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The Min system is not required for precise placement of the midcell Z ring in Bacillus subtilis.
EMBO reports Dec, 2002 | Pubmed ID: 12446561
Early targeting of Min proteins to the cell poles in germinated spores of Bacillus subtilis: evidence for division apparatus-independent recruitment of Min proteins to the division site.
Molecular microbiology Jan, 2003 | Pubmed ID: 12492852
Increasing the ratio of Soj to Spo0J promotes replication initiation in Bacillus subtilis.
Journal of bacteriology Nov, 2003 | Pubmed ID: 14563866
The midcell replication factory in Bacillus subtilis is highly mobile: implications for coordinating chromosome replication with other cell cycle events.
Molecular microbiology Oct, 2004 | Pubmed ID: 15469516
Cell division protein DivIB influences the Spo0J/Soj system of chromosome segregation in Bacillus subtilis.
Molecular microbiology Jan, 2005 | Pubmed ID: 15659156
A streamlined approach to high-throughput proteomics.
Expert review of proteomics Apr, 2005 | Pubmed ID: 15892563
Bacillus subtilis YabA is involved in determining the timing and synchrony of replication initiation.
FEMS microbiology letters Jun, 2005 | Pubmed ID: 15927750
Trapping of a spiral-like intermediate of the bacterial cytokinetic protein FtsZ.
Journal of bacteriology Mar, 2006 | Pubmed ID: 16484179
Improved 2-DE of microorganisms after acidic extraction.
Electrophoresis Apr, 2006 | Pubmed ID: 16609937
A new assembly pathway for the cytokinetic Z ring from a dynamic helical structure in vegetatively growing cells of Bacillus subtilis.
Molecular microbiology Apr, 2007 | Pubmed ID: 17493130
The divisomal protein DivIB contains multiple epitopes that mediate its recruitment to incipient division sites.
Molecular microbiology Mar, 2008 | Pubmed ID: 18208530
Cell-division inhibitors: new insights for future antibiotics.
Nature reviews. Drug discovery Apr, 2008 | Pubmed ID: 18323848
Effects of oriC relocation on control of replication initiation in Bacillus subtilis.
Microbiology (Reading, England) Sep, 2009 | Pubmed ID: 19574305
Lateral FtsZ association and the assembly of the cytokinetic Z ring in bacteria.
Molecular microbiology Nov, 2009 | Pubmed ID: 19843223
Essential biological processes of an emerging pathogen: DNA replication, transcription, and cell division in Acinetobacter spp.
Microbiology and molecular biology reviews : MMBR Jun, 2010 | Pubmed ID: 20508250
Super-resolution imaging of the bacterial cytokinetic protein FtsZ.
Micron (Oxford, England : 1993) Sep, 2010 | Pubmed ID: 20933427
A simple plasmid-based system that allows rapid generation of tightly controlled gene expression in Staphylococcus aureus.
Microbiology (Reading, England) Mar, 2011 | Pubmed ID: 21109562
The Min system and nucleoid occlusion are not required for identifying the division site in Bacillus subtilis but ensure its efficient utilization.
PLoS genetics , 2012 | Pubmed ID: 22457634
Specific non-peroxide antibacterial effect of manuka honey on the Staphylococcus aureus proteome.
International journal of antimicrobial agents Jul, 2012 | Pubmed ID: 22580031
3D-SIM super resolution microscopy reveals a bead-like arrangement for FtsZ and the division machinery: implications for triggering cytokinesis.
PLoS biology , 2012 | Pubmed ID: 22984350
The effect of New Zealand kanuka, manuka and clover honeys on bacterial growth dynamics and cellular morphology varies according to the species.
PloS one , 2013 | Pubmed ID: 23418472
Synergism between Medihoney and rifampicin against methicillin-resistant Staphylococcus aureus (MRSA).
PloS one , 2013 | Pubmed ID: 23469049
Division site positioning in bacteria: one size does not fit all.
Frontiers in microbiology , 2014 | Pubmed ID: 24550892
Discovery of lead compounds targeting the bacterial sliding clamp using a fragment-based approach.
Journal of medicinal chemistry Mar, 2014 | Pubmed ID: 24592885
Manuka-type honeys can eradicate biofilms produced by Staphylococcus aureus strains with different biofilm-forming abilities.
PeerJ , 2014 | Pubmed ID: 24711974
Coordinating bacterial cell division with nutrient availability: a role for glycolysis.
mBio , 2014 | Pubmed ID: 24825009
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