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TransFLP — A Method to Genetically Modify Vibrio cholerae Based on Natural Transformation and FLP-recombination
Published on: October 8, 2012
ParA2, a Vibrio cholerae chromosome partitioning protein, forms left-handed helical filaments on DNA
Monica P Hui1, Vitold E Galkin, Xiong Yu
1Department of Molecular Biology and Microbiology, Tufts University School of Medicine, 136 Harrison Avenue, Boston, MA 02111, USA.
Abstract:
Most bacterial chromosomes contain homologs of plasmid partitioning (par) loci. These loci encode ATPases called ParA that are thought to contribute to the mechanical force required for chromosome and plasmid segregation. In Vibrio cholerae, the chromosome II (chrII) par locus is essential for chrII segregation. Here, we found that purified ParA2 had ATPase activities comparable to other ParA homologs, but, unlike many other ParA homologs, did not form high molecular weight complexes in the presence of ATP alone. Instead, formation of high molecular weight ParA2 polymers required DNA. Electron microscopy and three-dimensional reconstruction revealed that ParA2 formed bipolar helical filaments on double-stranded DNA in a sequence-independent manner. These filaments had a distinct change in pitch when ParA2 was polymerized in the presence of ATP versus in the absence of a nucleotide cofactor. Fitting a crystal structure of a ParA protein into our filament reconstruction showed how a dimer of ParA2 binds the DNA. The filaments formed with ATP are left-handed, but surprisingly these filaments exert no topological changes on the right-handed B-DNA to which they are bound. The stoichiometry of binding is one dimer for every eight base pairs, and this determines the geometry of the ParA2 filaments with 4.4 dimers per 120 A pitch left-handed turn. Our findings will be critical for understanding how ParA proteins function in plasmid and chromosome segregation.
Insights
Bacterial ParA proteins are crucial for segregating chromosomes and plasmids. In Vibrio cholerae, ParA2 forms unique DNA-bound filaments essential for chromosome segregation, revealing new insights into bacterial cell division.
Area of Science:
- Microbiology
- Molecular Biology
- Structural Biology
Background:
- Bacterial chromosomes and plasmids utilize partitioning (par) loci for segregation.
- ParA ATPases are key players in the mechanical forces driving segregation.
Purpose of the Study:
- To investigate the polymerization and DNA-binding properties of Vibrio cholerae ParA2.
- To elucidate the structural mechanism of ParA2-mediated DNA binding and filament formation.
Main Methods:
- Purification and biochemical assays of ParA2.
- Electron microscopy and 3D reconstruction of ParA2-DNA complexes.
- Structural modeling using ParA crystal structures.
Main Results:
- ParA2 forms bipolar helical filaments on double-stranded DNA, requiring DNA for polymerization.
- Filament structure differs significantly with and without ATP, forming left-handed helices.
- ParA2 binds DNA in a sequence-independent manner with a stoichiometry of one dimer per eight base pairs.
Conclusions:
- ParA2 filament formation on DNA is a critical step in chromosome segregation.
- The unique structure of ParA2 filaments provides a model for ParA-mediated segregation mechanisms.
- Findings advance understanding of bacterial chromosome and plasmid partitioning.
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