Desjardins Philippe, Conklin Deborah
Thermo Scientific NanoDrop Products, Wilmington, Delaware, USA.
J Vis Exp. 2010 Nov 22(45):2565. doi: 10.3791/2565.
Biomolecular assays are continually being developed that use progressively smaller amounts of material, often precluding the use of conventional cuvette-based instruments for nucleic acid quantitation for those that can perform microvolume quantitation. The NanoDrop microvolume sample retention system (Thermo Scientific NanoDrop Products) functions by combining fiber optic technology and natural surface tension properties to capture and retain minute amounts of sample independent of traditional containment apparatus such as cuvettes or capillaries. Furthermore, the system employs shorter path lengths, which result in a broad range of nucleic acid concentration measurements, essentially eliminating the need to perform dilutions. Reducing the volume of sample required for spectroscopic analysis also facilitates the inclusion of additional quality control steps throughout many molecular workflows, increasing efficiency and ultimately leading to greater confidence in downstream results. The need for high-sensitivity fluorescent analysis of limited mass has also emerged with recent experimental advances. Using the same microvolume sample retention technology, fluorescent measurements may be performed with 2 μL of material, allowing fluorescent assays volume requirements to be significantly reduced. Such microreactions of 10 μL or less are now possible using a dedicated microvolume fluorospectrometer. Two microvolume nucleic acid quantitation protocols will be demonstrated that use integrated sample retention systems as practical alternatives to traditional cuvette-based protocols. First, a direct A260 absorbance method using a microvolume spectrophotometer is described. This is followed by a demonstration of a fluorescence-based method that enables reduced-volume fluorescence reactions with a microvolume fluorospectrometer. These novel techniques enable the assessment of nucleic acid concentrations ranging from 1 pg/ μL to 15,000 ng/ μL with minimal consumption of sample.
生物分子检测方法不断发展,使用的材料量越来越少,这常常使得那些能够进行微量定量的检测无法使用传统的基于比色皿的仪器进行核酸定量。赛默飞世尔科技的NanoDrop微量样品保留系统通过结合光纤技术和自然表面张力特性来捕获和保留微量样品,无需使用比色皿或毛细管等传统容纳装置。此外,该系统采用较短的光程,可实现广泛的核酸浓度测量范围,基本上无需进行稀释。减少光谱分析所需的样品体积也有助于在许多分子工作流程中加入额外的质量控制步骤,提高效率并最终增强对下游结果的信心。随着最近的实验进展,对有限质量的高灵敏度荧光分析的需求也出现了。使用相同的微量样品保留技术,可对2 μL材料进行荧光测量,从而显著降低荧光检测的体积要求。现在使用专用的微量荧光光谱仪可以进行10 μL或更少的微量反应。将展示两种微量核酸定量方案,它们使用集成样品保留系统作为传统比色皿方案的实用替代方法。首先,描述了一种使用微量分光光度计的直接A260吸光度法。随后展示了一种基于荧光的方法,该方法能够使用微量荧光光谱仪进行减少体积的荧光反应。这些新技术能够在样品消耗极少的情况下评估1 pg/μL至15,000 ng/μL范围内的核酸浓度。