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Genome-wide R-loop analysis defines unique roles for DDX5, XRN2, and PRMT5 in DNA/RNA hybrid resolution

View ORCID ProfileOscar D Villarreal, Sofiane Y Mersaoui, Zhenbao Yu, Jean-Yves Masson, View ORCID ProfileStéphane Richard  Correspondence email
Oscar D Villarreal
1Segal Cancer Center, Lady Davis Institute for Medical Research and Gerald Bronfman Department of Oncology and Departments of Biochemistry, Human Genetics and Medicine, McGill University, Montréal, Canada
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  • ORCID record for Oscar D Villarreal
Sofiane Y Mersaoui
1Segal Cancer Center, Lady Davis Institute for Medical Research and Gerald Bronfman Department of Oncology and Departments of Biochemistry, Human Genetics and Medicine, McGill University, Montréal, Canada
2Genome Stability Laboratory, Centre Hospitalier Universitaire de Québec Research Center, Oncology Axis; Department of Molecular Biology, Medical Biochemistry and Pathology; Laval University Cancer Research Center, Québec City, Canada
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Zhenbao Yu
1Segal Cancer Center, Lady Davis Institute for Medical Research and Gerald Bronfman Department of Oncology and Departments of Biochemistry, Human Genetics and Medicine, McGill University, Montréal, Canada
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Jean-Yves Masson
2Genome Stability Laboratory, Centre Hospitalier Universitaire de Québec Research Center, Oncology Axis; Department of Molecular Biology, Medical Biochemistry and Pathology; Laval University Cancer Research Center, Québec City, Canada
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Stéphane Richard
1Segal Cancer Center, Lady Davis Institute for Medical Research and Gerald Bronfman Department of Oncology and Departments of Biochemistry, Human Genetics and Medicine, McGill University, Montréal, Canada
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  • ORCID record for Stéphane Richard
  • For correspondence: stephane.richard@mcgill.ca
Published 3 August 2020. DOI: 10.26508/lsa.202000762
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Abstract

DDX5, XRN2, and PRMT5 have been shown to resolve DNA/RNA hybrids (R-loops) at RNA polymerase II transcription termination sites at few genomic loci. Herein, we perform genome-wide R-loop mapping using classical DNA/RNA immunoprecipitation and high-throughput sequencing (DRIP-seq) of loci regulated by DDX5, XRN2, and PRMT5. We observed hundreds to thousands of R-loop gains and losses at transcribed loci in DDX5-, XRN2-, and PRMT5-deficient U2OS cells. R-loop gains were characteristic of highly transcribed genes located at gene-rich regions, whereas R-loop losses were observed in low-density gene areas. DDX5, XRN2, and PRMT5 shared many R-loop gain loci at transcription termination sites, consistent with their coordinated role in RNA polymerase II transcription termination. DDX5-depleted cells had unique R-loop gain peaks near the transcription start site that did not overlap with those of siXRN2 and siPRMT5 cells, suggesting a role for DDX5 in transcription initiation independent of XRN2 and PRMT5. Moreover, we observed that the accumulated R-loops at certain loci in siDDX5, siXRN2, and siPRMT5 cells near the transcription start site of genes led to antisense intergenic transcription. Our findings define unique and shared roles of DDX5, XRN2, and PRMT5 in DNA/RNA hybrid regulation.

  • Received May 1, 2020.
  • Revision received July 23, 2020.
  • Accepted July 24, 2020.
  • © 2020 Villarreal et al.
Creative Commons logoCreative Commons logohttps://creativecommons.org/licenses/by/4.0/

This article is available under a Creative Commons License (Attribution 4.0 International, as described at https://creativecommons.org/licenses/by/4.0/).

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DRIP-seq analysis of siDDX5, siXRN2 and siPRMT5 U2OS cells
Oscar D Villarreal, Sofiane Y Mersaoui, Zhenbao Yu, Jean-Yves Masson, Stéphane Richard
Life Science Alliance Aug 2020, 3 (10) e202000762; DOI: 10.26508/lsa.202000762

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DRIP-seq analysis of siDDX5, siXRN2 and siPRMT5 U2OS cells
Oscar D Villarreal, Sofiane Y Mersaoui, Zhenbao Yu, Jean-Yves Masson, Stéphane Richard
Life Science Alliance Aug 2020, 3 (10) e202000762; DOI: 10.26508/lsa.202000762
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Volume 3, No. 10
October 2020
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