Puleo Christopher M, Wang Tza-Huei
Johns Hopkins University, Department of Biomedical Engineering, 3400, N. Charles St., Clark Hall Rm. 123, Baltimore, MD, USA.
Lab Chip. 2009 Apr 21;9(8):1065-72. doi: 10.1039/b819605b. Epub 2009 Mar 6.
We used inline, micro-evaporators to concentrate and transport DNA targets to a nanoliter single molecule fluorescence detection chamber for subsequent molecular beacon probe hybridization and analysis. This use of solvent removal as a unique means of target transport in a microanalytical platform led to a greater than 5000-fold concentration enhancement and detection limits that pushed below the femtomolar barrier commonly reported using confocal fluorescence detection. This simple microliter-to-nanoliter interconnect for single molecule counting analysis resolved several common limitations, including the need for excessive fluorescent probe concentrations at low target levels and inefficiencies in direct handling of highly dilute biological samples. In this report, the hundreds of bacteria-specific DNA molecules contained in approximately 25 microliters of a 50 aM sample were shuttled to a four nanoliter detection chamber through micro-evaporation. Here, the previously undetectable targets were enhanced to the pM regime and underwent probe hybridization and highly-efficient fluorescent event analysis via microfluidic recirculation through the confocal detection volume. This use of microfluidics in a single molecule detection (SMD) platform delivered unmatched sensitivity and introduced compliment technologies that may serve to bring SMD to more widespread use in replacing conventional methodologies for detecting rare target biomolecules in both research and clinical labs.
我们使用内置的微型蒸发器来浓缩DNA靶标并将其传输到纳升单分子荧光检测室,以进行后续的分子信标探针杂交和分析。在微分析平台中,将去除溶剂作为一种独特的靶标传输方式,实现了超过5000倍的浓度增强,检测限突破了通常使用共聚焦荧光检测所报道的飞摩尔壁垒。这种用于单分子计数分析的从微升级到纳升级的简单互连方式解决了几个常见的局限性,包括在低靶标水平下需要过高的荧光探针浓度以及直接处理高度稀释的生物样品时效率低下的问题。在本报告中,通过微蒸发将约25微升50 aM样品中包含的数百个细菌特异性DNA分子输送到一个四纳升的检测室。在此,先前无法检测到的靶标被增强到皮摩尔级别,并通过共聚焦检测体积的微流体再循环进行探针杂交和高效的荧光事件分析。在单分子检测(SMD)平台中使用微流体技术提供了无与伦比的灵敏度,并引入了补充技术,这些技术可能有助于使SMD在研究和临床实验室中更广泛地用于替代检测稀有靶标生物分子的传统方法。