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Obtaining long 16S rDNA sequences using multiple primers and its application on dioxin-containing samples

机译:使用多种引物获得长16S rDNA序列及其在含二恶英样品中的应用

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Background Next-generation sequencing (NGS) technology has transformed metagenomics because the high-throughput data allow an in-depth exploration of a complex microbial community. However, accurate species identification with NGS data is challenging because NGS sequences are relatively short. Assembling 16S rDNA segments into longer sequences has been proposed for improving species identification. Current approaches, however, either suffer from amplification bias due to one single primer or insufficient 16S rDNA reads in whole genome sequencing data. Results Multiple primers were used to amplify different 16S rDNA segments for 454 sequencing, followed by 454 read classification and assembly. This permitted targeted sequencing while reducing primer bias. For test samples containing four known bacteria, accurate and near full-length 16S rDNAs of three known bacteria were obtained. For real soil and sediment samples containing dioxins in various concentrations, 16S rDNA sequences were lengthened by 50% for about half of the non-rare microbes, and 16S rDNAs of several microbes reached more than 1000 bp. In addition, reduced primer bias using multiple primers was illustrated. Conclusions A new experimental and computational pipeline for obtaining long 16S rDNA sequences was proposed. The capability of the pipeline was validated on test samples and illustrated on real samples. For dioxin-containing samples, the pipeline revealed several microbes suitable for future studies of dioxin chemistry.
机译:背景技术下一代测序(NGS)技术已经改变了宏基因组学,因为高通量数据允许对复杂的微生物群落进行深入研究。然而,由于NGS序列相对较短,因此利用NGS数据进行准确的物种识别具有挑战性。已经提出将16S rDNA片段组装成更长的序列以改善物种鉴定。然而,目前的方法要么由于单个引物引起扩增偏倚,要么在全基因组测序数据中缺乏16S rDNA读数。结果使用多个引物扩增不同的16S rDNA片段,以进行454测序,然后进行454读段分类和组装。这允许靶向测序,同时减少引物偏倚。对于包含四种已知细菌的测试样品,获得了三种已知细菌的准确且接近全长的16S rDNA。对于含有不同浓度二恶英的真实土壤和沉积物样品,大约一半非稀有微生物的16S rDNA序列延长了50%,几种微生物的16S rDNA达到1000 bp以上。另外,示出了使用多个引物降低的引物偏倚。结论提出了获得长16S rDNA序列的新实验和计算流程。在测试样本上验证了管道的能力,并在实际样本上进行了说明。对于含二恶英的样品,管道中发现了几种微生物,适合将来对二恶英化学的研究。

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