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Amplification-free long-read sequencing reveals unforeseen CRISPR-Cas9 off-target activity.
Höijer, Ida; Johansson, Josefin; Gudmundsson, Sanna; Chin, Chen-Shan; Bunikis, Ignas; Häggqvist, Susana; Emmanouilidou, Anastasia; Wilbe, Maria; den Hoed, Marcel; Bondeson, Marie-Louise; Feuk, Lars; Gyllensten, Ulf; Ameur, Adam.
Afiliação
  • Höijer I; Science for Life Laboratory, Department of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Sweden. ida.hoijer@igp.uu.se.
  • Johansson J; Science for Life Laboratory, Department of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Sweden.
  • Gudmundsson S; Science for Life Laboratory, Department of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Sweden.
  • Chin CS; Program in Medical and Population Genetics, Broad Institute of Massachusetts Institute of Technology and Harvard, Cambridge, MA, USA.
  • Bunikis I; Division of Genetics and Genomics, Boston Children's Hospital, Boston, MA, USA.
  • Häggqvist S; Foundation for Biological Data Science, Belmont, CA, USA.
  • Emmanouilidou A; Science for Life Laboratory, Department of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Sweden.
  • Wilbe M; Science for Life Laboratory, Department of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Sweden.
  • den Hoed M; Science for Life Laboratory, Department of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Sweden.
  • Bondeson ML; The Beijer laboratory and Department of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Sweden.
  • Feuk L; Science for Life Laboratory, Department of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Sweden.
  • Gyllensten U; Science for Life Laboratory, Department of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Sweden.
  • Ameur A; The Beijer laboratory and Department of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Sweden.
Genome Biol ; 21(1): 290, 2020 12 01.
Article em En | MEDLINE | ID: mdl-33261648
BACKGROUND: One ongoing concern about CRISPR-Cas9 genome editing is that unspecific guide RNA (gRNA) binding may induce off-target mutations. However, accurate prediction of CRISPR-Cas9 off-target activity is challenging. Here, we present SMRT-OTS and Nano-OTS, two novel, amplification-free, long-read sequencing protocols for detection of gRNA-driven digestion of genomic DNA by Cas9 in vitro. RESULTS: The methods are assessed using the human cell line HEK293, re-sequenced at 18x coverage using highly accurate HiFi SMRT reads. SMRT-OTS and Nano-OTS are first applied to three different gRNAs targeting HEK293 genomic DNA, resulting in a set of 55 high-confidence gRNA cleavage sites identified by both methods. Twenty-five of these sites are not reported by off-target prediction software, either because they contain four or more single nucleotide mismatches or insertion/deletion mismatches, as compared with the human reference. Additional experiments reveal that 85% of Cas9 cleavage sites are also found by other in vitro-based methods and that on- and off-target sites are detectable in gene bodies where short-reads fail to uniquely align. Even though SMRT-OTS and Nano-OTS identify several sites with previously validated off-target editing activity in cells, our own CRISPR-Cas9 editing experiments in human fibroblasts do not give rise to detectable off-target mutations at the in vitro-predicted sites. However, indel and structural variation events are enriched at the on-target sites. CONCLUSIONS: Amplification-free long-read sequencing reveals Cas9 cleavage sites in vitro that would have been difficult to predict using computational tools, including in dark genomic regions inaccessible by short-read sequencing.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Sequência de Bases / Biologia Computacional / Sistemas CRISPR-Cas / Edição de Genes Idioma: En Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Sequência de Bases / Biologia Computacional / Sistemas CRISPR-Cas / Edição de Genes Idioma: En Ano de publicação: 2020 Tipo de documento: Article