Journal of Biological Chemistry · 2013 · 26 citations · 50 references
Sister ChromosomesEscherichia Coli ChromosomesGeneric Stress ResponseGeneticsGenomic MechanismMolecular BiologyGenomicsGenome CondensationStress-induced CondensationGenome InstabilityProkaryotic SystemGenome StructureDna ReplicationChromosomal RearrangementMolecular MicrobiologyChromatinNatural SciencesChromosome BiologyMicrobiologySystems BiologyMedicineGenome EditingBacterial Genomes ResultsMicrobial Genetics
Genome condensation is increasingly recognized as a generic stress response in bacteria. To better understand the physiological implications of this response, we used fluorescent markers to locate specific sites on Escherichia coli chromosomes following exposure to cytotoxic stress. We find that stress-induced condensation proceeds through a nonrandom, zipper-like convergence of sister chromosomes, which is proposed to rely on the recently demonstrated intrinsic ability of identical double-stranded DNA molecules to specifically identify each other. We further show that this convergence culminates in spatial proximity of homologous sites throughout chromosome arms. We suggest that the resulting apposition of homologous sites can explain how repair of double strand DNA breaks might occur in a mechanism that is independent of the widely accepted yet physiologically improbable genome-wide search for homologous templates. We claim that by inducing genome condensation and orderly convergence of sister chromosomes, diverse stress conditions prime bacteria to effectively cope with severe DNA lesions such as double strand DNA breaks.
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The importance of repairing stalled replication forks
Michael M. Cox, Myron F. Goodman, Kenneth N. Kreuzer et al. · Nature · 2000 · 1K citations
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Interphase chromosomes undergo constrained diffusional motion in living cells
Wallace F. Marshall, Aaron F. Straight, John F. Marko et al. · Current Biology · 1997 · 673 citations · Full text