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Optimizing FRET on Aluminum Surfaces via Controlled Attachment of Fluorescent Dyes

机译:通过控制荧光染料的附着来优化铝表面的FRET

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F?rster resonance energy transfer (FRET) between fluorescent dyes is a frequently applied technique for analyzing concentrations and conformations of biomolecules. Optimizing FRET by controlled dye-surface functionalization is an important requirement to develop sensors based on surface–biomolecule interactions. Here, we investigate the silanization of silica with aminosilanes ((3-aminopropyl)triethoxysilane, APTES) and their subsequent functionalization with commercial organic fluorophores (ATTO-550 and ATTO-647N) for controlling the fluorescence intensity and FRET interaction between the dyes. Owing to the growing application of aluminum in plasmonics and the possibility to enhance FRET with aluminum nanostructures, we used plasma-enhanced atomic layer deposition (PEALD) to cover aluminum layers with thin silica coatings (~4 nm) as a prototypical system to apply and characterize our controlled APTES–dye functionalization procedure. Detailed spectroscopic and fluorescence imaging analyses were used to optimize the silanization, control the dye functionalization, and rule out aluminum-related fluorescence quenching. The optimized protocol was then used to attach both dyes on the same surface, which enabled efficient FRET. As PEALD is in principle applicable to different substrates, we believe that our controlled FRET-functionalization approach may be adaptable to many other surfaces and nanostructures and may become a useful tool to advance the development of fluorescence biosensors.
机译:荧光染料之间的共振共振能量转移(FRET)是分析生物分子的浓度和构象的一种常用技术。通过控制染料表面功能化来优化FRET是开发基于表面-生物分子相互作用的传感器的重要要求。在这里,我们研究了氨基硅烷((3-氨基丙基)三乙氧基硅烷,APTES)对二氧化硅的硅烷化作用,以及随后它们与商业有机荧光团(ATTO-550和ATTO-647N)的官能化作用,以控制染料之间的荧光强度和FRET相互作用。由于铝在等离子波技术中的应用不断增长,并且有可能利用铝纳米结构增强FRET,因此我们使用了等离子体增强原子层沉积(PEALD)来覆盖具有薄二氧化硅涂层(〜4 nm)的铝层,以此作为原型系统进行应用和表征我们受控的APTES-染料功能化程序。详细的光谱和荧光成像分析用于优化硅烷化,控制染料功能化并排除铝相关的荧光猝灭。然后使用优化的方案将两种染料附着在同一表面上,从而实现了高效的FRET。由于PEALD原则上适用于不同的基材,因此我们认为受控的FRET功能化方法可能适用于许多其他表面和纳米结构,并且可能成为促进荧光生物传感器发展的有用工具。

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