Proceedings of the National Academy of Sciences · 2001 · 355 citations · 67 references
Multiple MechanismsGeneticsTandem Sequence HomologiesGenomic MechanismMolecular BiologyEscherichia ColiMolecular GeneticsGenomicsSimple Replication SlippageGenome InstabilityDna ReplicationRepetitive Dna SequencesGene EvolutionChromosomal RearrangementBiologyChromatinNatural SciencesRecombination DynamicMedicine
Rearrangements between tandem sequence homologies of various lengths are a major source of genomic change and can be deleterious to the organism. These rearrangements can result in either deletion or duplication of genetic material flanked by direct sequence repeats. Molecular genetic analysis of repetitive sequence instability in Escherichia coli has provided several clues to the underlying mechanisms of these rearrangements. We present evidence for three mechanisms of RecA-independent sequence rearrangements: simple replication slippage, sister-chromosome exchange-associated slippage, and single-strand annealing. We discuss the constraints of these mechanisms and contrast their properties with RecA-dependent homologous recombination. Replication plays a critical role in the two slipped misalignment mechanisms, and difficulties in replication appear to trigger rearrangements via all these mechanisms.
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The structure and evolution of the human β-globin gene family
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Frameshift Mutations and the Genetic Code
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