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Updated: Apr 14, 2026

Reconstitution of Actin-Based Motility with Commercially Available Proteins
Published on: October 28, 2022
Structures of actin-like ParM filaments show architecture of plasmid-segregating spindles
Tanmay A M Bharat1, Garib N Murshudov1, Carsten Sachse2
1Structural Studies Division, MRC Laboratory of Molecular Biology, Francis Crick Avenue, Cambridge CB2 0QH, UK.
Abstract:
Active segregation of Escherichia coli low-copy-number plasmid R1 involves formation of a bipolar spindle made of left-handed double-helical actin-like ParM filaments. ParR links the filaments with centromeric parC plasmid DNA, while facilitating the addition of subunits to ParM filaments. Growing ParMRC spindles push sister plasmids to the cell poles. Here, using modern electron cryomicroscopy methods, we investigate the structures and arrangements of ParM filaments in vitro and in cells, revealing at near-atomic resolution how subunits and filaments come together to produce the simplest known mitotic machinery. To understand the mechanism of dynamic instability, we determine structures of ParM filaments in different nucleotide states. The structure of filaments bound to the ATP analogue AMPPNP is determined at 4.3 Å resolution and refined. The ParM filament structure shows strong longitudinal interfaces and weaker lateral interactions. Also using electron cryomicroscopy, we reconstruct ParM doublets forming antiparallel spindles. Finally, with whole-cell electron cryotomography, we show that doublets are abundant in bacterial cells containing low-copy-number plasmids with the ParMRC locus, leading to an asynchronous model of R1 plasmid segregation.
Insights
The simplest mitotic machinery uses actin-like ParM filaments to segregate plasmids in E. coli. Structural studies reveal how these filaments form dynamic spindles, pushing plasmids to cell poles.
Area of Science:
- Microbiology
- Structural Biology
- Molecular Biology
Background:
- Plasmid segregation in Escherichia coli relies on the ParMRC system.
- Actin-like ParM filaments form bipolar spindles to separate plasmids.
Purpose of the Study:
- To elucidate the near-atomic structure and arrangement of ParM filaments.
- To understand the mechanism of dynamic instability in ParM filaments.
- To investigate ParM filament structures in vitro and within bacterial cells.
Main Methods:
- Electron cryomicroscopy (cryo-EM) for high-resolution filament structures.
- Determination of ParM filament structures in different nucleotide states (e.g., AMPPNP).
- Whole-cell electron cryotomography for in-cell filament visualization.
Main Results:
- Near-atomic resolution structures of ParM filaments reveal strong longitudinal and weaker lateral interactions.
- Structures of ParM filaments bound to AMPPNP determined at 4.3 Å resolution.
- Reconstruction of antiparallel ParM doublets forming spindles, found abundantly in cells.
Conclusions:
- ParM filaments form the simplest known mitotic machinery for plasmid segregation.
- Dynamic instability mechanisms are linked to nucleotide states of ParM subunits.
- The presence of ParM doublets supports an asynchronous model of R1 plasmid segregation.
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