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RIN:一种用于为RNA测量值赋予完整性数值的RNA完整性数。

The RIN: an RNA integrity number for assigning integrity values to RNA measurements.

作者信息

Schroeder Andreas, Mueller Odilo, Stocker Susanne, Salowsky Ruediger, Leiber Michael, Gassmann Marcus, Lightfoot Samar, Menzel Wolfram, Granzow Martin, Ragg Thomas

机构信息

Agilent Technologies, Hewlett-Packard-Strasse 8, 76337 Waldbronn, Germany.

出版信息

BMC Mol Biol. 2006 Jan 31;7:3. doi: 10.1186/1471-2199-7-3.

Abstract

BACKGROUND

The integrity of RNA molecules is of paramount importance for experiments that try to reflect the snapshot of gene expression at the moment of RNA extraction. Until recently, there has been no reliable standard for estimating the integrity of RNA samples and the ratio of 28S:18S ribosomal RNA, the common measure for this purpose, has been shown to be inconsistent. The advent of microcapillary electrophoretic RNA separation provides the basis for an automated high-throughput approach, in order to estimate the integrity of RNA samples in an unambiguous way.

METHODS

A method is introduced that automatically selects features from signal measurements and constructs regression models based on a Bayesian learning technique. Feature spaces of different dimensionality are compared in the Bayesian framework, which allows selecting a final feature combination corresponding to models with high posterior probability.

RESULTS

This approach is applied to a large collection of electrophoretic RNA measurements recorded with an Agilent 2100 bioanalyzer to extract an algorithm that describes RNA integrity. The resulting algorithm is a user-independent, automated and reliable procedure for standardization of RNA quality control that allows the calculation of an RNA integrity number (RIN).

CONCLUSION

Our results show the importance of taking characteristics of several regions of the recorded electropherogram into account in order to get a robust and reliable prediction of RNA integrity, especially if compared to traditional methods.

摘要

背景

对于试图反映RNA提取时刻基因表达快照的实验而言,RNA分子的完整性至关重要。直到最近,一直没有可靠的标准来评估RNA样本的完整性,而为此常用的28S:18S核糖体RNA比率已被证明并不一致。微毛细管电泳RNA分离技术的出现为一种自动化高通量方法提供了基础,以便以明确的方式评估RNA样本的完整性。

方法

介绍了一种方法,该方法从信号测量中自动选择特征,并基于贝叶斯学习技术构建回归模型。在贝叶斯框架中比较不同维度的特征空间,这允许选择与具有高后验概率的模型相对应的最终特征组合。

结果

将该方法应用于用安捷伦2100生物分析仪记录的大量电泳RNA测量数据,以提取一种描述RNA完整性的算法。所得算法是一种独立于用户的、自动化且可靠的RNA质量控制标准化程序,可用于计算RNA完整性数值(RIN)。

结论

我们的结果表明,为了获得对RNA完整性的稳健可靠预测,考虑记录的电泳图几个区域的特征非常重要,特别是与传统方法相比时。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d812/1413964/ebb173bb8a5d/1471-2199-7-3-1.jpg

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