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Pre-amplification in the context of high-throughput qPCR gene expression experiment

机译:高通量qPCR基因表达实验中的预扩增

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Background With the introduction of the first high-throughput qPCR instrument on the market it became possible to perform thousands of reactions in a single run compared to the previous hundreds. In the high-throughput reaction, only limited volumes of highly concentrated cDNA or DNA samples can be added. This necessity can be solved by pre-amplification, which became a part of the high-throughput experimental workflow. Here, we focused our attention on the limits of the specific target pre-amplification reaction and propose the optimal, general setup for gene expression experiment using BioMark instrument (Fluidigm). Results For evaluating different pre-amplification factors following conditions were combined: four human blood samples from healthy donors and five transcripts having high to low expression levels; each cDNA sample was pre-amplified at four cycles (15, 18, 21, and 24) and five concentrations (equivalent to 0.078?ng, 0.32?ng, 1.25?ng, 5?ng, and 20?ng of total RNA). Factors identified as critical for a success of cDNA pre-amplification were cycle of pre-amplification, total RNA concentration, and type of gene. The selected pre-amplification reactions were further tested for optimal Cq distribution in a BioMark Array. The following concentrations combined with pre-amplification cycles were optimal for good quality samples: 20?ng of total RNA with 15?cycles of pre-amplification, 20x and 40x diluted; and 5?ng and 20?ng of total RNA with 18?cycles of pre-amplification, both 20x and 40x diluted. Conclusions We set up upper limits for the bulk gene expression experiment using gene expression Dynamic Array and provided an easy-to-obtain tool for measuring of pre-amplification success. We also showed that variability of the pre-amplification, introduced into the experimental workflow of reverse transcription-qPCR, is lower than variability caused by the reverse transcription step.
机译:背景技术随着市场上第一台高通量qPCR仪器的推出,与之前的数百种反应相比,单次运行即可进行数千种反应。在高通量反应中,只能添加有限体积的高浓度cDNA或DNA样品。可以通过前置放大解决这一需求,前置放大已成为高通量实验工作流程的一部分。在这里,我们将注意力集中在特定靶标预扩增反应的极限上,并提出了使用BioMark仪器(Fluidigm)进行基因表达实验的最佳,通用设置。结果为了评估不同的预扩增因子,要结合以下条件:来自健康供体的四份人血样品和五种具有高至低表达水平的转录本;每个cDNA样品在四个循环(15、18、21和24)和五个浓度(相当于总RNA的0.078?ng,0.32?ng,1.25?ng,5?ng和20?ng)下进行了预扩增。 。 cDNA预扩增成功的关键因素是预扩增周期,总RNA浓度和基因类型。进一步测试了所选的扩增前反应在BioMark阵列中的最佳Cq分布。以下浓度与预扩增循环相结合是高质量样品的最佳选择:20 ng的总RNA和15倍的预扩增循环,稀释20倍和40倍;总RNA的5 ng和20 ng进行18轮预扩增,分别稀释20倍和40倍。结论我们使用基因表达动态阵列为批量基因表达实验设定了上限,并提供了易于获得的用于测量扩增前成功率的工具。我们还显示,引入到逆转录qPCR实验流程中的预扩增变异性低于逆转录步骤引起的变异性。

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