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B E Funnell

Publications and source records attributed to B E Funnell.

At least 19 recordsLinked to original sources

Probing the ATP-binding site of P1 ParA: partition and repression have different requirements for ATP binding and hydrolysis.

The ParA family of proteins is involved in partition of a variety of plasmid and bacterial chromosomes. P1 ParA plays two roles in partition: it acts as a repressor of the par operon and has an undefined yet indispensable role in P1 plasmid localization. We constructed seven mutations in three putative ATP-binding motifs of ParA. Three classes of phenotypes resulted, each represented by mutations in more than one motif. Three mutations created 'super-repressors', in which repressor activity was much stronger than in wild-type ParA, while the remainder damaged repressor activity. All mutations eliminated partition activities, but two showed a plasmid stability defect that was worse than that of a null mutation. Four mutant ParAs, two super-repressors and two weak repressors, were analyzed biochemically, and all exhibited damaged ATPase activity. The super-repressors bound site-specifically to the par operator sequence, and this activity was strongly stimulated by ATP and ADP. These results support the proposal that ATP binding is essential but hydrolysis is inhibitory for ParA's repressor activity and suggest that ATP hydrolysis is essential for plasmid localization.

Adenosine Triphosphate↗

The DNA binding domains of P1 ParB and the architecture of the P1 plasmid partition complex.

Stable maintenance of P1 plasmids in Escherichia coli is mediated by a high affinity nucleoprotein complex called the partition complex, which consists of ParB and the E. coli integration host factor (IHF) bound specifically to the P1 parS site. IHF strongly stimulates ParB binding to parS, and the minimal partition complex contains a single dimer of ParB. To examine the architecture of the partition complex, we have investigated the DNA binding activity of various ParB fragments. Gel mobility shift and DNase I protection assays showed that the first 141 residues of ParB are dispensable for the formation of the minimal, high affinity partition complex. A fragment missing only the last 16 amino acids of ParB bound specifically to parS, but binding was weak and was no longer stimulated by IHF. The ability of IHF to stimulate ParB binding to parS correlated with the ability of ParB to dimerize via its C terminus. Using full and partial parS sites, we show that two regions of ParB, one in the center and the other near the C terminus of the protein, interact with distinct sequences within parS. Based on these data, we have proposed a model of how the ParB dimer binds parS to form the minimal partition complex.

Bacterial Proteins↗

Stoichiometry of P1 plasmid partition complexes.

The P1 plasmid prophage is faithfully partitioned by a high affinity nucleoprotein complex assembled at the centromere-like parS site. This partition complex is composed of P1 ParB and Escherichia coli integration host factor (IHF), bound specifically to parS. We have investigated the assembly of ParB at parS and its stoichiometry of binding. Measured by gel mobility shift assays, ParB and IHF bind tightly to parS and form a specific complex, called I + B1. We observed that as ParB concentration was increased, a second, larger complex (I + B2) formed, followed by the formation of larger complexes, indicating that additional ParB molecules joined the initial complex. Shift Western blotting experiments indicated that the I + B2 complex contained twice as much ParB as the I + B1 complex. Using mixtures of ParB and a larger polyhistidine-tagged version of ParB (His-ParB) in DNA binding assays, we determined that the initial I + B1 complex contains one dimer of ParB. Therefore, one dimer of ParB binds to its recognition sequences that span an IHF-directed bend in parS. Once this complex forms, a second dimer can join the complex, but this assembly requires much higher ParB concentrations.

Bacterial Proteins↗

Intracellular localization of P1 ParB protein depends on ParA and parS.

The P1 partition system promotes faithful plasmid segregation during the Escherichia coli cell cycle. This system consists of two proteins, ParA and ParB, that act on a plasmid site called parS. By immunofluorescence microscopy, we observed that ParB localizes to discrete foci that are most often located close to the one-quarter and three-quarters positions of cell length. The visualization of ParB foci depended completely on the presence of parS, although their visualization was independent of the chromosomal context of parS (in P1 or the bacterial chromosome). In integration host factor-defective mutants, in which ParB binding to parS is weakened, only a fraction of the total pool of ParB had converged into foci. Taken together, these results indicate that parS recruits a pool of ParB into foci and that the resulting ParB-parS complexes serve as substrates for the segregation reaction. In the absence of ParA, the position of ParB foci in cells is perturbed, indicating that at least one of the roles of ParA is to direct ParB-parS complexes to the proper one-quarter positions from a cell pole. Finally, inhibition of cell division did not inhibit localization of ParB foci in cells, indicating that the positioning signals in the E. coli host that are needed for P1 partition do not depend on early division events.

Bacterial Proteins↗

P1 ParA interacts with the P1 partition complex at parS and an ATP-ADP switch controls ParA activities.

The partition system of P1 plasmids is composed of two proteins, ParA and ParB, and a cis-acting site parS. parS is wrapped around ParB and Escherichia coli IHF protein in a higher order nucleoprotein complex called the partition complex. ParA is an ATPase that autoregulates the expression of the par operon and has an essential but unknown function in the partition process. In this study we demonstrate a direct interaction between ParA and the P1 partition complex. The interaction was strictly dependent on ParB and ATP. The consequence of this interaction depended on the ParB concentration. At high ParB levels, ParA was recruited to the partition complex via a ParA-ParB interaction, but at low ParB levels, ParA removed or disassembled ParB from the partition complex. ADP could not support these interactions, but could promote the site-specific DNA binding activity of ParA to parOP, the operator of the par operon. Conversely, ATP could not support a stable interaction of ParA with parOP in this assay. Our data suggest that ParA-ADP is the repressor of the par operon, and ParA-ATP, by interacting with the partition complex, plays a direct role in partition. Therefore, one role of adenine nucleotide binding and hydrolysis by ParA is that of a molecular switch controlling entry into two separate pathways in which ParA plays different roles.

Adenosine Triphosphate↗

P1 ParB domain structure includes two independent multimerization domains.

ParB is one of two P1-encoded proteins that are required for active partition of the P1 prophage in Escherichia coli. To probe the native domain structure of ParB, we performed limited proteolytic digestions of full-length ParB, as well as of several N-terminal and C-terminal deletion fragments of ParB. The C-terminal 140 amino acids of ParB form a very trypsin-resistant domain. In contrast, the N terminus is more susceptible to proteolysis, suggesting that it forms a less stably folded domain or domains. Because native ParB is a dimer in solution, we analyzed the ability of ParB fragments to dimerize, using both the yeast two-hybrid system and in vitro chemical cross-linking of purified proteins. These studies revealed that the C-terminal 59 amino acids of ParB, a region within the protease-resistant domain, are sufficient for dimerization. Cross-linking and yeast two-hybrid experiments also revealed the presence of a second self-association domain within the N-terminal half of ParB. The cross-linking data also suggest that the C terminus is inhibitory to multimerization through the N-terminal domain in vitro. We propose that the two multimerization domains play distinct roles in partition complex formation.

Amino Acid Sequence↗

Modulation of the P1 plasmid partition protein ParA by ATP, ADP, and P1 ParB.

ParA is an essential P1 plasmid partition protein. It represses transcription of the par genes (parA and parB) and is also required for a second, as yet undefined step in partition. ParA is a ParB-stimulated ATPase that binds to a specific DNA site in the par promoter region. ATP binding and hydrolysis by ParA affect ParA activities in vitro. ATP and ADP binding stimulate ParA DNA binding and dimerization; however, ATP hydrolysis has a negative effect on DNA binding. Our current experiments reveal that ATP binding and hydrolysis affect ParA conformation and ParA sensitivity to ParB. Nucleotide binding assays show that ParA binds ATP better than ADP (Kd values of 33 and 50 microM, respectively). Interaction with these nucleotides as well as ATP hydrolysis by ParA alter ParA conformation as established by CD and ParA sensitivity to heat denaturation. Finally, we show that ParB stimulates ParA DNA binding. This stimulation requires ATP hydrolysis in vitro, suggesting that one role for ATP hydrolysis in vivo is to make ParA repressor sensitive to ParB. Our observations lead to the suggestion that ATP binding and hydrolysis have separable roles in ParA repressor function and perhaps in ParA partition functions as well.

Adenosine Diphosphate↗

Partition of P1 plasmids in Escherichia coli mukB chromosomal partition mutants.

The partition system of the low-copy-number plasmid/prophage of bacteriophage P1 encodes two proteins, ParA and ParB, and contains a DNA site called parS. ParB and the Escherichia coli protein IHF bind to parS to form the partition complex, in which parS is wrapped around ParB and IHF in a precise three-dimensional conformation. Partition can be thought of as a positioning reaction; the plasmid-encoded components ensure that at least one copy of the plasmid is positioned within each new daughter cell. We have used an E. coli chromosomal partition mutant to test whether this positioning is mediated by direct plasmid-chromosomal attachment, for example, by pairing of the partition complex that forms at parS with a bacterial attachment site. The E. coli MukB protein is required for proper chromosomal positioning, so that mukB mutants generate some cells without chromosomes (anucleate cells) at each cell division. We analyzed the plasmid distribution in nucleate and anucleate mukB cells. We found that P1 plasmids are stable in mukB mutants and that they partition into both nucleate and anucleate cells. This indicates that the P1 partition complex is not used to pair plasmids with the host chromosome and that P1 plasmids must be responsible for their own proper cellular localization, presumably through host-plasmid protein-protein interactions.

Bacterial Proteins↗

The P1 plasmid partition protein ParA. A role for ATP in site-specific DNA binding.

ParA, a P1 protein required for partition of the prophage plasmid, regulates expression of its own gene and another partition gene, parB, from a promoter upstream of parA. The ATP-dependent ParA DNA binding activity to the par promoter is thought to mediate this regulation. An alternate purification for ParA is presented. This highly purified ParA was used to examine ParA DNA binding activity using DNase I protection assays. At high concentration, ParA bound to the par promoter in the absence of ATP, demonstrating that although ATP stimulates, it is not required for DNA binding. Non-hydrolyzable ATP analogues as well as ADP stimulated binding more than ATP, suggesting that the act of hydrolysis is coupled to release of the DNA. Glycerol gradient sedimentation and chemical cross-linking experiments suggest that ParA exists in an monomer-dimer equilibrium that is shifted toward dimer formation by adding ATP or ADP. These observations lead to the proposal that the more active DNA binding form of ParA is a dimer and that the effects of ATP and ParA concentration on DNA binding are a direct result of their effects on oligomerization.

Adenosine Diphosphate↗

P1 plasmid partition: binding of P1 ParB protein and Escherichia coli integration host factor to altered parS sites.

The Escherichia coli integration host factor (IHF) participates in P1 plasmid partition by assisting the interaction of P1 ParB protein with its specific site, parS. Together they form an extremely high-affinity protein-DNA complex, in which parS DNA is wrapped around a core of ParB and IHF protein in a precise three-dimensional conformation. We have investigated the interaction of ParB and IHF with mutant DNA sites, to examine protein specificity and cooperativity. The results indicate that ParB specifically recognizes two separate types of sequence repeats in its minimal binding site in one half of the parS site. The affinity of ParB or IHF for parS is much greater in the presence of the other protein. Mutations that decrease ParB or IHF binding to parS have relatively minor defects in vivo, because each protein still binds well to parS in the presence of the other protein. We observed that ParB acts better when provided in cis than in trans to parS in vivo. Our experiments suggest that in vivo, the local concentration of ParB protein near the plasmid is high, so that ParB can act reasonably well to promote partition in cells without IHF. However, this activity is lower than in wild-type cells, indicating that IHF is essential for long-term plasmid stability.

Bacterial Proteins↗

The P1 plasmid partition complex at parS. II. Analysis of ParB protein binding activity and specificity.

The P1 plasmid prophage is partitioned by a very high affinity protein complex at its partition site, parS, that contains the P1 ParB protein and Escherichia coli integration host factor (IHF). ParB binds to regions of parS that flank the IHF binding site. In this report, we have examined the sequences to which ParB binds, the spatial relationship between them, and the effect of IHF on ParB binding patterns. Methylation protection and interference experiments were performed on supercoiled plasmids. Mutations that interfered with the action of both proteins in vivo were identified following random mutagenesis of parS. These studies revealed that ParB binds to a complicated, nonsymmetrical region in the right side of parS. ParB recognizes a partial copy of this sequence, TCGCCA, in the left side of parS with much lower affinity. The presence of IHF greatly facilitates the interaction of ParB with parS such that both sides bind with an equal affinity that is much greater than to either side alone. The stimulation by IHF is strongly influenced by helical phasing. These observations support the proposal that ParB is directed, by the bend created by IHF, to bind simultaneously to properly placed sequences flanking the IHF site.

Bacterial Proteins↗

Participation of the bacterial membrane in DNA replication and chromosome partition.

The concept that the bacterial membrane plays an active role in the regulation of DNA replication and in segregation, or 'partition', of the bacterial chromosome at cell division was proposed in 1963. Membrane participation offered a relatively simple way to coordinate replication and partition. Some of the details of this model have been confirmed, while others have been changed. In fact, it appears that the membrane may play several distinct roles in these processes, and recent experiments have begun to identify the complexity of membrane involvement.

Journal Article↗

The P1 plasmid partition complex at parS. The influence of Escherichia coli integration host factor and of substrate topology.

The P1 ParB protein is required for active partition and thus stable inheritance of the plasmid prophage. ParB and the Escherichia coli protein integration host factor (IHF) participate in the assembly of a partition complex at the centromere-like site parS. In this report the role of IHF in the formation of the partition complex has been explored. First, ParB protein was purified for these studies, which revealed that ParB forms a dimer in solution. Next, the IHF binding site was mapped to a 29-base pair region within parS, including the sequence TAACTGACTGTTT (which differs from the IHF consensus in two positions). IHF induced a strong bend in the DNA at its binding site. Versions of parS which have lost or damaged the IHF binding site bound ParB with greatly reduced affinity in vitro and in vivo. Measurements of binding constants showed that IHF increased ParB affinity for the wild-type parS site by about 10,000-fold. Finally, DNA supercoiling improved ParB binding in the presence of IHF but not in its absence. These observations led to the proposal that IHF and superhelicity assist ParB by promoting its precise positioning at parS, a spatial arrangement that results in a high affinity of ParB for parS.

Bacterial Proteins↗

Participation of Escherichia coli integration host factor in the P1 plasmid partition system.

Stable maintenance of the plasmid prophage of bacteriophage P1 requires the P1 ParB protein, which acts on a DNA site termed parS. Fractionation of extracts from Escherichia coli cells overproducing ParB revealed that a host factor, in addition to ParB, is required to observe maximal binding to parS, as detected by a nitrocellulose filter retention assay. Two observations indicated that this factor is E. coli integration host factor (IHF): purified IHF substituted specifically for host factor from a crude lysate, and lysates prepared from cells deficient in the beta subunit of IHF (E. coli hip mutants; also called himD) contained no host factor activity. Binding studies in vitro and competition experiments in vivo suggest that two types of ParB-parS DNA complexes can exist that differ in (i) the presence of IHF, (ii) the amount of parS sequence with which the proteins interact, and (iii) the specificity of their participation in partition. Under normal conditions, with the intact P1 partition region and wild-type bacteria, P1 plasmids apparently use IHF to assist ParB in the assembly of a functional partition complex at parS.

Bacterial Proteins↗

Mini-P1 plasmid partitioning: excess ParB protein destabilizes plasmids containing the centromere parS.

The partition system of the unit-copy plasmid P1 consists of two proteins, the parA and parB gene products, and a cis-acting site, parS. Production of high levels of the P1 ParB protein, from an external promoter on a high-copy-number vector, inhibits the propagation of lambda-mini-P1 prophages and destabilizes other P1-derived plasmids. The interference by ParB protein depends on the parS site, or centromere, of the P1 partition region; plasmids lacking parS are unaffected. The defect is more severe than the defect due to mutations that simply eliminate par function. In the presence of excess ParB protein, plasmids carrying parS are more unstable than would be predicted from a random distribution at cell division. The destabilization is a segregation defect, as the copy number of parS-bearing plasmids is not decreased under these conditions. Thus, it appears that ParB protein binds to parS; if too much protein is present, it sequesters such plasmids so they cannot be properly, or even randomly, partitioned. This suggests that under normal conditions, ParB protein recognizes and binds to parS and may be the protein responsible for pairing plasmids during the process of partitioning at cell division.

Bacterial Proteins↗

In vitro assembly of a prepriming complex at the origin of the Escherichia coli chromosome.

During initiation of DNA replication of plasmids containing the origin of the Escherichia coli chromosome (oriC), the proteins dnaA, dnaB, and dnaC interact and assemble a complex at oriC. The complex is larger and more asymmetric than that formed by dnaA protein and embraces an extra 50 base pairs at the left side of the minimal oriC sequence. Both dnaA and dnaB proteins have been identified in the complex by electron microscopy and antibody binding; dnaC protein was not detected. HU protein, which stimulates the activity of the initiation reaction, was often present. Entry of dnaB protein required dnaA and dnaC proteins and a supercoiled template. Thus, a complex structure, involving multiple proteins and a large region of DNA, must be formed at the origin to prepare the template for priming and replication.

Bacterial Proteins↗

Helicase action of dnaB protein during replication from the Escherichia coli chromosomal origin in vitro.

Initiation of bidirectional replication from the origin of the Escherichia coli chromosome (oriC) proceeds through stages in which the components of the two replication forks are assembled. From a complex containing proteins dnaA, dnaB, and dnaC bound at oriC, the dnaB helicase moves in both directions to unwind the duplex. In the absence of replication, this unwinding generates a bubble at oriC coated by single strand binding protein. Addition of gyrase allows unwinding to proceed extensively in both directions from oriC at 60 base pairs/s/fork at 37 degrees C. This rate is sharply dependent on temperature and also stimulated by both primase and DNA polymerase III holoenzyme, even in the absence of DNA synthesis. Primer and DNA synthesis are efficient when coupled to template unwinding. DNA synthesis proceeds bidirectionally from oriC at a rate limited by unwinding. With extensive unwinding preceding DNA synthesis, initiations are not limited to oriC.

Bacterial Proteins↗