首页> 外文期刊>Talanta: The International Journal of Pure and Applied Analytical Chemistry >Facile synthesis of thiol and alkynyl contained SERS reporter molecular and its usage in assembly of polydopamine protected bioorthogonal SERS tag for live cell imaging
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Facile synthesis of thiol and alkynyl contained SERS reporter molecular and its usage in assembly of polydopamine protected bioorthogonal SERS tag for live cell imaging

机译:包含SERS报告分子的巯基和炔基的轻松合成及其在聚多巴胺保护的生物正交SERS标签组装中的用途,用于活细胞成像

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摘要

A bioorthogonal Raman reporter-embedded Au-core and polydopamine-shell nanoprobe was initially designed and synthesized for live cell surface-enhanced Raman scattering (SERS) imaging in Raman-silent region. The firstly synthetic bioorthogonal Raman reporter (E)-2-((4-(phenylethynyl) benzylidene) amino)ethanethiol (PBAT) provided intense Raman signal at 2220 cm(-1) in Raman-silent region. And its synthetic method was environmentally benign, high yield and easy in operation. In addition, the hydrophobicity of PBAT led to slightly aggregation of gold nanoparticles, which enhance the SERS intensity of the nanoprobe through hot spots. Furthermore, owing to the remarkable biocompatibility of polydopamine (PDA), the SERS nanoprobe can be smoothly internalized into cancer cells to realize SERS imaging in Raman-silent region. Finally, the SERS mapping results confirmed that nanoprobe exhibited strong SERS signal intensity, excellent stability in complex biological environment and low toxicity inside live cancer cells. Therefore, the reporter-embedded core-shell nanoprobe has enormous potential of applications in biomedical diagnostics in the near future. (C) 2016 Elsevier B.V. All rights reserved.
机译:最初设计并合成了一种生物正交的拉曼记者包埋的金核和聚多巴胺-壳纳米探针,用于在拉曼沉默区进行活细胞表面增强拉曼散射(SERS)成像。第一个合成的生物正交拉曼报告基因(E)-2-((4-(苯基乙炔基)亚苄基)氨基)乙硫醇(PBAT)在2220 cm(-1)的拉曼沉默区域提供了强烈的拉曼信号。其合成方法对环境无害,收率高,操作简便。另外,PBAT的疏水性导致金纳米颗粒的轻微聚集,从而通过热点增强了纳米探针的SERS强度。此外,由于聚多巴胺(PDA)具有出色的生物相容性,因此SERS纳米探针可以平滑地内化到癌细胞中,从而在拉曼沉默区域实现SERS成像。最后,SERS作图结果证实,纳米探针显示出很强的SERS信号强度,在复杂的生物环境中具有出色的稳定性以及在活癌细胞内的低毒性。因此,报道者嵌入的核-壳纳米探针在不久的将来在生物医学诊断中具有巨大的应用潜力。 (C)2016 Elsevier B.V.保留所有权利。

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