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Biomedical subjects

A Landy

Publications and source records attributed to A Landy.

At least 19 recordsLinked to original sources

Single base-pair precision and structural rigidity in a small IHF-induced DNA loop.

The prokaryotic integration host factor (IHF) is a DNA-bending protein that binds to specific DNA sites as a heterodimer. Genetic and mutational analyses have previously identified asymmetric protein-DNA contacts by the individual subunits. By exploiting the unique sequence and positional context of one IHF binding site, H' in Lambda attachment sites (att sites), we have identified a symmetry element of binding and have localized the functional bend center to the center of this symmetry. A shift of the H' bend center by a single base-pair to the right or to the left within the very tight loop formed with Lambda integrase (Int) and IHF in att-site "intasomes" severely reduces recombination. This suggests that a precise, but wrongly positioned, DNA bend within a loop of constant length negatively influences the juxtaposition or "phasing" of the core-type and arm-type Int binding sites by differentially affecting the length of each leg of the loop. Furthermore, ten base-pair insertions within this loop that should not interfere with correct helical phasing are sensed in a position-dependent manner. Distal insertions abolish recombination, whereas proximal or double insertions (in both legs of the loop) are well tolerated.

Bacterial Proteins

Swapping DNA strands and sensing homology without branch migration in lambda site-specific recombination.

BACKGROUND: Many site-specific recombinases act by forming and resolving branched Holliday junction intermediates. Previous findings have been consistent with models involving branch migration across the 'overlap region' of obligate homology, located between the staggered sites where the two single-strand exchanges occur. We have investigated the validity of such models in the case of bacteriophage lambda site-specific recombination. RESULTS: By using synthetic lambda att-site Holliday junctions, incorporating sequence heterologies that impose constraints on branch migration, we have found that the optimal position of the junction for either top-strand or bottom-strand resolution by lambda integrase (Int) is not at the ends, but close to the middle of the seven base-pair overlap region. A minor shift of the branch point around the central base pair caused a remarkable switch in resolution bias. Our findings suggest that branch migration is limited to the central one to three base pairs of the overlap region. They lead to a new model for lambda site-specific recombination, in which there are two symmetrical swaps of two to three nucleotides each, linked by a central isomerization step that causes a change of the stacking interactions between the four junction arms. On the basis of isolated strand-joining reactions carried out by Int in the presence or absence of base complementarity, we propose that sequence homology is sensed during the annealing step prior to strand joining. The new model eliminates mechanistic complications associated with large helical rotations required by branch-migration models. CONCLUSIONS: The results reported here suggest that the recognition of sequence homology in Int-dependent site-specific recombination does not rely primarily on branch migration. The property of cleaving Holliday junctions a few base pairs away from the crossover puts lambda Int into the same category as endonucleases that cleave Holliday junctions in homologous recombination.

Bacteriophage lambda

The Holliday junction intermediates of lambda integrative and excisive recombination respond differently to the bending proteins integration host factor and excisionase.

In lambda site-specific recombination, the integrative and excisive reactions proceed via two different Holliday junction intermediates, both of which are generated and resolved by a pair of sequentially ordered single strand exchanges. Factors affecting the directionality and efficiency of the second pair of strand exchanges were examined using artificial Holliday junctions (chi-forms). The integrative and excisive recombination intermediates respond differently to the accessory DNA bending proteins integration host factor and excisionase (Xis). These differences between the two recombination intermediates result from a different interaction pattern between proteins binding to the left (P arm) and right (P' arm) of the crossover region. The effect of Xis protein on the directionality of resolution, i.e. the choice of which strands are exchanged, is consistent with a role in promoting the second strand exchange during excision. Proteins binding to the left of the crossover region (P arm) primarily influence the directionality of resolution, while proteins binding to the right (P' arm) have a greater effect on the overall efficiency of resolution. Together, the effect of proteins binding to sites in the P and P' arms is to greatly enhance resolution of the two different Holliday intermediates and to favor resolution in the 'forward' direction for both integrative and excisive recombination.

Bacteriophage lambda

Lambda integrase cleaves DNA in cis.

In the Int family of site-specific recombinases, DNA cleavage is accomplished by nucleophilic attack on the activated scissile phosphodiester bond by a specific tyrosine residue. It has been proposed that this tyrosine is contributed by a protomer bound to a site other than the one being cleaved ('trans' cleavage). To test this hypothesis, the difference in DNA binding specificity between closely related integrases (Ints) from phages lambda and HK022 was exploited to direct wild type Ints and cleavage- or activation-defective mutants to particular sites on bispecific substrates. Analysis of Int cleavage at individual sites strongly indicates that DNA cleavage is catalyzed by the Int bound to the cleaved site ('cis' cleavage). This conclusion contrasts with those from previous experiments with two members of the Int family, FLP and lambda Int, that supported the hypothesis of trans cleavage. We suggest explanations for this difference and discuss the implications of the surprising finding that Int-family recombinases appear capable of both cis and trans mechanisms of DNA cleavage.

Bacteriophage lambda

Structure of the P22 att site. Conservation and divergence in the lambda motif of recombinogenic complexes.

We have defined the bacterial and viral DNA targets (att sites) of P22 site-specific recombination and characterized their interaction with integrase (Int) protein. The bacterial DNA target, attB, is approximately 27 base pairs and consists of two core type Int binding sites as inverted repeats. The top and bottom Int cleavage sites fall within the core type Int binding sites and are separated by a 7-base pair overlap region. A similar core region is found in the viral DNA target, attP, which is approximately 260 base pairs long and contains two IHF binding sites and five arm type binding sites for Int. The results suggest that P22 Int, like lambda Int, is a heterobivalent DNA-binding protein that is capable of forming complex higher order structures with recombinogenic function. Although P22 and lambda recombination involve very similar multiprotein interactions and core region structures, there are significant differences in the arrangements of distal protein binding sites. These differences are discussed in terms of the possible flexibility of the Int protein and the specificity with which the higher order complexes assemble and/or function.

Attachment Sites, Microbiological

Dissecting the resolution reaction of lambda integrase using suicide Holliday junction substrates.

A reciprocal strand exchange between two DNA helices generates the crossed-strand intermediate, or Holliday junction, which is common to many pathways of homologous and site-specific recombination. The Int family of recombinases are unique in their ability to both make and resolve Holliday junctions. Previous experiments utilizing 'synthetic' att site Holliday junctions to study the mechanisms associated with the cleavage, transfer and ligation of DNA strands have been confined to studying reciprocal strand exchanges (a pair of temporally overlapping strand cleavages). To circumvent this limitation, we have designed synthetic suicide Holliday junctions that make it possible to monitor individual DNA strand cleavage events. These substrates contain a pre-existing nick in the vicinity of the Int binding site; when Int introduces a second nick into these substrates, the 5'OH nucleophile required for ligation (in either the forward or reverse reaction) is lost by diffusion, thus trapping the covalent protein-DNA intermediate. The results indicate that resolution (involving two partner Ints) is stimulated by additional 'cross-core' Ints as a result of enhanced cleavage rates, and not as a result of enhanced co-ordination of cleavage. Several models for the role of the 'cross-core' Ints during resolution are discussed, as well as the usefulness of these substrates for studying additional aspects of the Holliday junction resolution reaction.

Attachment Sites, Microbiological

Mechanistic and structural complexity in the site-specific recombination pathways of Int and FLP.

This review focuses on two of the approximately 30 members of the diverse Int family of site-specific recombinases. The lambda recombination system represents those reactions involving accessory proteins and a complex higher-order structure. The FLP system represents the most streamlined reactions and has been the subject of detailed and informative studies on the mechanisms of DNA cleavage and ligation.

DNA Nucleotidyltransferases

Lambda Int protein bridges between higher order complexes at two distant chromosomal loci attL and attR.

The excisive recombination reaction of bacteriophage lambda involves a specific and efficient juxtaposition of two distant higher order protein-DNA complexes on the chromosome of Escherichia coli. These complexes, which mediate synapsis and strand exchange, consist of two DNA sequences, attL and attR, the bivalent DNA binding protein Int, and the sequence-specific DNA bending proteins, IHF, Xis, and Fis. The protein-protein and protein-DNA interactions within, and between, these complexes were studied by various biochemical techniques and the patterns of synergism among pairs of mutants with marginally impaired recombination function were analyzed. The DNA bending proteins facilitated long-range tethering of high- and low-affinity DNA sites by the bivalent Int protein, and a specific map is proposed for the resulting Int bridges. These structural motifs provide a basis for postulating the mechanism of site-specific recombination and may also be relevant to other pathways in which two distant chromosomal sites become associated.

Bacteriophage lambda

A switch in the formation of alternative DNA loops modulates lambda site-specific recombination.

The virally encoded Xis protein is one of the components in the site-specific recombination reactions of bacteriophage lambda. It is required for excisive recombination and inhibits integrative recombination. The mechanism of Xis inhibition of the integration reaction was investigated by methylation protection assays (footprinting analyses) in conjunction with recombination assays. Xis is shown to mediate the formation of a specific attP looped structure involving cooperative and competitive long-range interactions among integrase, integration host factor, and Xis proteins. This higher-order structure precludes supercoiled attP from engaging in the productive partner interactions that lead to execution of the first strand exchange in integrative recombination. In addition to its previously characterized role in excision, Xis-induced DNA bending is postulated to act as a regulatory switch (in an alternative loop mechanism) that converts the attP intasome from an integrative-competent complex to a nonreactive one.

Bacterial Proteins

Mapping of a higher order protein-DNA complex: two kinds of long-range interactions in lambda attL.

To map the protein-protein and protein-DNA interactions involved in lambda site-specific recombination, Int cleavage assays with suicide substrates, nuclease protection patterns, gel retardation experiments, and quantitative Western blotting were applied to wild-type attL and attL mutants. The results lead to a model in which one IHF molecule bends the attL DNA and forms a higher order complex with the three bivalent Int molecules required for excisive recombination. It is proposed that each of the Int molecules binds in a unique manner: one bridges two DNA binding sites in cis, one is held via its high affinity amino-terminal DNA binding domain, and the third depends upon protein-protein interactions in addition to its low affinity carboxy-terminal DNA binding domain. This protein-DNA complex contains two unsatisfied DNA binding domains, each with a different sequence specificity, and is well suited to specific interactions with an appropriate recombination partner.

Bacteriophage lambda

Interactions between lambda Int molecules bound to sites in the region of strand exchange are required for efficient Holliday junction resolution.

lambda Site-specific recombination proceeds via two sequential single-strand exchanges that first generate and then resolve a Holliday recombination intermediate. The resolution of artificial Holliday junctions (chi-forms) is well suited to studying the mechanisms involved in reciprocal strand exchange because the linear products of this reaction are stable and easily quantitated. To study the interactions between Int molecules bound at the sites of strand exchange, artificial Holliday junctions containing only the seven base-pair overlap region and the four core-type Int binding sites were used as a model system. In vitro resolution of these structures yields products of both top- and bottom-strand exchange. An abortive product resulting from simultaneous cleavage of the top and bottom strands also occurs at low frequency. Inactivation of one of the four Int binding sites by multiple base substitutions does not significantly affect the efficiency of resolution but has a dramatic effect on the directionality, i.e. the choice of top- or bottom-strand exchange. When any two of the four core-type sites are similarly inactivated, strand exchange is very inefficient and the amount of aberrant cleavage is somewhat greater than for the Holliday junction with four intact Int binding sites. Analysis of the resolution products of Holliday junctions with various combinations of defective Int binding sites leads to the following conclusions: (1) three functional core-type Int binding sites are necessary and sufficient for a strand exchange; (2) the Int molecules that are partners in a strand exchange interact with Int bound to a "cross-core" site that is not directly involved in carrying out the reaction; (3) Int molecules bound to the core-type sites interact in a way that reduces the occurrence of abortive double-strand cleavage events.

Bacteriophage lambda

Half-att site substrates reveal the homology independence and minimal protein requirements for productive synapsis in lambda excisive recombination.

The early events in site-specific excisive recombination were studied with phage lambda half-att sites that have no DNA to one side of the strand exchange region; they carry a single core-type integrase binding site and either P or P' arm flanking DNA. These half-attR and half-attL sites exhibit normal properties for the initial (covalent) top-strand transfer and form stable intermediates independent of later steps in the reaction. With these novel substrates we show that Xis specifically promotes the first strand exchange and that attL enhances Int cleavage at the top-strand site of attR. It is also shown that synapsis and initial strand transfers do not require DNA-DNA pairing but are mediated by protein-protein and protein-DNA interactions. These involve the two top-strand Int binding sites (required for the first strand exchange) and, in addition, one of the two bottom-strand sites (C') responsible for the second strand exchange.

Attachment Sites, Microbiological

Phasing of protein-induced DNA bends in a recombination complex.

Many of the structures responsible for replication, transcription initiation and recombination arise from complex sets of protein-protein interactions and the folding of DNA in three dimensions, with protein-induced bending of DNA often playing an integral role. The magnitude and orientation of DNA bending induced by various single proteins has been estimated by gel mobility shift methods and by modelling of crystallographic data. The site-specific recombination by which bacteriophage lambda (phage lambda) integrates into the chromosome of its host Escherichia coli requires a host protein, 'integration host factor' (IHF), which is known to be able to bend the DNA to which it binds. To determine the three-dimensional path of DNA within the higher order structure responsible for phage lambda site-specific recombination, we have determined the relative direction of IHF-induced bending at each of the three binding sites within the complex. IHF, which appears to bend DNA by more than 140 degrees, is a major determinant of the DNA path in the recombination complex and is also involved in a wide range of other cellular events.

Bacterial Proteins

DNA looping generated by DNA bending protein IHF and the two domains of lambda integrase.

The multiprotein-DNA complexes that participate in bacteriophage lambda site-specific recombination were used to study the combined effect of protein-induced bending and protein-mediated looping of DNA. The protein integrase (Int) is a monomer with two autonomous DNA binding domains of different sequence specificity. Stimulation of Int binding and cleavage at the low affinity core-type DNA sites required interactions with the high affinity arm-type sites and depended on simultaneous binding of the sequence-specific DNA bending protein IHF (integration host factor). The bivalent DNA binding protein is positioned at high affinity sites and directed, by a DNA bending protein, to interactions with distant lower affinity sites. Assembly of this complex is independent of protein-protein interactions.

Bacterial Proteins

Rho-dependent transcription termination in the tyrT operon of Escherichia coli.

A 178-bp repeat sequence comprises the distal end of the tyrT operon and also encodes the signal for Rho-dependent transcription termination. It is shown here that Rho-dependent transcription termination is highly efficient for each of the individually cloned first and second repeats. The presence of either repeat results in a termination efficiency of 88% (12% readthrough). When an individual DNA repeat is shortened, starting from the promoter-proximal end, so that only 56 bp remain upstream from the termination site, Rho-dependent termination activity is reduced approximately three-fold (to give 38% readthrough) and with further shortening, so that only 15 bp remain upstream, Rho-dependent termination is reduced an additional 1.8-fold (to give 59% readthrough). Finally, it is shown that the presence or absence of the tyrT terminator upstream from the lambda tR1 terminator does not affect the efficiency of transcription at termination lambda tr1.

Base Sequence

Empirical estimation of protein-induced DNA bending angles: applications to lambda site-specific recombination complexes.

Protein-induced DNA bending is an important element in the structure of many protein-DNA complexes, including those involved in replication, transcription, and recombination. To understand these structures, the path followed by the DNA in each complex must be established. We have generated an empirical relation between the degree of bending and the altered electrophoretic mobility in polyacrylamide gels that allows estimation of protein-induced bends. This technique has been used to analyze 17 different protein-DNA complexes formed by six proteins including the four proteins involved in lambda site-specific recombination. The simplicity of this technique should make it useful in estimating angles for the construction of models of protein-DNA complexes and readily applicable to many systems where questions of higher-order structure are important for understanding function.

Bacteriophage lambda

Autonomous DNA binding domains of lambda integrase recognize two different sequence families.

The 40 kd lambda Integrase protein is shown to contain two autonomous DNA binding domains with different sequence specificities. Competition experiments in which the binding activity of Int is assayed through nuclease protection demonstrate the functional independence of the two DNA recognition specificities. Proteolytic cleavage of Int and footprinting analysis of the resulting two major peptides allow the physical separation and identification of two DNA binding domains: an amino-terminal peptide that interacts with "arm-type" sites and a carboxy-terminal peptide that binds to "core-type" sequences. In addition, the data suggest that the two domains can bind DNA simultaneously, consistent with a model in which Integrase would link two disparate DNA sequences.

Amino Acid Sequence