首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >Reliability of high-throughput genotyping of whole genome amplified DNA in SNP genotyping studies
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Reliability of high-throughput genotyping of whole genome amplified DNA in SNP genotyping studies

机译:SNP基因分型研究中全基因组扩增DNA高通量基因分型的可靠性

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Whole genome amplification (wga) of DNA is being widely implemented in many laboratories to extend the life of samples only available in limited quantities for genetic analysis. We determined the reliability of wgaDNA genotypes in three sets of replicates from the same individuals: (i) 23 pairs of genomic DNA (gDNA), (ii) 43 pairs gDNA versus wgaDNA, and (iii) 29 pairs of independently amplified wgaDNA. Amplification was performed using multiple displacement amplification (MDA). Genotyping was successful for both DNA types for 1268 out of 1534 SNPs from 164 cardiovascular candidate genes assayed in a single Illumina panel. Amplified DNA failed for 77 SNPs (6%) that were genotyped successfully with genomic material. Percent of successful SNP calls, and concordance between pairs and kappa statistics (K) were determined. A total of 54 110 genotypes from gDNA-wgaDNA pairs were available for concordance analysis. Mean K for gDNA-wgaDNA pairs was 0.99. Concordance between gDNA-wgaDNA pairs was higher than amongst wgaDNA pairs (mean K for the 29 independently amplified pairs of wgaDNA was 0.95; interquartile range: 0.93-1.00). A statistical analysis of those SNPs which failed to genotype from amplified DNA only revealed that those loci were more likely to be closer to the telomeres and in locally GC-rich sequences. In summary, the MDA method produces wgaDNA samples that can be genotyped using high-throughput technology with a very high reproducibility to the original DNA but with slightly lower call rates. DNA amplification methodologies provide a useful solution for current and future large-scale genetic analyses especially with limited quantities of samples and DNA.
机译:DNA的全基因组扩增(wga)在许多实验室中得到广泛应用,以延长仅可用于遗传分析的有限数量样品的寿命。我们确定了来自同一个人的三组重复样本中wgaDNA基因型的可靠性:(i)23对基因组DNA(gDNA),(ii)43对gDNA与wgaDNA以及(iii)29对独立扩增的wgaDNA。使用多重置换扩增(MDA)进行扩增。在一个Illumina面板中分析的164个心血管候选基因中的1534个SNP中的1268个中,有1268个对两种DNA类型均成功进行了基因分型。扩增的DNA失败了77个SNP(6%),这些SNP已成功通过基因组材料进行了基因分型。确定成功的SNP呼叫的百分比,以及配对和Kappa统计信息(K)之间的一致性。来自gDNA-wgaDNA对的总共54 110个基因型可用于一致性分析。 gDNA-wgaDNA对的平均K为0.99。 gDNA-wgaDNA对之间的一致性高于wgaDNA对之间的一致性(29个独立扩增的wgaDNA对的平均K为0.95;四分位数范围:0.93-1.00)。对未从扩增的DNA进行基因分型的那些SNP的统计分析仅显示,这些基因座更可能更接近端粒和局部富含GC的序列。总之,MDA方法产生的wgaDNA样品可以使用高通量技术进行基因分型,对原始DNA的重复性非常高,但检出率略低。 DNA扩增方法为当前和未来的大规模遗传分析提供了有用的解决方案,尤其是在样品和DNA数量有限的情况下。

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