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R B Inman

Publications and source records attributed to R B Inman.

At least 19 recordsLinked to original sources

Two alternative structures can be formed by IHF protein binding to the plasmid R6K gamma origin.

Escherichia coli integration host factor (IHF) contributes to the regulation of R6K plasmid copy number by counteracting the inhibitory activity of the plasmid-encoded replication protein pi. Two IHF-binding sites (ihf1 and ihf2) flank seven iterons in the origin which bind pi protein. As previously shown by electron microscopy, IHF can compact a large segment of the R6K gamma origin DNA, encompassing site ihf1, an AT-rich domain containing ihf1, and some of the seven iterons located downstream of ihf1. We termed this phenomenon IHF-mediated DNA folding. This folding requires a high IHF concentration, and the region of the origin (replication enhancer) located to the left of the AT-rich domain. However, site ihf2 is not necessary in forming the folded structure. As reported here, IHF binding to ihf2 can be detected in gel mobility shift assays only if the leftmost enhancer region is absent. Sites ihf1 and ihf2 each contain two consensus IHF sequences. Site-directed mutagenesis was performed to determine which sequences are recognized by IHF protein and which sites are involved in forming the various gamma origin-IHF complexes. Finally, we define the boundaries of protection from DNaseI digestion when IHF is bound to ihf2. We propose a model in which IHF protein bound to ihf1, in the absence of the enhancer region, facilitates IHF binding to ihf2.

Bacterial Proteins

On the role of ATP hydrolysis in RecA protein-mediated DNA strand exchange. I. Bypassing a short heterologous insert in one DNA substrate.

RecA protein promotes a substantial DNA strand exchange reaction in the presence of adenosine 5'-O-3-(thio)triphosphate (ATP gamma S) (Menetski, J.P., Bear, D.G., and Kowalczykowski, S.C. (1990) Proc. Natl. Acad. Sci. U.S.A. 87, 21-25), calling into question the role of ATP hydrolysis in the strand exchange reaction. Here, we demonstrate that the ATP gamma S-mediated reaction can go to completion when the duplex DNA substrate is only 1.3 kilobase pairs in length. The ATP gamma S-mediated reaction, however, is completely blocked by a 52-base pair heterologous insertion in either DNA substrate. This same barrier is readily bypassed when ATP replaces ATP gamma S. This indicates that at least one function of recA-mediated ATP hydrolysis is to bypass structural barriers in one or both DNA substrates during strand exchange. This suggests that ATP hydrolysis is directly coupled to the branch migration phase of strand exchange, not to promote strand exchange between homologous DNA substrates during recombination, but instead to facilitate the bypass of structural barriers likely to be encountered during recombinational DNA repair.

Adenosine Triphosphate

On the role of ATP hydrolysis in RecA protein-mediated DNA strand exchange. II. Four-strand exchanges.

RecA protein promotes a substantial DNA strand exchange reaction in the presence of adenosine 5'-O-3-(thio)triphosphate (ATP gamma S) (Menetski et al., 1990), calling into question the role of ATP hydrolysis in this reaction. We demonstrate here that the ATP gamma S-mediated process is restricted to homologous strand exchange reactions involving three strands. In four-strand exchanges between a gapped duplex circle and a second linear duplex, joint molecules are formed in the gap but are not extended into the four-strand region when ATP gamma S is present. This result provides evidence that one function of ATP hydrolysis in the recA system is to facilitate reciprocal DNA strand exchange involving four strands. Implications with respect to the role of four-stranded pairing intermediates and the mechanistic relationship between three- and four-strand exchange reactions are discussed.

Adenosine Triphosphate

Reactions between half- and full-FLP recombination target sites. A model system for analyzing early steps in FLP protein-mediated site-specific recombination.

The FLP recombination target (FRT) can be cut in half so that only one FLP protein binding site is present (a "half site"). FLP protein binds the half sites and joins them into dimeric, asymmetric head-to-head complexes held together chiefly by strong noncovalent interactions. These complexes react with full (normal) FRT sites to generate a variety of products. Analysis of these DNA species reveals that the reaction follows a well-defined reaction pathway that generally parallels the normal reaction pathway. The system is useful in analyzing early steps in recombination, since the identity of the products in a given recombination event unambiguously pinpoints the order in which the cleavage and strand exchange reactions occur. Two conclusions are derived from the present study: (i) Formation of the dimeric head-to-head complex of half sites is a prerequisite to further steps in recombination. (ii) The identity of the base pairs at positions 6 and -6 within the FRT site has a subtle effect in directing the first strand exchange event in the reaction to predominantly one of two possible cleavage sites. In addition, results are presented that suggest that a DNA-DNA pairing intermediate involving only two base pairs of the core sequence is formed prior to the first cleavage and strand exchange. DNA-DNA interactions may therefore not be limited to the isomerization step that follows the first strand exchange.

Base Sequence

Putative three-stranded DNA pairing intermediate in recA protein-mediated DNA strand exchange: no role for guanine N-7.

As an early step in DNA strand exchange reactions, the recA protein aligns homologous sequences within two DNA molecules to form a putative triple-stranded intermediate. In virtually all models for three-stranded DNA proposed to date, hydrogen bonds involving the N-7 position of guanine have played a prominent structural role. To determine whether the N-7 position of guanine is required for triple helix and heteroduplex formation in the recA protein-mediated DNA pairing reaction, guanine was completely replaced by the base analog 7-deazaguanine in both strands of the duplex DNA substrate using polymerase chain reaction. This modified double-strand DNA was reacted with unmodified single-strand DNA in vitro. The 7-deazaguanine-substituted DNA functioned as well as the unsubstituted DNA in recA protein-mediated DNA three-strand exchange reactions. Strand exchange reactions involving four strands also proceeded normally when three of the four strands contained 7-deazaguanine rather than guanine. In fact, the rate of strand exchange improved somewhat when the modified DNA substrates were used. This indicates either that the N-7 position of guanine is not essential for the formation of the putative triple-stranded DNA pairing intermediate, or that a three-stranded (or four-stranded) structure is not an obligate intermediate in recA protein-mediated DNA strand exchange.

Base Sequence

RecA protein-facilitated DNA strand breaks. A mechanism for bypassing DNA structural barriers during strand exchange.

RecA protein promotes an unexpectedly efficient DNA strand exchange between circular single-stranded DNA and duplex DNAs containing short (50-400-base pair) heterologous sequences at the 5' (initiating) end. The major mechanism by which this topological barrier is bypassed involves DNA strand breakage. Breakage is both strand and position specific, occurring almost exclusively in the displaced (+) strand of the duplex within a 15-base pair region of the heterology/homology junction. Breakage also requires recA protein, ATP hydrolysis, and homologous sequences 3' to the heterology. Although the location of the breaks and the observed requirements clearly indicate a major role for recA protein in this phenomenon, the molecular mechanism is not yet clear. The breakage may reflect a DNA structure and/or some form of structural stress within the DNA during recA protein-mediated DNA pairing which either exposes the DNA at this precise position to the action of a contaminating nuclease or induces a direct mechanical break. We also find that when heterology is located at the 3' end of the linear duplex, strand exchange is halted (without DNA breakage) about 500 base pairs from the homology/heterology junction.

Adenosine Triphosphate

Daughter origins can be held together by O protein in phage lambda replicative intermediates.

When lambda replicative intermediates are incubated with initiator protein O, complex molecules are observed in which O interacts with both daughter origin segments and with growing points. In the simplest of these molecules it appears that daughter origins and growing points may all be bound together at a single point. When replicative intermediates are sequentially incubated with single-stranded binding protein and O protein, simpler structures are observed. In this case, both daughter origins are bound together by O protein. This result mimics that found when plasmid containing two tandem lambda origin sequences is reacted with O protein. In this case double origin binding produces a DNA loop. Double origin binding, as demonstrated in this investigation, creates the potential for topological domains which will have important effects on the ability of daughter origins to initiate replication.

Bacteriophage lambda

Protein-based asymmetry and protein-protein interactions in FLP recombinase-mediated site-specific recombination.

When the FLP recombination target (FRT) is cut in half so that only one FLP protein-binding site is present, FLP protein forms a complex in which two such sites are linked head to head. Although held together exclusively by noncovalent interactions, this complex survives electrophoresis in an agarose gel and exhibits a half-life that can be measured in hours. Characterization of this complex indicates that a very stable, asymmetric dimeric complex of FLP protein monomers bound to the FRT is a likely early intermediate in FLP-mediated site-specific recombination. The apparent asymmetry is a property of the protein components of the complex. Even though the DNA components form a perfect palindrome, only one of the two possible DNA cleavage steps takes place in the course of complex formation. Formation of this complex does not occur with half-FRT site DNA substrates that preclude head to head monomer contact or when a FLP mutant protein is used that binds the FRT site but cannot cleave it. Trimeric and tetrameric complexes are also observed, the latter at very low frequency. These results are discussed in terms of an expanded model for early events in FLP-mediated site-specific recombination.

Base Sequence

Triple-helical DNA pairing intermediates formed by recA protein.

RecA protein aligns homologous single- and double-stranded DNA molecules in three-stranded joints that can extend over thousands of base pairs. When cross-linked by 4'-amino-4,5',8-trimethyl-psoralen the joint structure observed in nonuniform and divided into multiple substructures each a few hundred base pairs long. Two paired substructures are observed; at least one, and possibly both, are right-handed triple helices. Sites of homologous contact are interspersed with regions where the DNA molecules are arranged side-by-side without contact. These substructures alternate in all combinations. The length and frequency of joints is much greater when one of the DNA substrates is linear, and interwinding is unrestricted, than when there are topological restrictions between the pairing partners. The results are consistent with the idea that recA protein facilitates the formation of a right-handed triple-helical DNA pairing intermediate during strand exchange. The results further suggest that recA filaments do not promote the formation of structures that provide efficient topological compensation for right-handed interwinding of two paired DNA molecules.

Coliphages

Characterization of Holliday structures in FLP protein-promoted site-specific recombination.

Holliday structures are formed in the course of FLP protein-promoted site-specific recombination. Here, we demonstrate that Holliday structures are formed in reactions involving wild-type substrates and that they are kinetically competent with respect to the overall reaction rate. Together with a previous demonstration of chemical competence (L. Meyer-Leon, L.-C. Huang, S. W. Umlauf, M. M. Cox, and R. B. Inman, Mol. Cell. Biol. 8:3784-3796, 1988), Holliday structures therefore meet all criteria necessary to establish that they are obligate reaction intermediates in FLP-mediated site-specific recombination. In addition, kinetic evidence suggests that two distinct forms of the Holliday intermediate are present in the reaction pathway, interconverted in an isomerization process that is rate limiting at 0 degree C.

Bacterial Outer Membrane Proteins

Mapping Z-DNA tracts in plasmid DNA using electron microscopy and gold-labeled antibodies.

Using alternating poly(dG-dC).poly(dG-dC) and electron microscopy (EM), a method has been developed for detecting regions of Z conformation in DNA preparations. The procedure was developed with poly(dG-dC).poly(dG-dC) which had been converted to the Z conformation with MnCl2 and mild heat treatment. Conditions were found for reaction of this DNA with polyclonal anti-Z antibodies from rabbit, and further reaction of this mixture with gold-labelled anti-rabbit antibodies from mouse. Spreading of these samples onto air-water interfaces and examination by EM revealed gold particles aligned along strands of poly(dG-dC).poly(dG-dC). The method was refined and simplified using monoclonal antibodies and tested with the 2.2-kb plasmid, pDHg16, carrying a single tract of alternating d(G-C)23. Treatment with MnCl2 and mild heat was not necessary, as the superhelicity of this molecule ensured that the d(G-C) tract was in the Z conformation. Conditions were found for successful conjugation of mouse monoclonal anti-Z antibodies with colloidal gold (G10), 10.7-nm average diameter. The conjugate was then reacted with superhelical pDHg16, stabilized in polyethylene glycol and cross-linked with glutaraldehyde. Examination by EM showed gold particles at one site on the negatively superhelical circular DNA molecule. When these molecules were linearized with PstI, gold particles were found to occur at an average position 35% +/- 3% from one end. This location agrees well with the known position of the center of the alternating d(G-C) tract with respect to the PstI restriction site (36.8%).

Antibodies, Bacterial

DNA looping induced by bacteriophage lambda O protein: implications for formation of higher order structures at the lambda origin of replication.

A plasmid has been constructed, pOri2, which contains two lambda replication origin sequences separated by 1068 bp; both lambda sequences having the same orientation. When lambda initiation protein O is reacted with linearized pOri2 and examined by electron microscopy it is found to contain a looped area in which two parts of the plasmid are bound together by the O protein complex. Length measurements show that the O protein binds at the expected positions of the lambda origin sequences and that the looped area represents the DNA segment between the two O protein binding domains. Similar looping occurs in reactions with supercoiled pOri2 or if an amino-terminal fragment of O protein is used. When looped molecules are reacted with psoralen, crosslinked by irradiation with uv light, and then denatured, it is found that the looped area is more thermostable than the rest of the molecule. This indicates that the DNA within the looped segment is torsionally constrained while that outside the loop is free to rotate and suggests that simultaneous binding of O to two origins fixes the linkage number of the intervening DNA. The double origin binding ability of O may be diagnostic of the details of the reaction of O with a single origin sequence. A model is presented that rests on the assumption that O can produce microscopic looping between O protein binding sites within a single ori sequence.

Bacteriophage lambda

Initiation protein induced helix destabilization at the lambda origin: a prepriming step in DNA replication.

The interaction of the lambda phage initiator protein, O, with the lambda origin sequence, ori, has been investigated. Binding of O, or its amino-terminal fragment, causes a major structural change within a 60 bp AT-rich region just to the right of the O-binding site. ATP or other molecular energy sources are not required. The modification, as assayed by nuclease sensitivity, is reduced when certain ori mutant sequences, which bind O but fail to replicate, are substituted for the wild-type sequence. The modification of DNA structure caused by the interaction of O is absolutely dependent on the presence of superhelical tension at the lambda origin sequence, and has several properties consistent with a strand separation reaction. We propose that this modification is a fundamental prepriming event that is the first stage in initiation of bidirectional replication in lambda after O binding.

Bacteriophage lambda

Holliday intermediates and reaction by-products in FLP protein-promoted site-specific recombination.

Holliday structures are formed and resolved by FLP protein during site-specific recombination. These structures have been isolated and are visualized in both native and partially denatured states by electron microscopy. No single-strand breaks are found within the junction, indicating that the structure results from a reciprocal exchange of strands. These structures have properties consistent with being reaction intermediates. Double-strand cleavage products and "Y structures" are also detected and appear to be by-products of the reaction. The Y structures are three-armed branched molecules with a covalently closed junction located at the FLP recombination target site. Models are discussed, suggesting that both of these novel structures are made by aberrant cleavages during formation and resolution of the Holliday intermediate.

Bacterial Outer Membrane Proteins

Electron microscopic identification of supercoiled regions in complex DNA structures.

When intracellular lambda replicative intermediates (theta structures) are intercalated with psoralen and then irradiated with long wavelength ultraviolet light (u.v.), interstrand crosslinks are produced. After purification and denaturation of these theta structures, a global difference in denaturation can be observed by electron microscopy; parental sections are essentially native whereas daughter segments are highly denatured. This difference can be explained if parental sections are covalently continuous (and therefore able to supercoil) and daughter segments are not. Due to the higher thermal stability of supercoiled DNA, parental DNA will remain native while daughter sections will denature. Because these structures are crosslinked, the thermal treatment does not lead to dissociation of the highly denatured daughter strands. Experiments with simple negatively supercoiled plasmid circles support the above conclusions. When circles are crosslinked with psoralen-u.v. and then denatured, they remain native because of the higher thermal stability of covalently closed structures. If the circles are linearized before heating but after the psoralen-u.v. treatment, the thermal stability effect is eliminated and the molecules become highly denatured. In this case, however, the crosslinking density is found to be higher than in samples linearized before psoralen-u.v. treatment. This, therefore, shows that crosslinking density also reflects the superhelical state of the molecule at the time of psoralen-u.v. treatment. Two different properties can be used to discriminate between supercoiled and covalently discontinuous domains in complex DNA structures. First, supercoiled regions remain native while covalently discontinuous segments denature following a thermal treatment. This effect requires that covalent continuity exists up to and during the heating treatment. Second, because negative superhelicity enhances psoralen intercalation, crosslinking density is higher in these regions. Even if supercoiled domains are destroyed after the psoralen-u.v. treatment, the imprint of superhelicity is retained and can be recognized as a higher than normal crosslinking density.

Bacteriophage lambda

Reinitiation at the lambda DNA origin accompanies the host SOS response.

Abnormal reinitiation of replication from lambda origins has previously been found during infection in the presence of caffeine or cis-diamminedichloroplatinum II (cis-Pt) or when lambda infects a P2 lysogen. It was further shown that the reinitiations arising from cis-Pt treatment took place during the SOS response induced by the template damage caused by the drug. It is now shown that SOS induction by uv irradiation of the host also results in reinitiation events and that it is the SOS response itself rather than some other direct effect of the damaged host template that is responsible for the phenomenon. Parental sections of lambda replicative intermediates can supercoil, whereas daughter segments cannot. To explain the control that prevents reinitiation, it is proposed that normally the origin sequence has to be under superhelical tension to be a suitable substrate for the initiating machinery; once a round is in progress, the daughter origin sequences would not be under such tension and would therefore be inactive. It is shown that in an SOS environment the proposed requirement for a superhelical origin sequence is relaxed and consequently the control against reinitiation lost. Under such conditions, primary growing points that have encountered template lesions terminate and a new wave of replication initiates.

Bacterial Proteins

Multiply branched DNA molecules from bacteriophage lambda: putative post-replicational repair DNA intermediates.

Previous studies have shown that thymidine deprivation causes the formation of multiply branched molecules among bacteriophage lambda DNA replicative intermediates. In the present report, we present supporting evidence indicating that the induction of the SOS response is involved in this process. Moreover, close inspection of the DNA replicatives intermediates present in a recA deficient strain, shows an accumulation of gapped replicative intermediates. From these observations we postulate a model by which multiply branched DNA molecules may be intermediates or derived intermediates of a post-replicational repair pathway.

Bacteriophage lambda

An immobilized fork as a termination of replication intermediate in Bacillus subtilis.

The structure of a DNA intermediate associated with termination of chromosome replication in Bacillus subtilis and derived from a unique BamHI 24.8 X 10(3) base-pair (bp) region of the chromosome has been investigated. The intermediate has properties expected for a forked structure. Gel electrophoresis followed by Southern transfer and hybridization to cloned DNA has shown it to comprise single strands of 15.4 X 10(3) bp and 24.8 X 10(3) bp, in approximately equimolar amounts. After purification away from the bulk of chromosomal DNA, electron microscopy of the intermediate established that 15% of the DNA was present as branched molecules and a significant proportion (11 of 31) of these contained two arms of matching length. The average dimensions (best estimates) of this unique class of Y-shaped molecule were 9.5(+/- 0.3) X 10(3), 15.1(+/- 0.4) X 10(3) and 24.6 24.6(+/- 0.6) X 10(3) bp for the stem, arms and end-to-end length, respectively. These values are consistent with the single strand composition of the intermediate as found. Furthermore, hybridization of the single strands to DNA from known locations within the BamHI 24.8 X 10(3) bp region has established the orientation of the forked intermediate relative to the genetic map. The intermediate presumably reflects the immobilization of the clockwise replication fork within the 24.8 X 10(3) bp region, at a location approximately 15.4 X 10(3) bp from the right end.

Bacillus subtilis