The new bacterial cell biology: moving parts and subcellular architecture.
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Summary
The striking conceptual and molecular similarities between prokaryotic and eukaryotic cell biology thus make bacteria powerful model systems for studying fundamental cellular questions.
- Type
- review
- Published
- 2005-03-11
- Cited by
- 189
- References
- 93
- Access
- Open access
- OpenAlex
- https://openalex.org/W1970711934
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:8894304
Keywords
Biology, Multicellular organism, Cell biology, Cytoskeleton, Intracellular
References
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- Environmental signals and regulatory pathways that influence biofilm formation
- Spatial and temporal organization of replicating Escherichia coli chromosomes
- MreB, the cell shape‐determining bacterial actin homologue, co‐ordinates cell wall morphogenesis in Caulobacter crescentus
- FtsZ ring structure associated with division in Escherichia coli
- Control of cell shape in bacteria: helical, actin-like filaments in Bacillus subtilis.
- Setting the pace: mechanisms tying Caulobacter cell-cycle progression to macroscopic cellular events.
- Control of cell morphogenesis in bacteria: two distinct ways to make a rod-shaped cell.
- Cytokinesis monitoring during development; rapid pole-to-pole shuttling of a signaling protein by localized kinase and phosphatase in Caulobacter.
Cited by
- [Molecular mechanism of Mycoplasma gliding; a unique biomotility].
- Virus–host interactions: insights from the replication cycle of the large Paramecium bursaria chlorella virus
- The evolution of eukaryotic cilia and flagella as motile and sensory organelles.
- Bioscience, bioinnovations, and bioethics.
- Two-component signaling systems and cell cycle control in Caulobacter crescentus.
- Cell-free Biosystems in the Production of Electricity and Bioenergy.
- Molecular Interactions Involved in the Biogenesis of Bacterial Microcompartments
- Thermostable DNA polymerases in replication, repair and biotechnology
- Die Rolle von Mre- Proteinen und Teichonsäuren bei der morphologischen Differenzierung von Streptomyces coelicolor A3(2)
- Coordinate synthesis and protein localization in a bacterial organelle by the action of a penicillin-binding-protein
- Bacterial Filament Systems: Toward Understanding Their Emergent Behavior and Cellular Functions*
- Preparation and purification of DNA from bacterial cells; characterization of plasmid DNA
- High-Throughput Screening of Bacterial Protein Localization
- The making of tRNAs and more - RNase P and tRNase Z.
- Positioning of chemosensory proteins and FtsZ through the Rhodobacter sphaeroides cell cycle
- Functionalization of bacterial magnetic nanoparticles by genetic engineering and encapsulation with inorganic coatings
- BacM, an N-terminally processed bactofilin of Myxococcus xanthus, is crucial for proper cell shape
- Circadian Gene Expression in Cyanobacteria
- De novo morphogenesis in L-forms via geometric control of cell growth
- The Conserved Polarity Factor PodJ1 Impacts Multiple Cell Envelope-Associated Functions in Sinorhizobium meliloti
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