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Controlled positioning of analytes and cells on a plasmonic platform for glycan sensing using surface enhanced Raman spectroscopy

机译:使用表面增强拉曼光谱对分析物和细胞对糖粉感测的等离子体平台的控制定位

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摘要

The rise of molecular plasmonics and its application to ultrasensitive spectroscopic measurements has been enabled by the rational design and fabrication of a variety of metallic nanostructures. Advanced nano and microfabrication methods are key to the development of such structures, allowing one to tailor optical fields at the sub-wavelength scale, thereby optimizing excitation conditions for ultrasensitive detection. In this work, the control of both analyte and cell positioning on a plasmonic platform is enabled using nanofabrication methods involving patterning of fluorocarbon (FC) polymer (C _(4) F _(8) ) thin films on a plasmonic platform fabricated by nanosphere lithography (NSL). This provides the possibility to probe biomolecules of interest in the vicinity of cells using plasmon-mediated surface enhanced spectroscopies. In this context, we demonstrate the surface enhanced biosensing of glycan expression in different cell lines by surface enhanced Raman spectroscopy (SERS) on these plasmonic platforms functionalized with 4-mercaptophenylboronic acid (4-MPBA) as the Raman reporter. These cell lines include human embryonic kidney (HEK 293), C2C12 mouse myoblasts, and HeLa (Henrietta Lacks) cervical cancer cells. A distinct glycan expression is observed for cancer cells compared to other cell lines by confocal SERS mapping. This suggests the potential application of these versatile SERS platforms for differentiating cancerous from non-cancerous cells.
机译:通过合理的设计和各种金属纳米结构的合理设计和制造,可以实现分子血浆的升高及其在超敏光谱测量中。先进的纳米和微制造方法是这种结构的开发的关键,允许一个人定制亚波长刻度的光学场,从而优化用于超敏检测的激励条件。在这项工作中,使用涉及纳米末端制造的等离子体平台的氟碳化合物(C _(4)F _(8))薄膜(C _(4)F _(8))薄膜(C _(4)F _(8))薄膜的纳米制作方法,使得对等离子体平台进行分析物和细胞定位的控制。光刻(NSL)。这提供了使用等离子体介导的表面增强的光谱法探测细胞附近的生物分子。在这种情况下,我们通过表面增强的拉曼光谱(SERS)在用4-巯基苯基硼酸(4-MPBA)作为拉曼记者,通过表面增强的拉曼光谱(SERS)证明了不同细胞系中的聚糖表达的表面增强了生物沉积。这些细胞系包括人胚胎肾(HEK 293),C2C12小鼠肌细胞和HELA(Henrietta缺乏)宫颈癌细胞。与其他细胞系相比,通过共聚焦SERS测绘与其他细胞系相比,观察到不同的甘共表达。这表明这些通用SERS平台的潜在应用用于区分癌症免受非癌细胞的影响。

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