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用于最优平铺阵列计算设计的高效算法。

Efficient algorithms for the computational design of optimal tiling arrays.

作者信息

Schliep Alexander, Krause Roland

机构信息

Department Computational Molecular Biology, Max Planck Institute for Molecular Genetics, Ihnestrasse 69-73, 14195 Berlin, Germany.

出版信息

IEEE/ACM Trans Comput Biol Bioinform. 2008 Oct-Dec;5(4):557-67. doi: 10.1109/TCBB.2008.50.

Abstract

The representation of a genome by oligonucleotide probes is a prerequisite for the analysis of many of its basic properties, such as transcription factor binding sites, chromosomal breakpoints, gene expression of known genes and detection of novel genes, in particular those coding for small RNAs. An ideal representation would consist of a high density set of oligonucleotides with similar melting temperatures that do not cross-hybridize with other regions of the genome and are equidistantly spaced. The implementation of such design is typically called a tiling array or genome array. We formulate the minimal cost tiling path problem for the selection of oligonucleotides from a set of candidates. Computing the selection of probes requires multi-criterion optimization, which we cast into a shortest path problem. Standard algorithms running in linear time allow us to compute globally optimal tiling paths from millions of candidate oligonucleotides on a standard desktop computer for most problem variants. The solutions to this multi-criterion optimization are spatially adaptive to the problem instance. Our formulation incorporates experimental constraints with respect to specific regions of interest and trade offs between hybridization parameters, probe quality and tiling density easily. A web application is available at http://tileomatic.org.

摘要

用寡核苷酸探针来表示基因组是分析其许多基本特性的前提条件,这些特性包括转录因子结合位点、染色体断点、已知基因的基因表达以及新基因(特别是那些编码小RNA的基因)的检测。理想的表示方式应由一组具有相似解链温度的高密度寡核苷酸组成,这些寡核苷酸不会与基因组的其他区域交叉杂交且等距分布。这种设计的实现通常称为平铺阵列或基因组阵列。我们针对从一组候选物中选择寡核苷酸的问题,提出了最小成本平铺路径问题。计算探针的选择需要多标准优化,我们将其转化为最短路径问题。对于大多数问题变体,在标准台式计算机上运行的线性时间标准算法使我们能够从数百万个候选寡核苷酸中计算出全局最优平铺路径。此多标准优化的解决方案在空间上适应问题实例。我们的公式很容易地将关于特定感兴趣区域的实验约束以及杂交参数、探针质量和平铺密度之间的权衡纳入其中。可通过http://tileomatic.org访问一个网络应用程序。

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