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Characterization of a set of integration host factor mutants deficient for DNA binding.

Integration host factor, IHF, is a sequence-specific DNA-binding and DNA-bending protein composed of two related but non-identical subunits. We report the isolation and characterization of hydroxylamine-induced loss-of-function mutations in the genes encoding the IHF subunits. To screen for mutants that preserve proper folding of IHF, clarified extracts were prepared from each mutant and were assayed for production of each subunit by immunoblotting and for formation of heterodimers by chemical cross-linking and subsequent immunoblotting. Extracts from mutants that met these criteria were found to bind a specific IHF site weakly if at all. These alleles therefore identify candidates for residues that may affect the DNA-binding surfaces of IHF. When projected onto the known tertiary structure of the closely related HU protein, these residues are found at the surface; however, with the exception of a single residue, different regions of the protein are implicated in each subunit. This suggests that, despite their homology, each subunit of IHF directs DNA recognition and binding in a distinct manner. To confirm the significance of the differential location of these mutations, we introduced in each subunit alterations that had been isolated as loss-of-function mutations at the corresponding position in the other subunit. In general, the engineered mutants have phenotypes that are strikingly different from those of their hydroxylamine-induced counterparts. In particular, most of the site-directed mutant IHF proteins form or maintain IHF:DNA complexes more readily than mutants that have the same change in the other subunit and were isolated as loss-of-function mutants. We discuss the positions of the mutant amino acid residues as they relate to a proposed molecular model of an IHF:DNA complex.

Amino Acid Sequence↗

In vitro regulation of phage lambda cII gene expression by Escherichia coli integration host factor.

The effect of Escherichia coli integration host factor (IHF) on phage lambda gene expression has been examined in a simplified DNA-directed in vitro system that measures the formation of the first dipeptide of the gene product. Plasmid pKC30cII, which contains the phage lambda genes N, cII and O, under control of the PL promoter, was used as template to study the expression of the first dipeptide of the gene products--i.e., fMet-Asp for N protein, fMet-Val for cII, and fMet-Thr for O. Purified IHF stimulates the DNA-directed synthesis of fMet-Val (cII) and fMet-Thr (O) 2-3-fold but has no effect on the synthesis of fMet-Asp (N). In this in vitro system, the stimulation by IHF of cII and O gene expression is at the level of transcription. Phage lambda repressor completely inhibits dipeptide synthesis in the presence or absence of IHF. The results are consistent with a role of IHF as a transcription antiterminator, perhaps functioning at or near the tR1 site preceding the cII gene.

Bacteriophage lambda↗

Indirect recognition in sequence-specific DNA binding by Escherichia coli integration host factor: the role of DNA deformation energy.

Integration host factor (IHF) is a bacterial histone-like protein whose primary biological role is to condense the bacterial nucleoid and to constrain DNA supercoils. It does so by binding in a sequence-independent manner throughout the genome. However, unlike other structurally related bacterial histone-like proteins, IHF has evolved a sequence-dependent, high affinity DNA-binding motif. The high affinity binding sites are important for the regulation of a wide range of cellular processes. A remarkable feature of IHF is that it employs an indirect readout mechanism to bind and wrap DNA at both the nonspecific and high affinity (sequence-dependent) DNA sites. In this study we assessed the contributions of pre-formed and protein-induced DNA conformations to the energetics of IHF binding. Binding energies determined experimentally were compared with energies predicted for the IHF-induced deformation of the DNA helix (DNA deformation energy) in the IHF-DNA complex. Combinatorial sets of de novo DNA sequences were designed to systematically evaluate the influence of sequence-dependent structural characteristics of the conserved IHF recognition elements of the consensus DNA sequence. We show that IHF recognizes pre-formed conformational characteristics of the consensus DNA sequence at high affinity sites, whereas at all other sites relative affinity is determined by the deformational energy required for nearest-neighbor base pairs to adopt the DNA structure of the bound DNA-IHF complex.

Amino Acid Motifs↗

Essential interaction between lambdoid phage 21 terminase and the Escherichia coli integrative host factor.

Lambdoid phage 21 requires the Escherichia coli integrative host factor (IHF) for growth. lambda-21 hybrids that have 21 DNA packaging specificity also require IHF. IHF-independent (her) mutants have been isolated. her mutations map in the amino-terminal half of the 21 1 gene. The 1 gene encodes the small subunit of the 21 terminase, and the amino-terminal half of the 1 polypeptide is a functional domain for specifically binding 21 DNA. Hence changes in the DNA-binding domain of terminase, her mutations, render 21 terminase able to function in the absence of IHF. Three of four her mutations studied are trans-dominant. An in vitro system was used to show that packaging of 21 DNA is IHF-dependent. IHF is directly required during the early, terminase-dependent steps of assembly. It is concluded that IHF is a host factor required for function of the 21 terminase. It is proposed, in analogy to the role of IHF in lambda integration, that IHF facilitates proper binding of 21 terminase to phage DNA. Consistent with this proposal, possible IHF-binding sites are present in the 21 cohesive end site.

Bacterial Proteins↗

A good turn for DNA: the structure of integration host factor bound to DNA.

The crystal structure of integration host factor (IHF) complexed with DNA shows how a small heterodimeric protein can induce a big bend in DNA. IHF exerts leverage in the minor groove and wraps DNA around the body of the protein, providing another example of sequence-specific recognition of the minor groove.

Amino Acid Sequence↗

Compaction of single DNA molecules induced by binding of integration host factor (IHF).

We studied the interaction between the integration host factor (IHF), a major nucleoid-associated protein in bacteria, and single DNA molecules. Force-extension measurements of lambda DNA and an analysis of the Brownian motion of small beads tethered to a surface by single short DNA molecules, in equilibrium with an IHF solution, indicate that: (i) the DNA-IHF complex retains a random, although more compact, coiled configuration for zero or small values of the tension, (ii) IHF induces DNA compaction by binding to multiple DNA sites with low specificity, and (iii) with increasing tension on the DNA, the elastic properties of bare DNA are recovered. This behavior is consistent with the predictions of a statistical mechanical model describing how proteins bending DNA are driven off by an applied tension on the DNA molecule. Estimates of the amount of bound IHF in DNA-IHF complexes obtained from the model agree very well with independent measurements of this quantity obtained from the analysis of DNA-IHF crosslinking. Our findings support the long-held view that IHF and other histone-like proteins play an important role in shaping the long-scale structure of the bacterial nucleoid.

Bacterial Proteins↗

The HimA and HimD subunits of integration host factor can specifically bind to DNA as homodimers.

Integration host factor (IHF) is a heterodimeric protein from Escherichia coli which specifically binds to an asymmetric consensus sequence. We have isolated the individual subunits of IHF, HimA and HimD, and show that an active IHF protein can be reconstituted from these subunits. The HimA and HimD polypeptides alone are capable of specifically recognizing the same ihf sequence. The mobilities of the protein-DNA complexes in a gel-retardation assay suggest that the proteins bind as homodimers. The stability of the HimD-DNA complex is approximately 100-fold lower than that of the IHF-DNA complex. The HimA-DNA complex is even less stable and is only observed when a large excess of HimA is used. This instability is possibly due to the inability of HimA to form stable homodimers. By domain swapping between HimA and HimD, we have constructed an IHF fusion protein which has the putative DNA-binding domains of only HimA. This fusion protein forms stable dimers and makes specific protein-DNA complexes with a high efficiency. A comparable fusion protein with only the DNA-binding domains of HimD forms less stable complexes, suggesting that sequence-specific contacts between IHF and the ihf consensus are mainly provided by the HimA subunit.

Amino Acid Sequence↗

Mutants of Escherichia coli integration host factor: DNA-binding and recombination properties.

Integration host factor (IHF) is a protein encoded by Escherichia coli, which was first discovered as a requirement for bacteriophage lambda site-specific recombination. In this study, we characterized mutants of IHF for their ability to bind to various IHF binding sites in vivo and to promote recombination of lambda in vitro. DNA-binding in vivo was monitored using the challenge-phage system. If IHF binds to its DNA-binding site that has been placed into the P(ant) region of bacteriophage P22, it acts as a repressor of the ant (antirepressor) gene, leading to the formation of lysogens of Salmonella typhimurium. If IHF cannot bind to its site, antirepressor is made leading to cell lysis. Challenge phages containing chimeras of different lambda IHF binding sites were constructed to test the contribution to the binding of a dA+dT-rich region, found in the sequence of the H' site but not in the H' site. In one case, the binding of mutant IHF proteins was enhanced by the presence of the dA+dT-rich region, indicating that IHF may be affected by neighboring bases and local DNA structure when it binds to its site. A subset of the mutant proteins retained the ability to form a looped attL complex in vivo, representing part of a higher-order protein-DNA complex (the 'intasome'). Additionally, this same subset of proteins also promoted the integration and excision of bacteriophage lambda in vitro. Thus, these mutant proteins not only retain their DNA-bending ability but make any protein-protein contacts necessary to form a recombination-proficient intasome.

Bacterial Proteins↗

Stabilization of bacteriophage Mu repressor-operator complexes by the Escherichia coli integration host factor protein.

All of the previously described effects of integration host factor (IHF) on bacteriophage Mu development have supported the view that IHF favours transposition-replication over the alternative state of lysogenic phage growth. In this report we show that, consistent with a model in which Mu repressor binding to its operators requires a particular topology of the operator DNA, IHF stimulates repressor binding to the O1 and O2 operators and enhances Mu repression. IHF would thus be one of the keys, besides supercoiling and the H-NS protein, that lock the operator region into the appropriate topological conformation for high-affinity binding not only of the phage transposase but also of the phage repressor.

Bacterial Proteins↗

Integration host factor stimulates the phage lambda pL promoter.

Escherichia coli integration host factor (IHF) is a small dimeric protein that binds to a specific DNA consensus sequence and produces DNA bending. Transcription from the bacteriophage lambda pL promoter is stimulated three- to fourfold by IHF both in vivo and in vitro. IHF binds with high-affinity to two tandem sites located just upstream from the pL promoter and enhances the formation of RNA polymerase-promoter closed complexes. The rate of isomerization to open complex is not influenced by IHF. IHF may stimulate recognition of pL by one or more of several mechanisms: (1) by bending DNA; (2) by making protein-protein contacts with RNA polymerase; or (3) by occluding a competing promoter upstream from pL.

Bacterial Proteins↗

Integration host factor: putting a twist on protein-DNA recognition.

Integration host factor (IHF) is a DNA-bending protein that recognizes its cognate sites through indirect readout. Previous studies have shown that binding of wild-type (WT)-IHF is disrupted by a T to A mutation at the center position of a conserved TTR motif in its binding site, and that substitution of betaGlu44 with Ala prevented IHF from discriminating between A and T at this position. We have determined the crystal structures and relative binding affinities for all combinations of WT-IHF and IHF-betaGlu44Ala bound to the WT and mutant DNAs. Comparison of these structures reveals that DNA twist plays a major role in DNA recognition by IHF, and that this geometric parameter is dependent on the dinucleotide step and not on the bound IHF variant.

Amino Acid Substitution↗

Function of IHF in lambda DNA packaging. I. Identification of the strong binding site for integration host factor and the locus for intrinsic bending in cosB.

Integration host factor (IHF) plays an accessory role in lambda DNA packaging. IHF affects the interaction of the lambda DNA packaging protein, terminase, with cos, the site on lambda DNA at which terminase binds and introduces staggered nicks to generate cohesive ends of mature lambda chromosomes. cos includes cosB, the terminase binding site and cosN, the adjacent nicking site. cosB includes multiple binding sites for gpNu1, the small subunit of terminase, and an IHF binding site, I1. I1 contains two overlapping sequences, called I1A and I1B, that closely match the consensus sequence for IHF binding sites. The I1A sequence was determined to be the site of IHF binding by hydroxyl radical footprinting experiments. Comparison of the pattern of IHF-induced enhancements and diminishments at I1 with published patterns for IHF binding sites at the lambda attachment site identifies I1A as the IHF binding site at I1. The conclusion that I1A is the IHF binding site was confirmed by studies with DNA mutant in I1A. The I1A- mutation, consisting of three adjacent base-pair changes in I1A, abolished IHF binding. In contrast to the I1A- mutation, a mutation in I1B, also consisting of three adjacent base-pair changes, caused a reduction in the affinity of IHF for I1A, and caused a reduction in the magnitude of the net intrinsic bending of cos lambda.

Bacterial Proteins↗

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↗

Single-chain integration host factors as probes for high-precision nucleoprotein complex formation.

Integration host factor (IHF) is a heterodimeric, site-specific DNA-binding and DNA-bending protein from Escherichia coli. It is involved in high-precision DNA transactions where it serves as a key architectural component of specialized nucleoprotein structures (snups). We described recently a novel approach for protein engineering using a single polypeptide chain IHF, termed scIHF2, as a first example. ScIHF2 is made up of the alpha subunit of IHF which was inserted into the beta subunit at peptide bond Q39/G40 via two short linkers. The monomer behaves very similarly to the heterodimeric, parental IHF in biochemical and functional assays. Here, we describe an extension of this approach in which we shortened either one or both linkers by one amino acid, thereby generating three new variants termed scIHF1, 3, and 4. These variants exhibit distinct DNA-binding properties, different phenotypes in site-specific integrative and excisive recombination by phage lambda integrase in vitro, as well as in pSC101 replication assays in a DeltaIHF E. coli host. We also introduced a K45E substitution within the alpha domain of scIHF3 and based on electrophoretic mobility shift assays (EMSAs), argue that it significantly changes the DNA trajectory within the protein-DNA complex. Our results indicate that IHF's pleiotropic roles in DNA transactions inside E. coli require different types of high-precision DNA architectural activities. The scIHF variants described here will help to explore further how flexible these requirements are.

Amino Acid Sequence↗

Integration host factor positively regulates cycJIH transcription.

We report the identification of integration host factor (IHF) as an additional element involved in the regulation of the cysJIH promoter of Salmonella typhimurium and Escherichia coli. An IHF-binding site was located in the regulatory region of the cysJIH promoter by using two methods, protection against DNase I digestion and hydroxyl radical cleavage. The positive influence of IHF on in vitro run-off transcription from the cysJIH promoter is shown. The in vivo observations suggest that IHF is necessary for full expression of cysJIH in stationary phase but not during exponential growth.

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↗