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Molecular and Cellular Biology, December 2000, p. 9068-9075, Vol. 20, No. 23
0270-7306/00/$04.00+0
Copyright © 2000, American Society for Microbiology. All rights reserved.
Coupled Homologous and Nonhomologous Repair of a Double-Strand
Break Preserves Genomic Integrity in Mammalian Cells
Christine
Richardson and
Maria
Jasin*
Cell Biology Program, Memorial
Sloan-Kettering Cancer Center, and Cornell University Graduate
School of Medical Sciences, New York, New York 10021
Received 11 August 2000/Returned for modification 7 September
2000/Accepted 12 September 2000
DNA double-strand breaks (DSBs) may be caused by normal metabolic
processes or exogenous DNA damaging agents and can promote chromosomal rearrangements, including translocations, deletions, or
chromosome loss. In mammalian cells, both homologous recombination and
nonhomologous end joining (NHEJ) are important DSB repair pathways for
the maintenance of genomic stability. Using a mouse embryonic stem cell
system, we previously demonstrated that a DSB in one chromosome
can be repaired by recombination with a homologous sequence on a heterologous chromosome, without any evidence of genome rearrangements (C. Richardson,
M. E. Moynahan, and M. Jasin, Genes Dev., 12:3831-3842, 1998). To
determine if genomic integrity would be compromised if
homology were constrained, we have now examined interchromosomal
recombination between truncated but overlapping gene sequences.
Despite these constraints, recombinants were readily recovered
when a DSB was introduced into one of the sequences. The overwhelming
majority of recombinants showed no evidence of chromosomal
rearrangements. Instead, events were initiated by homologous invasion
of one chromosome end and completed by NHEJ to the other
chromosome end, which remained highly preserved throughout the
process. Thus, genomic integrity was maintained by a coupling of
homologous and nonhomologous repair pathways. Interestingly,
the recombination frequency, although not the structure of the
recombinant repair products, was sensitive to the relative orientation
of the gene sequences on the interacting chromosomes.
*
Corresponding author. Mailing address: Cell Biology
Program, Memorial Sloan-Kettering Cancer Center, and Cornell University Graduate School of Medical Sciences, 1275 York Ave., New York, NY
10021. Phone: (212) 639-7438. Fax: (212) 717-3317. E-mail: m-jasin{at}ski.mskcc.org.
Molecular and Cellular Biology, December 2000, p. 9068-9075, Vol. 20, No. 23
0270-7306/00/$04.00+0
Copyright © 2000, American Society for Microbiology. All rights reserved.
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