Zhang, Weimin and Golynker, Ilona and Brosh, Ran and Fajardo, Alvaro and Zhu, Yinan and Wudzinska, Aleksandra M. and Ordoñez, Raquel and Ribeiro-dos-Santos, André M. and Carrau, Lucia and Damani-Yokota, Payal and Yeung, Stephen T. and Khairallah, Camille and Vela Gartner, Antonio and Chalhoub, Noor and Huang, Emily and Ashe, Hannah J. and Khanna, Kamal M. and Maurano, Matthew T. and Kim, Sang Yong and tenOever, Benjamin R. and Boeke, Jef D. (2023) Mouse genome rewriting and tailoring of three important disease loci. Nature, 623 (7986). pp. 423-431. ISSN 0028-0836
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Abstract
Genetically engineered mouse models (GEMMs) help us to understand human pathologies and develop new therapies, yet faithfully recapitulating human diseases in mice is challenging. Advances in genomics have highlighted the importance of non-coding regulatory genome sequences, which control spatiotemporal gene expression patterns and splicing in many human diseases1,2. Including regulatory extensive genomic regions, which requires large-scale genome engineering, should enhance the quality of disease modelling. Existing methods set limits on the size and efficiency of DNA delivery, hampering the routine creation of highly informative models that we call genomically rewritten and tailored GEMMs (GREAT-GEMMs). Here we describe ‘mammalian switching antibiotic resistance markers progressively for integration’ (mSwAP-In), a method for efficient genome rewriting in mouse embryonic stem cells. We demonstrate the use of mSwAP-In for iterative genome rewriting of up to 115 kb of a tailored Trp53 locus, as well as for humanization of mice using 116 kb and 180 kb human ACE2 loci. The ACE2 model recapitulated human ACE2 expression patterns and splicing, and notably, presented milder symptoms when challenged with SARS-CoV-2 compared with the existing K18-hACE2 model, thus representing a more human-like model of infection. Finally, we demonstrated serial genome writing by humanizing mouse Tmprss2 biallelically in the ACE2 GREAT-GEMM, highlighting the versatility of mSwAP-In in genome writing.
Item Type: | Article |
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Subjects: | OA Open Library > Multidisciplinary |
Depositing User: | Unnamed user with email support@oaopenlibrary.com |
Date Deposited: | 10 Nov 2023 05:06 |
Last Modified: | 10 Nov 2023 05:06 |
URI: | http://archive.sdpublishers.com/id/eprint/2049 |