Skip to content

#MreB protein

2 public questions tagged with this topic.

Which cytoskeletal protein contributes to crescent-shaped bacteria?

Bacterial shape determination relies on diverse cytoskeletal filaments beyond tubulin homolog FtsZ and actin homolog MreB, allowing morphological complexity. Crescent-shaped morphology characteristic of Caulobacter crescentus and related alphaproteobacteria depends directly on filament-forming protein called crescentin, encoded by creS gene, which is structurally analogous to eukaryotic intermediate filament proteins such as lamins and keratins, featuring long central coiled-coil domain. Crescentin assembles spontaneously into 10 nanometer wide filaments without requiring nucleotide hydrolysis and attaches to membrane along inner concave curvature via membrane protein CTP synthase anchoring, imposing mechanical strain that biases peptidoglycan insertion toward outer side, thus creating persistent curvature maintained through growth. Mutants lacking crescentin become straight rods, while heterologous expression of crescentin in otherwise straight Escherichia coli imparts curvature, demonstrating sufficiency and modularity. In contrast, FtsZ drives septal peptidoglycan synthesis at midcell during division, ParM is actin-like protein forming dynamic filaments that push plasmids apart via polymerization-based motility. Therefore crescent morphology specifically depends on crescentin rather than division or plasmid partitioning proteins.

Ref: Cabeen & Jacobs-Wagner, Nature Rev Microbiol 2010, Bacterial Cell Shape; Ausiello et al., PNAS 2014, Crescentin Assembly.

The MreB cytoskeletal protein plays a role in:

MreB is a widely distributed bacterial homolog of eukaryotic actin conserved across rod-shaped bacteria including Escherichia coli, Bacillus subtilis, and Caulobacter crescentus, essential for maintaining cylindrical morphology and coordinating growth. Unlike eukaryotic actin that forms long helical filaments, MreB assembles into short, antiparallel double protofilaments associated with inner face of cytoplasmic membrane in an ATP-dependent manner, often guided by membrane regions enriched in specific phospholipids. Its primary morphogenetic function is to act as a dynamic scaffold organizing cell wall synthetic complexes, recruiting penicillin-binding protein PBP2, rod shape-determining proteins RodA and RodZ, and class A bifunctional transglycosylases, directing their processive circumferential motion around cell long axis tracked by single-molecule imaging. This coordinated movement ensures new peptidoglycan glycan strands are inserted in ordered hoops rather than randomly, preserving width and straightness during elongation. Pharmacological depolymerization with compound A22 or genetic depletion converts rods into spheres, reduces growth rate, and disorganizes wall insertion. FtsZ instead assembles Z-ring for division, illustrating division of labor between elongation and cytokinesis.

Ref: Burkman et al., Ann Rev Microbiol 2018, MreB and Rod Shape; Errington, Nature Rev Microbiol 2015, Bacterial Cytoskeleton.