Hildebrandt Lasse L, Preus Søren, Birkedal Victoria
Interdisciplinary Nanoscience Center (iNANO), Aarhus University, Aarhus, Denmark.
Faraday Discuss. 2015;184:131-42. doi: 10.1039/c5fd00100e. Epub 2015 Sep 29.
Förster resonance energy transfer (FRET) microscopy at the single molecule level has the potential to yield information on intra and intermolecular distances within the 2-10 nm range of molecules or molecular complexes that undergo frequent conformation changes. A pre-requirement for obtaining accurate distance information is to determine quantitative instrument independent FRET efficiency values. Here, we applied and evaluated a procedure to determine quantitative FRET efficiencies directly from individual fluorescence time traces of surface immobilized DNA molecules without the need for external calibrants. To probe the robustness of the approach over a wide range of FRET efficiencies we used a set of doubly labelled double stranded DNA samples, where the acceptor position was varied systematically. Interestingly, we found that fluorescence contributions arising from direct acceptor excitation following donor excitation are intrinsically taken into account in these conditions as other correction factors can compensate for inaccurate values of these parameters. We give here guidelines, that can be used through tools within the iSMS software (), for determining quantitative FRET and assess uncertainties linked with the procedure. Our results provide insights into the experimental parameters governing quantitative FRET determination, which is essential for obtaining accurate structural information from a wide range of biomolecules.
单分子水平的荧光共振能量转移(FRET)显微镜有潜力获取有关分子或分子复合物内部及分子间距离的信息,这些分子或分子复合物在2 - 10纳米范围内频繁发生构象变化。获得准确距离信息的一个先决条件是确定与仪器无关的定量FRET效率值。在此,我们应用并评估了一种直接从表面固定的DNA分子的单个荧光时间轨迹确定定量FRET效率的方法,无需外部校准物。为了在广泛的FRET效率范围内探究该方法的稳健性,我们使用了一组双标记双链DNA样本,其中受体位置系统地变化。有趣的是,我们发现在这些条件下,供体激发后直接受体激发产生的荧光贡献在本质上被考虑在内,因为其他校正因子可以补偿这些参数的不准确值。我们在此给出可通过iSMS软件()中的工具使用的指导方针,用于确定定量FRET并评估与该方法相关的不确定性。我们的结果为控制定量FRET测定的实验参数提供了见解,这对于从广泛的生物分子中获取准确的结构信息至关重要。