bioRxiv · 10.1101/2021.04.07.438887
Structure and polymerization dynamics of bacterial actin MreB3 and MreB5 involved in Spiroplasma swimming.
Abstract
MreB is a bacterial protein belonging to the actin superfamily. It polymerises into an antiparallel double-stranded filament that generally functions in cell shape determination by maintaining cell wall synthesis. Spiroplasma eriocheiris, a helical wall-less bacterium, has five classes of MreB homologs (SpeMreB1-5) that are likely to be involved in swimming motility. Here, we investigated the structure, ATPase activity, and polymerisation dynamics of SpeMreB3 and SpeMreB5. SpeMreB3 polymerised into an antiparallel double-stranded filament, and SpeMreB5 formed sheets, including the antiparallel filament, upon the binding of a nucleotide. SpeMreB3 showed slow Pi release owing to the lack of an amino acid motif conserved in the catalytic centre of MreB family proteins. Our crystal structures of SpeMreB3 and analyses of the mutant variants showed that the amino acid motif most likely plays a role in eliminating the proton of the nucleophilic water for ATP hydrolysis. Our sedimentation assay suggests that SpeMreB3 has a lower polymerisation activity than SpeMreB5, while their polymerisation dynamics are qualitatively similar to those of other actin superfamily proteins, in which ATP hydrolysis stabilises the filament, and Pi release leads to depolymerisation.
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Takahashi, D., Fujiwara, I., Sasajima, Y., Narita, A., Imada, K., Miyata, M.. 2021-04-09. Structure and polymerization dynamics of bacterial actin MreB3 and MreB5 involved in Spiroplasma swimming.. https://doi.org/10.1101/2021.04.07.438887
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