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Metal-enhanced Intrinsic Fluorescence of Proteins on Silver Nanostructured Surfaces towards Label-Free Detection

机译:金属增强的蛋白质在银纳米结构表面上的固有荧光对无标记检测

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摘要

In recent years metal-enhanced fluorescence (MEF) using silver particles has been reported for a number of fluorophores emitting at visible wavelengths. However it was generally thought that silver particles would always quench fluorescence at shorter wavelengths. We now report the observation of metal-enhanced fluorescence of the tryptophan analogue N-acetyl-L-tryptophanamide (NATA) on silver nano-structured surfaces. NATA is a model for the intrinsic tryptophan emission from proteins. We have also studied the effects of silver nanostructures on the emission of N-acetyl-L-tyrosinamide (NATA-tyr). In the case of NATA we observed increased emission, decrease in fluorescence lifetimes, and increase in photostability when NATA was embedded in 15 nm thick spin-casted poly(vinyl alcohol) film on silver nanostructured surfaces. We have also investigated the effects of silver nanostructures on the emission from thin poly(vilnyl alcohol) films containing NATA-tyr. However, we have observed no increase in fluorescence signal for NATA-tyr on silver nanostructures. To understand these results we performed numerical calculations using the Finite-Difference Time-Domain (FDTD) technique to model a tryptophan-wavelength dipole near a spherical silver particle. Our calculations reveal an enhancement of the power of the radiated emission by the excited-state fluorophore in proximity to a 100 nm silver nanoparticle covering the emission spectra of NATA and NATA-tyr. These calculations show a clear wavelength dependence with the specific spectral region displaying low-enhancement at the shorter NATA-tyr wavelength and higher enhancement at NATA emission wavelength. Our FDTD calculations also reveal that excited fluorophores in the near-field of a 100 nm silver nanoparticle can induce enhancement fields of varying degrees of the intensity of the near-fields around the particle that is dependent on the wavelength of the emission. We believe this enhanced near-fields play a role in our observation of MEF from metal surfaces. The enhanced emission of NATA on silver nanostructures suggests that the extension of MEF to the UV region opens new possibilities to study tryptophan-containing proteins without labeling with longer wavelength fluorophores towards label free detection of biomolecules.
机译:近年来,已报道了使用银颗粒的金属增强荧光(MEF),用于在可见波长处发射的许多荧光团。然而,通常认为银颗粒将总是在较短波长下猝灭荧光。现在我们报告在银纳米结构表面上色氨酸类似物N-乙酰基-L-色氨酸酰胺(NATA)的金属增强荧光的观察。 NATA是蛋白质固有色氨酸发射的模型。我们还研究了银纳米结构对N-乙酰基-L-酪氨酸酰胺(NATA-tyr)发射的影响。在NATA的情况下,当NATA嵌入银纳米结构表面的15 nm厚的自旋浇铸的聚乙烯醇薄膜中时,我们观察到发射增加,荧光寿命降低和光稳定性增加。我们还研究了银纳米结构对包含NATA-tyr的薄聚乙烯醇薄膜的发射的影响。但是,我们没有观察到银纳米结构上NATA-tyr的荧光信号增加。为了理解这些结果,我们使用有限差分时域(FDTD)技术进行了数值计算,以模拟球形银粒子附近的色氨酸波长偶极子。我们的计算表明,受激发态的荧光团在覆盖了NATA和NATA-tyr发射光谱的100 nm银纳米粒子附近增强了辐射发射的功率。这些计算显示出明显的波长依赖性,特定光谱区域在较短的NATA-tyr波长处显示出低增强,而在NATA发射波长处显示出较高的增强。我们的FDTD计算结果还表明,在100 nm银纳米粒子的近场中激发的荧光团可以诱导粒子周围的近场强度变化程度的增强场,这取决于发射的波长。我们相信,这种增强的近场在我们从金属表面观察MEF方面发挥了作用。 NATA在银纳米结构上的发射增强表明,MEF延伸至紫外线区域为研究含色氨酸的蛋白质提供了新的可能性,而无需使用较长波长的荧光团进行标记即可实现无标记生物分子的检测。

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