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用于微阵列的cRNA靶标制备:不同扩增程序产生的基因表达谱比较。

cRNA target preparation for microarrays: comparison of gene expression profiles generated with different amplification procedures.

作者信息

Schindler Heike, Wiese Anja, Auer Johannes, Burtscher Helmut

机构信息

Roche Diagnostics, Pharma Research, Nonnenwald 2, D-82372 Penzberg, Germany.

出版信息

Anal Biochem. 2005 Sep 1;344(1):92-101. doi: 10.1016/j.ab.2005.06.006.

Abstract

Microarray technology has become a standard tool for generation of gene expression profiles to explore human disease processes. Being able to start from minute amounts of RNA extends the fields of application to core needle biopsies, laser capture microdissected cells, and flow-sorted cells. Several RNA amplification methods have been developed, but no extensive comparability and concordance studies of gene expression profiles are available. Different amplification methods may produce differences in gene expression patterns. Therefore, we compared profiles processed by a standard microarray protocol with three different types of RNA amplification: (i) two rounds of linear target amplification, (ii) random amplification, and (iii) amplification based on a template switching mechanism. The latter two methods accomplish target amplification in a nonlinear way using PCR technology. Starting from as little as 50 ng of total RNA, the yield of labeled cRNA was sufficient for hybridization to Affymetrix HG-U133A GeneChip array using the respective methods. Replicate experiments were highly reproducible for each method. In comparison with the standard protocol, all three approaches are less sensitive and introduced a minor but clearly detectable bias of the detection call. In conclusion, the three amplification protocols used are applicable for GeneChip analysis of small tissue samples.

摘要

微阵列技术已成为生成基因表达谱以探索人类疾病过程的标准工具。能够从微量RNA开始,将应用领域扩展到粗针活检、激光捕获显微切割细胞和流式分选细胞。已经开发了几种RNA扩增方法,但尚无关于基因表达谱的广泛可比性和一致性研究。不同的扩增方法可能会产生基因表达模式的差异。因此,我们将标准微阵列方案处理的谱与三种不同类型的RNA扩增进行了比较:(i)两轮线性靶标扩增,(ii)随机扩增,以及(iii)基于模板转换机制的扩增。后两种方法使用PCR技术以非线性方式完成靶标扩增。从低至50 ng的总RNA开始,使用各自的方法,标记的cRNA产量足以与Affymetrix HG-U133A基因芯片阵列杂交。每种方法的重复实验都具有高度可重复性。与标准方案相比,所有三种方法的灵敏度较低,并引入了检测调用的轻微但明显可检测的偏差。总之,所使用的三种扩增方案适用于小组织样本的基因芯片分析。

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