ABSTRACT Although DNA-compacting proteins have been extensively characterized in vitro, knowledge of their DNA binding dynamics in vivo is greatly lacking. We have employed single-molecule tracking to characterize the motion of the three major chromosome compaction factors in Bacillus subtilis, Smc (structural maintenance of chromosomes) proteins, topoisomerase DNA gyrase, and histone-like protein HBsu. We show that these three proteins display strikingly different patterns of interaction with DNA; while Smc displays two mobility fractions, one static and one moving through the chromosome in a constrained manner, gyrase operates as a single slow-mobility fraction, suggesting that all gyrase molecules are catalytically actively engaged in DN...
All living cells have to master the extraordinarily extended and tangly nature of genomic DNA molecu...
Cells possess remarkable control of the folding and entanglement topology of long and flexible chrom...
Protein-DNA interactions are critical to many important biological functions, from transcription to ...
SMC complexes are widely conserved ATP-powered DNA-loop-extrusion motors indispensable for organizin...
International audienceSMC complexes are widely conserved ATP-powered DNA-loop-extrusion motors indis...
Thesis (Ph.D.)--Massachusetts Institute of Technology, Dept. of Biology, 2002.Includes bibliographic...
SummaryThe bacterial SMC (structural maintenance of chromosomes) complex binds nonspecifically to DN...
Structural maintenance of chromosomes (SMC) complexes play critical roles in chromosome dynamics in ...
International audienceChromosomes of a broad range of species, from bacteria to mammals, are structu...
Bacterial DNA gyrase introduces negative supercoils into chromosomal DNA and relaxes positive superc...
Chromosome organization mediated by structural maintenance of chromosomes (SMC) complexes is vital i...
Smc–ScpAB forms elongated, annular structures that promote chromosome segrega- tion, presumably by c...
SMC (structural maintenance of chromosomes) family members play essential roles in chromosome conden...
All living cells have to master the extraordinarily extended and tangly nature of genomic DNA molecu...
If fully stretched out, a typical bacterial chromosome would be nearly 1 mm long, approximately 1,00...
All living cells have to master the extraordinarily extended and tangly nature of genomic DNA molecu...
Cells possess remarkable control of the folding and entanglement topology of long and flexible chrom...
Protein-DNA interactions are critical to many important biological functions, from transcription to ...
SMC complexes are widely conserved ATP-powered DNA-loop-extrusion motors indispensable for organizin...
International audienceSMC complexes are widely conserved ATP-powered DNA-loop-extrusion motors indis...
Thesis (Ph.D.)--Massachusetts Institute of Technology, Dept. of Biology, 2002.Includes bibliographic...
SummaryThe bacterial SMC (structural maintenance of chromosomes) complex binds nonspecifically to DN...
Structural maintenance of chromosomes (SMC) complexes play critical roles in chromosome dynamics in ...
International audienceChromosomes of a broad range of species, from bacteria to mammals, are structu...
Bacterial DNA gyrase introduces negative supercoils into chromosomal DNA and relaxes positive superc...
Chromosome organization mediated by structural maintenance of chromosomes (SMC) complexes is vital i...
Smc–ScpAB forms elongated, annular structures that promote chromosome segrega- tion, presumably by c...
SMC (structural maintenance of chromosomes) family members play essential roles in chromosome conden...
All living cells have to master the extraordinarily extended and tangly nature of genomic DNA molecu...
If fully stretched out, a typical bacterial chromosome would be nearly 1 mm long, approximately 1,00...
All living cells have to master the extraordinarily extended and tangly nature of genomic DNA molecu...
Cells possess remarkable control of the folding and entanglement topology of long and flexible chrom...
Protein-DNA interactions are critical to many important biological functions, from transcription to ...