JW

J.M. Wiktor

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4 records found

Although the physical properties of chromosomes, including their morphology, mechanics, and dynamics are crucial for their biological function, many basic questions remain unresolved. Here we directly image the circular chromosome in live E. coli with a broadened cell shape. We find that it exhibits a torus topology with, on average, a lower-density origin of replication and an ultrathin flexible string of DNA at the terminus of replication. At the single-cell level, the torus is strikingly heterogeneous, with blob-like Mbp-size domains that undergo major dynamic rearrangements, splitting and merging at a minute timescale. Our data show a domain organization underlying the chromosome structure of E. coli, where MatP proteins induce site-specific persistent domain boundaries at Ori/Ter, while transcription regulators HU and Fis induce weaker transient domain boundaries throughout the genome. These findings provide an architectural basis for the understanding of the dynamic spatial organization of bacterial genomes in live cells. ...
Journal article (2018) - Jakub Wiktor, Marit Van Der Does, Lisa Büller, David J. Sherratt, Cees Dekker
The formation of 3 single-stranded DNA overhangs is a first and essential step during homology-directed repair of double-stranded breaks (DSB) of DNA, a task that in Escherichia coli is performed by RecBCD. While this protein complex has been well characterized through in vitro single-molecule studies, it has remained elusive how end resection proceeds in the crowded and complex environment in live cells. Here, we develop a two-color fluorescent reporter to directly observe the resection of individual inducible DSB sites within live E. coli cells. Realtime imaging shows that RecBCD during end resection degrades DNA with remarkably high speed (i"1.6 kb/s) and high processivity (>7sim;100 kb). The results show a pronounced asymmetry in the processing of the two DNA ends of a DSB, where much longer stretches of DNA are degraded in the direction of terminus. The microscopy observations are confirmed using quantitative polymerase chain reaction measurements of the DNA degradation. Deletion of the recD gene drastically decreased the length of resection, allowing for recombination with short ectopic plasmid homologies and significantly increasing the efficiency of horizontal gene transfer between strains.We thus visualized and quantified DNA end resection by the RecBCD complex in live cells, recorded DNA-degradation linked to end resection and uncovered a general relationship between the length of end resection and the choice of the homologous recombination template. ...
Doctoral thesis (2017) - Jakub Wiktor
It seems that the evolution of life on this planet repeatedly acknowledges the value of the genetic information, by providing an abundant variety of elegant mechanisms for the repair of damage occurring to DNA. The need for such mechanisms tells us that the state of cellular DNA is under constant threat of disintegration and decay. This may be obvious now, but was previously neglected and it took almost two decades after the discovery of the double-helix structure of DNA to realize that DNA is subject to a range of distinct forms of damage. Double-stranded breaks (DSBs) are a particularly dangerous damage occurring when both of the DNA strands are broken at the same position along the DNA. In order to recover the integrity of the genome, the broken strands must undergo an elaborate process to find a repair template elsewhere in the cell where the same genetic code is imprinted. In this thesis we focus on aspects of the repair of such lesions and we approach this problem from multiple angles to obtain insights into the processing of breaks and the relation between the homology search and the spatial organization of bacterial genome. ...
Journal article (2016) - Jakub Wiktor, Christian Lesterlin, David J. Sherratt, Cees Dekker
Programmable control of the cell cycle has been shown to be a powerful tool in cell-biology studies. Here, we develop a novel system for controlling the bacterial cell cycle, based on binding of CRISPR/dCas9 to the origin-of-replication locus. Initiation of replication of bacterial chromosomes is accurately regulated by the DnaA protein, which promotes the unwinding of DNA at oriC. We demonstrate that the binding of CRISPR/dCas9 to any position within origin or replication blocks the initiation of replication. Serial-dilution plating, single-cell fluorescence microscopy, and flow-cytometry experiments show that ongoing rounds of chromosome replication are finished upon CRISPR/dCas9 binding, but no new rounds are initiated. Upon arrest, cells stay metabolically active and accumulate cell mass. We find that elevating the temperature from 37 to 42°C releases the CRISR/dCas9 replication inhibition, and we use this feature to recover cells from the arrest. Our simple and robust method of controlling the bacterial cell cycle is a useful asset for synthetic biology and DNA-replication studies in particular. The inactivation of CRISPR/dCas9 binding at elevated temperatures may furthermore be of wide interest for CRISPR/Cas9 applications in genomic engineering. ...