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Updated: Jul 5, 2026

Constructing Mutants in Serotype 1 Streptococcus pneumoniae strain 519/43
Published on: September 11, 2020
Streptococcus pyogenes pSM19035 requires dynamic assembly of ATP-bound ParA and ParB on parS DNA during plasmid
Florencia Pratto1, Aslan Cicek, Wilhelm A Weihofen
1Department of Microbial Biotechnology, National Centre of Biotechnology, CSIC, 28049 Madrid, Spain.
Abstract:
The accurate partitioning of Firmicute plasmid pSM19035 at cell division depends on ATP binding and hydrolysis by homodimeric ATPase delta(2) (ParA) and binding of omega(2) (ParB) to its cognate parS DNA. The 1.83 A resolution crystal structure of delta(2) in a complex with non-hydrolyzable ATPgammaS reveals a unique ParA dimer assembly that permits nucleotide exchange without requiring dissociation into monomers. In vitro, delta(2) had minimal ATPase activity in the absence of omega(2) and parS DNA. However, stoichiometric amounts of omega(2) and parS DNA stimulated the delta(2) ATPase activity and mediated plasmid pairing, whereas at high (4:1) omega(2) : delta(2) ratios, stimulation of the ATPase activity was reduced and delta(2) polymerized onto DNA. Stimulation of the delta(2) ATPase activity and its polymerization on DNA required ability of omega(2) to bind parS DNA and its N-terminus. In vivo experiments showed that delta(2) alone associated with the nucleoid, and in the presence of omega(2) and parS DNA, delta(2) oscillated between the nucleoid and the cell poles and formed spiral-like structures. Our studies indicate that the molar omega(2) : delta(2) ratio regulates the polymerization properties of (delta*ATP*Mg(2+))(2) on and depolymerization from parS DNA, thereby controlling the temporal and spatial segregation of pSM19035 before cell division.
Insights
The Firmicute plasmid partitioning relies on ATPase delta (ParA) and binding protein omega (ParB) interacting with parS DNA. The omega:delta ratio controls delta polymerization on DNA, ensuring accurate plasmid segregation during cell division.
Area of Science:
- Microbiology
- Molecular Biology
- Structural Biology
Background:
- Accurate plasmid segregation is crucial for bacterial cell division.
- The Firmicute plasmid pSM19035 partitioning involves ATPase delta (ParA) and binding protein omega (ParB).
Purpose of the Study:
- To elucidate the mechanism of pSM19035 plasmid segregation.
- To understand the role of ATPase delta (ParA) and binding protein omega (ParB) in plasmid partitioning.
Main Methods:
- X-ray crystallography (1.83 A resolution) of delta (ParA) complexed with ATPgammaS.
- In vitro biochemical assays measuring ATPase activity and DNA binding.
- In vivo studies observing delta (ParA) localization and polymerization.
Main Results:
- A unique delta (ParA) dimer assembly allows nucleotide exchange without monomer dissociation.
- Stoichiometric omega (ParB) and parS DNA stimulate delta (ParA) ATPase activity and plasmid pairing.
- High omega:delta ratios reduce ATPase stimulation and promote delta polymerization; this requires omega's parS DNA binding and N-terminus.
- In vivo, delta (ParA) oscillates between nucleoid and cell poles, forming spiral structures with omega and parS DNA.
Conclusions:
- The molar omega:delta ratio is a key regulator of delta (ParA) polymerization and depolymerization from parS DNA.
- This regulation controls the temporal and spatial segregation of pSM19035 plasmid before cell division.
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