首页> 美国卫生研究院文献>Nucleic Acids Research >Highly efficient single-stranded DNA ligation technique improves low-input whole-genome bisulfite sequencing by post-bisulfite adaptor tagging
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Highly efficient single-stranded DNA ligation technique improves low-input whole-genome bisulfite sequencing by post-bisulfite adaptor tagging

机译:高效的单链DNA连接技术通过亚硫酸氢盐后衔接子标记改善了低投入的全基因组亚硫酸氢盐测序

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摘要

Whole-genome bisulfite sequencing (WGBS) is the current gold standard of methylome analysis. Post-bisulfite adaptor tagging (PBAT) is an increasingly popular WGBS protocol because of high sensitivity and low bias. PBAT originally relied on two rounds of random priming for adaptor-tagging of single-stranded DNA (ssDNA) to attain high efficiency but at a cost of library insert length. To overcome this limitation, we developed terminal deoxyribonucleotidyl transferase (TdT)-assisted adenylate connector-mediated ssDNA (TACS) ligation as an alternative to random priming. In this method, TdT attaches adenylates to the 3′-end of input ssDNA, which are then utilized by RNA ligase as an efficient connector to the ssDNA adaptor. A protocol that uses TACS ligation instead of the second random priming step substantially increased the lengths of PBAT library fragments. Moreover, we devised a dual-library strategy that splits the input DNA to prepare two libraries with reciprocal adaptor polarity, combining them prior to sequencing. This strategy ensured an ideal base–color balance to eliminate the need for DNA spike-in for color compensation, further improving the throughput and quality of WGBS. Adopting the above strategies to the HiSeq X Ten and NovaSeq 6000 platforms, we established a cost-effective, high-quality WGBS, which should accelerate various methylome analyses.
机译:全基因组亚硫酸氢盐测序(WGBS)是当前甲基化组分析的金标准。亚硫酸氢盐后衔接标记(PBAT)由于其高灵敏度和低偏差而成为一种越来越流行的WGBS协议。 PBAT最初依靠两轮随机引物对单链DNA(ssDNA)进行衔接子标记,从而获得高效率,但需要增加文库插入长度。为克服此限制,我们开发了末端脱氧核糖核苷酸转移酶(TdT)辅助的腺苷酸连接器介导的ssDNA(TACS)连接,以替代随机引发。在这种方法中,TdT将腺苷酸连接到输入ssDNA的3'末端,然后被RNA连接酶用作ssDNA衔接子的有效连接子。使用TACS连接而不是第二个随机引发步骤的协议大大增加了PBAT库片段的长度。此外,我们设计了一种双文库策略,将输入的DNA拆分成两个具有相反适配器极性的文库,并在测序前将它们合并。该策略确保了理想的基础颜色平衡,从而消除了对DNA插入进行颜色补偿的需求,从而进一步提高了WGBS的通量和质量。通过将以上策略应用于HiSeq X Ten和NovaSeq 6000平台,我们建立了具有成本效益的高质量WGBS,它将加速各种甲基化组分析。

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