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Sasajima, Y.

Publications and source records attributed to Sasajima, Y..

5 recordsLinked to original sources

Cryo-EM of cytoskeletal 'fibril' protein involved in Spiroplasma swimming

Spiroplasma, parasitic or commensal bacteria, can swim by switching the handedness of its helical cell body. A helical cell body is formed by an internal ribbon of MreB, an actin superfamily, and Spiroplasma-specific fibril proteins. Here we have solved the structure of the fibril filament by single-particle cryo-electron microscopy at 3.6 [A] resolution and built its atomic structure. The structure is composed of repeated rings and cylinders. The N-terminal cylinder of the fibril protein shows a structure similar to that of S-adenosylhomocysteine nucleosidase, while the C-terminal ring does not show similarity to other proteins. The filament is nonpolar and flexible, possessing a helical pitch of 700 nm, consistent with cell helicity. Cryo-electron tomography revealed aligned several MreB filaments in the center of the ribbon, flanked by membrane-binding fibril filaments through electrostatic interactions. This study discusses the evolution and roles of the fibril filament.

microbiology↗

Reconstitution of Spiroplasma swimming by expressing two bacterial actins in synthetic minimal bacterium

Motility is one of the most important features of life, but its evolutionary origin remains unknown. In this study, we focused on Spiroplasma, commensal, or parasitic bacteria. They swim by switching the helicity of a ribbon-like cytoskeleton that comprises six proteins, each of which evolved from a nucleosidase and bacterial actin called MreB. We expressed these proteins in a synthetic, non-motile minimal bacterium, JCVI-syn3.0B, whose reduced genome was computer-designed and chemically synthesized. The synthetic bacterium exhibited swimming motility with features characteristic of Spiroplasma swimming. Moreover, some combinations of the two proteins produced a helical cell shape and swimming, suggesting that the swimming originated from the differentiation and coupling of bacterial actins, and we also obtained a minimal system for motility of the synthetic bacterium. One-Sentence SummaryThe minimal system comprised two bacterial actins that provided cell helicity and swimming to the synthetic minimal bacterium.

synthetic biology↗

Force and step size of gliding motility in human pathogenic bacterium Mycoplasma pneumoniae

Mycoplasma pneumoniae, a human pathogenic bacterium, binds to sialylated oligosaccharides and glides on host cell surfaces via a unique mechanism. Gliding motility is essential for initiating the infectious process. In the present study, we measured the stall force of an M. pneumoniae cell carrying a bead that was manipulated using optical tweezers on two strains. The stall forces of M129 and FH strains were averaged to be 23.7 and 19.7 pN, respectively, much weaker than those of other bacterial surface motilities. The binding activity and gliding speed of the M129 strain on sialylated oligosaccharides were eight and two times higher than those of the FH strain, respectively, showing that binding activity is not linked to gliding force. Gliding speed decreased when cell binding was reduced by addition of free sialylated oligosaccharides, indicating the existence of a drag force during gliding. We detected stepwise movements, likely caused by a single leg under 0.2-0.3 mM free sialylated oligosaccharides. A step size of 14-19 nm showed that 25-35 propulsion steps per second are required to achieve the usual gliding speed. The step size was reduced to less than half with the load applied using optical tweezers, showing that a 2.5 pN force from a cell is exerted on a leg. The work performed in this step was 16%-30% of the free energy of the hydrolysis of ATP molecules, suggesting that this step is linked to the elementary process of M. pneumoniae gliding. IMPORTANCEHuman mycoplasma pneumonia is caused by the bacterium Mycoplasma pneumoniae. This tiny bacterium, shaped like a missile, binds to human epithelial surfaces and spreads using a unique gliding mechanism to establish infection. Here, we analyzed the movements and force of this motility using a special setup: optical tweezers. We then obtained detailed mechanical data to understand this mechanism. Furthermore, we succeeded in detecting small steps of nanometers in its gliding, which is likely linked to the elementary process of the core reaction: chemical to mechanical energy conversion. These data provide critical information to both control this human pathogen and explore new ideas for artificial molecular machines.

microbiology↗

Structure and polymerization dynamics of bacterial actin MreB3 and MreB5 involved in Spiroplasma swimming.

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.

biochemistry↗

Elucidation of fibril structure responsible for swimming in Spiroplasma using electron microscopy

Spiroplasma, which are known pathogens and commensals of arthropods and plants, are helical-shaped bacteria that lack a peptidoglycan layer. Spiroplasma swim by alternating between left- and right-handed helicity. Of note, this system is not related to flagellar motility, which is widespread in bacteria. A helical ribbon running along the inner side of the helical cell should be responsible for cell helicity and comprises the bacterial actin homolog, MreB, and a protein specific to Spiroplasma, fibril. Here, we isolated the ribbon and its major component, fibril filament, for electron microscopy (EM) analysis. Single-particle analysis of the fibril filaments using the negative-staining EM revealed a three-dimensional chain structure composed of rings with a size of 11 nm wide and 6 nm long, connected by a backbone cylinder with an 8.7 nm interval with a twist along the filament axis. This structure was verified through EM tomography of quick-freeze deep-etch replica sample, with a focus on its handedness. The handedness and pitch of the helix for the isolated ribbon and fibril filament agreed with those of the cell in the resting state. Structures corresponding to the alternative state were not identified. These results suggest that the helical cell structure is supported by fibril filaments; however, the helical switch is caused by the force generated by the MreB proteins. The isolation and structural outline of the fibril filaments provide crucial information for an in-depth clarification of the unique swimming mechanism of Spiroplasma.

microbiology↗