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The dilution effect and the importance of selecting the right internal control genes for RT-qPCR: a paradigmatic approach in fetal sheep

机译:选择RT-QPCR右内部对照基因的稀释效应和重要性:胎儿绵羊的范式方法

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Background The key to understanding changes in gene expression levels using reverse transcription real-time quantitative polymerase chain reaction (RT-qPCR) relies on the ability to rationalize the technique using internal control genes (ICGs). However, the use of ICGs has become increasingly problematic given that any genes, including housekeeping genes, thought to be stable across different tissue types, ages and treatment protocols, can be regulated at transcriptomic level. Our interest in prenatal glucocorticoid (GC) effects on fetal growth has resulted in our investigation of suitable ICGs relevant in this model. The usefulness of RNA18S , ACTB , HPRT1 , RPLP0 , PPIA and TUBB as ICGs was analyzed according to effects of early dexamethasone (DEX) treatment, gender, and gestational age by two approaches: (1) the classical approach where raw (i.e., not normalized) RT-qPCR data of tested ICGs were statistically analyzed and the best ICG selected based on absence of any significant effect; (2) used of published algorithms. For the latter the geNorm Visual Basic application was mainly used, but data were also analyzed by Normfinder and Bestkeeper. In order to account for confounding effects on the geNorm analysis due to co-regulation among ICGs tested, network analysis was performed using Ingenuity Pathway Analysis software. The expression of RNA18S , the most abundant transcript, and correlation of ICGs with RNA18S, total RNA, and liver-specific genes were also performed to assess potential dilution effect of raw RT-qPCR data. The effect of the two approaches used to select the best ICG(s) was compared by normalization of NR3C1 (glucocorticoid receptor) mRNA expression, as an example for a target gene.
机译:背景使用反转录实时定量聚合酶链式反应(RT-qPCR的)基因表达水平的变化的理解的关键依赖于使用内部对照基因(ICGS)合理化的技术的能力。然而,鉴于任何基因(包括管家基因)在不同组织类型,年龄和治疗方案上稳定的任何基因,可以在转录组水平调节,ICG的使用变得越来越有问题。我们在对胎儿生长的产前糖皮质激素(GC)效应的兴趣导致了我们在这个模型中有关适用ICGS的调查。根据早期的地塞米松的影响RNA18S,ACTB,HPRT1,RPLP0,PPIA和TUBB作为ICGS的有用性进行了分析(DEX)处理,性别和孕龄通过两种方法:(1)经典方法,其中原始(即,未归一化)进行测试ICGS的RT-qPCR的数据进行统计学分析,并最好ICG选择的基础上没有任何显著效果; (2)的公布的算法中使用。对于后者,geNorm Visual Basic应用程序,主要是使用,但也受到Normfinder和Bestkeeper分析数据。为了考虑对由于ICGS之间的共调节引起的对基因仪分析的混淆效应,使用Ingenuey途径分析软件进行网络分析。还进行RNA18S的表达,最丰富的转录物,并用RNA18S,总RNA,和肝特异性基因的ICGS相关来评估原始RT-qPCR的数据的潜在稀释效应。两者的手段和方法用于选择最好的ICG(一个或多个)通过NR3C1(糖皮质激素受体)mRNA的表达进行归一化相比,对于靶基因的例子。

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