Genome-wide direct quantification of in vivo mutagenesis using high-accuracy paired-end and complementary consensus sequencing

Author:

You Xinyue1ORCID,Cao Yiyi1ORCID,Suzuki Takayoshi2ORCID,Shao Jie3ORCID,Zhu Benzhan3,Masumura Kenichi4,Xi Jing1,Liu Weiying1,Zhang Xinyu1,Luan Yang1ORCID

Affiliation:

1. School of Public Health, Shanghai Jiao Tong University School of Medicine , Shanghai 200025, China

2. Division of Genetics and Mutagenesis, National Institute of Health Sciences , Kawasaki  210-9501, Japan

3. State Key Laboratory of Environmental Chemistry and Ecotoxicology, Research Center for Eco-Environmental Sciences, The Chinese Academy of Sciences , Beijing 100085, China; The University of Chinese Academy of Sciences, Beijing 100049 , China

4. Division of Risk Assessment, National Institute of Health Sciences , Kawasaki  210-9501, Japan

Abstract

Abstract Error-corrected next-generation sequencing (ecNGS) is an emerging technology for accurately measuring somatic mutations. Here, we report paired-end and complementary consensus sequencing (PECC-Seq), a high-accuracy ecNGS approach for genome-wide somatic mutation detection. We characterize a novel 2-aminoimidazolone lesion besides 7,8-dihydro-8-oxoguanine and the resulting end-repair artifacts originating from NGS library preparation that obscure the sequencing accuracy of NGS. We modify library preparation protocol for the enzymatic removal of end-repair artifacts and improve the accuracy of our previously developed duplex consensus sequencing method. Optimized PECC-Seq shows an error rate of <5 × 10−8 with consensus bases compressed from approximately 25 Gb of raw sequencing data, enabling the accurate detection of low-abundance somatic mutations. We apply PECC-Seq to the quantification of in vivo mutagenesis. Compared with the classic gpt gene mutation assay using gpt delta transgenic mice, PECC-Seq exhibits high sensitivity in quantitatively measuring dose-dependent mutagenesis induced by Aristolochic acid I (AAI). Moreover, PECC-Seq specifically characterizes the distinct genome-wide mutational signatures of AAI, Benzo[a]pyrene, N-Nitroso-N-ethylurea and N-nitrosodiethylamine and reveals the mutational signature of Quinoline in common mouse models. Overall, our findings demonstrate that high-accuracy PECC-Seq is a promising tool for genome-wide somatic mutagenesis quantification and for in vivo mutagenicity testing.

Funder

Major Program of National Natural Science Foundation of China

China Postdoctoral Science Found

Foundation of Science and Technology Commission of Shanghai Municipality

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

Subject

Genetics

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