I. E. Adriaans, C. Billaudeau, C. Cornilleau, K. S. Lim, C. Dinet, L. D. Renner, C. Peron-Cane, A. Jegou, R. W. Wong, A. Chastanet, A. Michelot, R. Carballido-Lopez
Thus, intrafilament nucleotide exchange enables MreB filaments to renew their nucleotide state without polymer turnover, revealing nucleotide-state rejuvenation as a new mode of biological polymer regulation.
Polymerization and disassembly govern the cellular functions of cytoskeletal proteins. Canonical nucleotide-dependent polymers, including actin and microtubules, renew their nucleotide state through subunit subunit dissociation, nucleotide exchange in solution and repolymerization. Yet the assembly dynamics of the membrane-bound bacterial actin MreB remain unresolved. Here, using total internal reflection fluorescence microscopy and high-speed atomic force microscopy, we visualise Bacillus subtilis MreB assembly on supported lipid bilayers in real time. ATP binding drives polymerization into symmetrically elongating filaments, whereas ATP hydrolysis within filaments promotes disassembly. Unexpectedly, nucleotides continuously exchange within membrane-bound filaments without detectable subunit turnover, coupling filament stability to the surrounding nucleotide pool: ATP exchange stabilizes filaments, whereas ADP exchange triggers rapid fragmentation and disassembly. Monte-Carlo modelling and single-cell in vivo imaging support this mechanism. Thus, intrafilament nucleotide exchange enables MreB filaments to renew their nucleotide state without polymer turnover, revealing nucleotide-state rejuvenation as a new mode of biological polymer regulation.