Stimulation of Homologous Recombination through Targeted Cleavage by Chimeric Nucleases

Author:

Bibikova Marina1,Carroll Dana1,Segal David J.1,Trautman Jonathan K.1,Smith Jeff23,Kim Yang-Gyun2,Chandrasegaran Srinivasan2

Affiliation:

1. Department of Biochemistry, University of Utah School of Medicine, Salt Lake City, Utah 84132, 1 and

2. Department of Environmental Health Sciences, The Johns Hopkins University School of Hygiene and Public Health, 2 and

3. Department of Biophysics and Biophysical Chemistry, The Johns Hopkins University School of Medicine, 3 Baltimore, Maryland 21205

Abstract

ABSTRACT Chimeric nucleases that are hybrids between a nonspecific DNA cleavage domain and a zinc finger DNA recognition domain were tested for their ability to find and cleave their target sites in living cells. Both engineered DNA substrates and the nucleases were injected into Xenopus laevis oocyte nuclei, in which DNA cleavage and subsequent homologous recombination were observed. Specific cleavage required two inverted copies of the zinc finger recognition site in close proximity, reflecting the need for dimerization of the cleavage domain. Cleaved DNA molecules were activated for homologous recombination; in optimum conditions, essentially 100% of the substrate recombined, even though the DNA was assembled into chromatin. The original nuclease has an 18-amino-acid linker between the zinc finger and cleavage domains, and this enzyme cleaved in oocytes at paired sites separated by spacers in the range of 6 to 18 bp, with a rather sharp optimum at 8 bp. By shortening the linker, we found that the range of effective site separations could be narrowed significantly. With no intentional linker between the binding and cleavage domains, only binding sites exactly 6 bp apart supported efficient cleavage in oocytes. We also showed that two chimeric enzymes with different binding specificities could collaborate to stimulate recombination when their individual sites were appropriately placed. Because the recognition specificity of zinc fingers can be altered experimentally, this approach holds great promise for inducing targeted recombination in a variety of organisms.

Publisher

American Society for Microbiology

Subject

Cell Biology,Molecular Biology

Reference60 articles.

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4. Carroll D. DNA recombination and repair in Xenopus oocytes and eggs: substrate design direct microinjection and extract preparation A comparative methods approach to the study of oocytes and embryos. Richter J. D. 1999 173 195 Oxford University Press New York N.Y

5. Homologous genetic recombination in Xenopus: mechanism and implications for gene manipulation;Carroll D.;Prog. Nucleic Acid Res. Mol. Biol.,1996

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