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- Title
Diversifying the structure of zinc finger nucleases for high-precision genome editing.
- Authors
Paschon, David E.; Lussier, Stephanie; Wangzor, Tenzin; Xia, Danny F.; Li, Patrick W.; Hinkley, Sarah J.; Scarlott, Nicholas A.; Lam, Stephen C.; Waite, Adam J.; Truong, Lynn N.; Gandhi, Nimisha; Kadam, Bhakti N.; Patil, Deepak P.; Shivak, David A.; Lee, Gary K.; Holmes, Michael C.; Zhang, Lei; Miller, Jeffrey C.; Rebar, Edward J.
- Abstract
Genome editing for therapeutic applications often requires cleavage within a narrow sequence window. Here, to enable such high-precision targeting with zinc-finger nucleases (ZFNs), we have developed an expanded set of architectures that collectively increase the configurational options available for design by a factor of 64. These new architectures feature the functional attachment of the FokI cleavage domain to the amino terminus of one or both zinc-finger proteins (ZFPs) in the ZFN dimer, as well as the option to skip bases between the target triplets of otherwise adjacent fingers in each zinc-finger array. Using our new architectures, we demonstrate targeting of an arbitrarily chosen 28 bp genomic locus at a density that approaches 1.0 (i.e., efficient ZFNs available for targeting almost every base step). We show that these new architectures may be used for targeting three loci of therapeutic significance with a high degree of precision, efficiency, and specificity. Genome editing often requires cleavage within a narrow sequence window. Here the authors develop an expanded set of zinc finger nuclease architectures that increase the available configurations by a factor of 64 and can target almost every base at loci of therapeutic significance.
- Publication
Nature Communications, 2019, Vol 10, Issue 1, p1
- ISSN
2041-1723
- Publication type
Article
- DOI
10.1038/s41467-019-08867-x