
Clustered regularly interspaced short palindromic repeats (CRISPR)/Cas9 has been applied to edit genomes in a wide variety of model systems. Although this process can be quite efficient, editing at precise locations in the genome remains difficult without a suitable single guide RNA (sgRNA). We have developed a method for screening sgRNA function in vitro, using reagents that most zebrafish laboratories are already using. The results from our in vitro assay correlate with function in vivo in every sgRNA that we have examined so far. When combined with endonucleases with alternative protospacer adjacent motif site specificities and alternative sgRNAs, this method will streamline genome editing at almost any locus.
In Vitro Techniques, RNA, Guide, CRISPR-Cas Systems, Genetics, Animals, Kinetoplastida, Cas9, Zebrafish, validation, Gene Editing, Monophenol Monooxygenase, Human Genome, in vitro, Biological Sciences, zebrafish, Endonucleases, knock in, CRISPR, Gene Targeting, RNA, Biochemistry and Cell Biology, CRISPR-Cas Systems, Zoology, Guide, Biotechnology, Developmental Biology
In Vitro Techniques, RNA, Guide, CRISPR-Cas Systems, Genetics, Animals, Kinetoplastida, Cas9, Zebrafish, validation, Gene Editing, Monophenol Monooxygenase, Human Genome, in vitro, Biological Sciences, zebrafish, Endonucleases, knock in, CRISPR, Gene Targeting, RNA, Biochemistry and Cell Biology, CRISPR-Cas Systems, Zoology, Guide, Biotechnology, Developmental Biology
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