Engineering megabase-sized genomic deletions with MACHETE (Molecular Alteration of Chromosomes with Engineered Tandem Elements) Review


Authors: Barriga, F. M.; Lowe, S. W.
Review Title: Engineering megabase-sized genomic deletions with MACHETE (Molecular Alteration of Chromosomes with Engineered Tandem Elements)
Abstract: The elimination of large genomic regions has been enabled by the advent of site-specific nucleases. However, as the intended deletions get larger, the efficiency of successful engineering decreases to a point where it is not feasible to retrieve edited cells due to the rarity of on-target events. To address this issue, we developed a system called molecular alteration of chromosomes with engineered tandem elements (MACHETE). MACHETE is a CRISPR–Cas9-based system involving two stages: the initial insertion of a bicistronic positive/negative selection cassette to the locus of interest. This is followed by the introduction of single-guide RNAs flanking the knockin cassette to engineer the intended deletion, where only cells that have lost the locus survive the negative selection. In contrast to other approaches optimizing the activity of sequence-specific nucleases, MACHETE selects for the deletion event itself, thus greatly enriching for cells with the engineered alteration. The procedure routinely takes 4–6 weeks from design to selection of polyclonal populations bearing the deletion of interest. We have successfully deployed MACHETE to engineer deletions of up to 45 Mb, as well as the rapid creation of allelic series to map the relevant activities within a locus. This protocol details the design and step-by-step procedure to engineer megabase-sized deletions in cells of interest, with potential application for cancer genetics, transcriptional regulation, genome architecture and beyond. © Springer Nature Limited 2024.
Keywords: controlled study; unclassified drug; promoter region; gene deletion; genetics; sequence deletion; nonhuman; chromosome mutation; chromosome; mouse; cell survival; cell line; gene locus; in vitro study; protein p53; rna; amino acid sequence; genetic engineering; nuclease; electroporation; binding site; genomic dna; chromosomes; rna binding; dna transcription; rna sequence; genotyping; rna analysis; process optimization; procedures; trp53 gene; sanger sequencing; humans; human; article; crispr cas system; gene editing; crispr-cas systems; crispr-cas9 system; single guide rna; rna, guide, crispr-cas systems; crispr-cas system guide rna; molecular alteration of chromosomes with engineered tandem element
Journal Title: Nature Protocols
Volume: 19
Issue: 5
ISSN: 1754-2189
Publisher: Nature Publishing Group  
Date Published: 2024-05-01
Start Page: 1381
End Page: 1399
Language: English
DOI: 10.1038/s41596-024-00953-9
PUBMED: 38326496
PROVIDER: scopus
DOI/URL:
Notes: Source: Scopus
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  1. Scott W Lowe
    249 Lowe