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Engineered interphase chromosome loops guide intrachromosomal recombination
Author(s) -
Kostriken Richard,
Wedeen Cathy J.
Publication year - 2001
Publication title -
the embo journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 7.484
H-Index - 392
eISSN - 1460-2075
pISSN - 0261-4189
DOI - 10.1093/emboj/20.11.2907
Subject(s) - biology , genetics , saccharomyces cerevisiae , recombination , mating of yeast , genetic recombination , chromosome segregation , chromosome , computational biology , microbiology and biotechnology , gene
How large‐scale topologies regulate interphase chromosome function remains an important question in eukaryotic cell biology. Looped structures are thought to modulate transcription by pairing promoters with distant control elements and to orchestrate intrachromosomal recombination events by pairing appropriate recombination partners. To explore the effects of chromosomal topology on intrachromosomal recombination, distinct loop geometries were engineered into chromosome III of the budding yeast Saccharomyces cerevisiae . These topologies were created by employing pairs of lac operator clusters to serve as pairing sites and a modified lac repressor to perform the role of a protein cross‐bridge. The influence of these engineered loops on the selection of donor loci during mating‐type switching was evaluated using novel genetic and molecular methods. These experiments demonstrate that engineered interphase chromosome loops are biologically active—capable of influencing the course of intrachromosomal recombination. They also provide insight into the mechanism of mating‐type switching by revealing a causal relationship between defined chromosomal topologies and the choice of donor locus.

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