de Torres Juan, Ghenuche Petru, Moparthi Satish Babu, Grigoriev Victor, Wenger Jérôme
CNRS, Aix-Marseille Université, Centrale Marseille, Institut Fresnel, UMR 7249, 13013 Marseille (France).
Chemphyschem. 2015 Mar 16;16(4):782-8. doi: 10.1002/cphc.201402651. Epub 2015 Jan 13.
Zero-mode waveguides (ZMWs) can confine light into attoliter volumes, which enables single molecule fluorescence experiments at physiological micromolar concentrations. Of the fluorescence spectroscopy techniques that can be enhanced by ZMWs, Förster resonance energy transfer (FRET) is one of the most widely used in life sciences. Combining zero-mode waveguides with FRET provides new opportunities to investigate biochemical structures or follow interaction dynamics at micromolar concentrations with single-molecule resolution. However, prior to any quantitative FRET analysis on biological samples, it is crucial to establish first the influence of the ZMW on the FRET process. Here, we quantify the FRET rates and efficiencies between individual donor-acceptor fluorophore pairs that diffuse into aluminum zero-mode waveguides. Aluminum ZMWs are important structures thanks to their commercial availability and the large amount of literature that describe their use for single-molecule fluorescence spectroscopy. We also compared the results between ZMWs milled in gold and aluminum, and found that although gold has a stronger influence on the decay rates, the lower losses of aluminum in the green spectral region provide larger fluorescence brightness enhancement factors. For both aluminum and gold ZMWs, we observed that the FRET rate scales linearly with the isolated donor decay rate and the local density of optical states. Detailed information about FRET in ZMWs unlocks their application as new devices for enhanced single-molecule FRET at physiological concentrations.
零模波导(ZMWs)可以将光限制在阿托升的体积内,这使得在生理微摩尔浓度下进行单分子荧光实验成为可能。在可通过ZMW增强的荧光光谱技术中,Förster共振能量转移(FRET)是生命科学中应用最广泛的技术之一。将零模波导与FRET相结合,为在微摩尔浓度下以单分子分辨率研究生化结构或追踪相互作用动力学提供了新的机会。然而,在对生物样品进行任何定量FRET分析之前,首先确定ZMW对FRET过程的影响至关重要。在这里,我们量化了扩散到铝制零模波导中的单个供体-受体荧光团对之间的FRET速率和效率。铝制ZMW是重要的结构,这得益于它们的商业可用性以及大量描述其用于单分子荧光光谱的文献。我们还比较了在金和铝中铣削的ZMW之间的结果,发现尽管金对衰减速率的影响更强,但铝在绿色光谱区域的较低损耗提供了更大的荧光亮度增强因子。对于铝制和金制ZMW,我们都观察到FRET速率与孤立供体衰减速率和光学态的局部密度呈线性关系。有关ZMW中FRET的详细信息为其作为生理浓度下增强单分子FRET的新设备的应用打开了大门。