Asai Naoto, Schmidt Katharina, Aktuğ Gizem, Fossati Stefan, Sladek Juraj, Lynn N Scott, Dostalek Jakub
LiST - Laboratory for Life Sciences and Technology, Danube Private University, Viktor Kaplan-Straße 2, Wiener Neustadt, 2700, Austria.
FZU-Institute of Physics, Czech Academy of Sciences, Na Slovance 2, Prague, 182 21, Czech Republic.
Small Methods. 2025 Aug;9(8):e2500037. doi: 10.1002/smtd.202500037. Epub 2025 Apr 10.
Here a novel digital bioassay readout concept is reported that does not rely on enzymatic amplification nor compartmenting of an analyzed liquid sample. Rather, it is based on counting individual affinity-captured target biomolecules via the use of a tethered catalytic hairpin assembly (tCHA) deployed on a solid sensor surface with spatial confinement utilized by a flexible polymer linker (FPL). Wide-field plasmon-enhanced fluorescence (PEF) imaging is employed for optical real-time probing of the reaction kinetics, where affinity-captured target molecules are manifested as spatially distinct bright fluorescent spots. The effect of the length of the FPLs is investigated, and the analytical performance of the dual amplification tCHA-PEF concept is tested by using a model short single-stranded DNA analyte. When applied in a sandwich immunoassay, the detection of target proteins at sub-femtomolar concentrations is demonstrated. The reported experiments are supported by diffusion-limited mass transfer models and document the potential of tCHA-PEF as a new class of generic enzyme-free bioanalytical tools enabling the ultrasensitive analysis of trace amounts of protein and nucleic acid analytes, making it attractive for future molecular diagnostics and research applications.
本文报道了一种新型数字生物测定读出概念,该概念既不依赖酶促扩增,也不依赖对被分析液体样本进行分隔。相反,它基于通过使用固定在固体传感器表面的拴系催化发夹组装体(tCHA)来计数单个亲和捕获的目标生物分子,其中柔性聚合物连接体(FPL)利用空间限制作用。宽场表面等离子体增强荧光(PEF)成像用于对反应动力学进行光学实时探测,其中亲和捕获的目标分子表现为空间上不同的明亮荧光点。研究了FPL长度的影响,并使用模型短单链DNA分析物测试了双扩增tCHA-PEF概念的分析性能。当应用于夹心免疫测定时,证明了可检测亚飞摩尔浓度的目标蛋白。所报道的实验得到了扩散限制传质模型的支持,并证明了tCHA-PEF作为一类新型通用无酶生物分析工具的潜力,能够对痕量蛋白质和核酸分析物进行超灵敏分析,使其对未来的分子诊断和研究应用具有吸引力。