uniformity. Here, a method that involves the conjugation of a magnetic template with gold seeds via chemical binding and seed-mediated growth is proposed, with the objective of obtaining plasmonic nanostructures with abundant hotspots on a magnetic template. To obtain a clean surface for directly functionalizing ligands and enhancing the Raman intensity, an additional growth step of gold (Au) and/or silver (Ag) atoms is proposed after modifying the Raman molecules on the as-prepared magnetic-plasmonic nanoparticles. Importantly, one-sided silver growth occurred in an environment where gold facets are blocked by Raman molecules; otherwise, the gold growth is layer-by-layer. Moreover, simultaneous reduction by gold and silver ions allowed for the formation of a uniform bimetallic layer. The enhancement factor of the nanoparticles with a bimetallic layer is approximately 10 . The SERS probes functionalized cyclic peptides are employed for targeted cancer-cell imaging and separation.

摘要

磁性等离子体纳米粒子因其在生物传感方面的潜在应用而受到广泛关注,可应用于无损和敏感分析以及具有目标特异性的分离。然而,合成同时具有低剩余磁化强度、最大磁含量、等离子体覆盖丰富热点以及结构均匀性的这些纳米粒子具有挑战性。在这里,提出了一种通过化学结合将磁性模板与金种子连接的方法,并通过种子介导的生长来获得具有丰富热点的磁性模板上的等离子体纳米结构。为了获得用于直接功能化配体和增强拉曼强度的清洁表面,在制备好的磁性-等离子体纳米粒子上修饰拉曼分子后,提出了另外一个金(Au)和/或银(Ag)原子的生长步骤。重要的是,在金表面被拉曼分子阻断的环境中发生了单侧银生长;否则,金的生长是逐层进行的。此外,金和银离子的同时还原允许形成均匀的双金属层。具有双金属层的纳米粒子的增强因子约为 10。功能化的环状肽作为 SERS 探针用于靶向癌细胞成像和分离。

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