Search PubMed⌕ Search

Biomedical subjects

R G Wake

Publications and source records attributed to R G Wake.

At least 37 records · Page 2Linked to original sources

The Bacillus subtilis DNA replication terminator.

The recent discovery of the Bacillus subtilis plasmid terminator TerLS20 with bidirectional fork arrest activity has provided the opportunity to probe further the structural and functional features of B. subtilis replication terminators in general. The minimal TerI and TerLS20 terminators each comprise two 13 nt segments flanking a central trinucleotide, which is almost completely conserved in all terminators. It corresponds to the region of overlap of the two RTP binding sites (A and B) on the DNA. It has been shown that, despite this conservation, considerable variation in this trinucleotide region still allows fork arrest activity. Thus, the productive interaction of the RTP dimers, which presumably occurs in the vicinity of this trinucleotide region, is not dependent upon stringently defined contacts with the bases in this region. A completely synthetic and highly symmetrical terminator was constructed by replacing the 13 nt segment of the A site of TerI with an opposed segment identical to that in the B site. The efficient bidirectional activity of this new terminator, TerSymB, established more firmly the need for two opposed RTP binding sites in a functional terminator. TerSymB was used to investigate the effect of sequence deviation in one of the 13 nt segments, from that in the B site, on bidirectionality of the terminator. It was found that the deviations introduced converted the terminator significantly towards polarity of action. The partial symmetry within each of the 13 nt segments of TerSymB, and the presumed recognition of this symmetry in the binding of a symmetrical dimer of RTP to each overlapping site, suggest that the bound dimers are centred over positions in the DNA sequence separated by 15 nt. This separation distance has been used in conjunction with the mode of binding of RTP to DNA proposed by Bussiere et al., based on their crystal structure for RTP, to model the interaction of the two dimers of RTP with unbent B-form DNA. Increased separation of the two binding sites of TerSymB was performed by inserting an extra three, seven or ten nucleotides centrally within the TerSymB sequence. The effects of these insertions on RTP binding and fork arrest activity were consistent with the proposed positioning of the RTP dimers within the terminator sequence, and interaction between the dimers bound to TerSymB. A model to account for the generation of RTP-terminator complexes with bidirectional or polar fork arrest activity utilising TerSymB or TerI-VI is presented.

Bacillus subtilis↗

Identification and characterization of a novel type of replication terminator with bidirectional activity on the Bacillus subtilis theta plasmid pLS20.

We have sequenced and analysed a 3.1 kb fragment of the 55 kb endogenous Bacillus subtilis plasmid pLS20 containing its replication functions. Just outside the region required for autonomous replication, a segment of 18 bp was identified as being almost identical to part of the major B. subtilis chromosomal replication terminator. Here, we demonstrate that this segment is part of a functional replication terminator. This newly identified element, designated TerLS20, is the first replication terminator identified on a theta plasmid from a Gram-positive bacterium. TerLS20 is distinct from other known replication terminators in the sense that it is functional in both orientations. The region required for bipolar functionality of TerLS20 was delineated to a sequence of 29 bp, which is characterized by an imperfect dyad symmetry.

Bacillus subtilis↗

Replication fork arrest at relocated replication terminators on the Bacillus subtilis chromosome.

The replication terminus region of the Bacillus subtilis chromosome, comprising TerI and TerII plus the rtp gene (referred to as the terC region) was relocated to serC (257 degrees) and cym (10 degrees) on the anticlockwise- and clockwise-replicating segments of the chromosome, respectively. In both cases, it was found that only the orientation of the terC region that placed TerI in opposition to the approaching replication fork was functional in fork arrest. When TerII was opposed to the approaching fork, it was nonfunctional. These findings confirm and extend earlier work which involved relocations to only the clockwise-replicating segment, at metD (100 degrees) and pyr (139 degrees). In the present work, it was further shown that in the strain in which TerII was opposed to an approaching fork at metD, overproduction of the replication terminator protein (RTP) enabled TerII to function as an arrest site. Thus, chromosomal TerII is nonfunctional in arrest in vivo because of a limiting level of RTP. Marker frequency analysis showed that TerI at both cym and metD caused only transient arrest of a replication fork. Arrest appeared to be more severe in the latter situation and caused the two forks to meet at approximately 145 degrees (just outside or on the edge of the replication fork trap). The minimum pause time erected by TerI at metD was calculated to be approximately 40% of the time taken to complete a round of replication. This significant pause at metD caused the cells to become elongated, indicating that cell division was delayed. Further work is needed to establish the immediate cause of the delay in division.

Bacillus subtilis↗

The Bacillus subtilis cell-division 135-137 degrees region contains an essential orf with significant similarity to murB and a dispensable sbp gene.

Sequence similarity analysis has revealed that orf2, in the cell division 135-137 degrees region of the Bacillus subtilis (Bs) chromosome, is the probable homolog of Escherichia coli murB (encoding a reductase involved in peptidoglycan synthesis). The amino-acid sequences of the two protein products show 24% identity (47% overall similarity), with several regions of higher similarity which may represent functional domains of the proteins. Attempts to insertionally inactivate orf2 were unsuccessful, strongly suggesting that it is an essential Bs gene. A small gene found in the same region as orf2, sbp (encoding the 'small basic protein'), was shown to be non-essential in Bs.

Amino Acid Sequence↗

Identification and characterization of new DNA replication terminators in Bacillus subtilis.

A functional DNA replication terminator of Bacillus subtilis contains two overlapping binding sites, A and B, for the replication terminator protein (RTP). A degenerate 17-mer oligonucleotide corresponding to the consensus B site has been used to detect four new terminators in the B. subtilis chromosome, in addition to the previously identified and closely spaced IRI and IRII. All the new terminators lie in the terminus region of the chromosome, on both sides of IRI and IRII, with their positions spanning < 10% of its length. Their DNA sequences are characterized by clearly identifiable A- and B-binding sites. They bind RTP in a manner indistinguishable from IRI, although precise affinities have not been compared. Each new terminator is functional in causing fork arrest when present in a plasmid replicating in B. subtilis. Three of the four were tested for polarity in fork-arrest activity and exhibited the polarity expected. The total of six terminators now identified in B. subtilis have been named TerI-TerVI. TerI and TerII correspond to the previously identified IRI and IRII, respectively. The chromosomal orientations of all but one of the terminators (TerIV) have been established and they conform to an arrangement similar to that in Escherichia coli in which two opposed groups of polar terminators provide a replication-fork trap ensuring that the approaching forks meet within a restricted region of the chromosome. The development of a strikingly similar arrangement of terminators in the two organisms, despite the lack of any detectable similarity in their respective DNA terminators and terminator proteins, emphasizes the importance of the replication-fork trap in each case.

Amino Acid Sequence↗

Replication through the terminus region of the Bacillus subtilis chromosome is not essential for the formation of a division septum that partitions the DNA.

Germinated and outgrowing spores of a temperature-sensitive DNA initiation mutant of Bacillus subtilis were allowed to initiate a single round of replication by being shifted from 34 to 47 degrees C at the appropriate time. The DNA replication inhibitor 6-(parahydroxyphenylazo)-uracil was added to separate portions of the culture at various times during the round. Samples were collected from each around the time of the first division septation for measurements of the extent of the round completed, the level of division septation, the position of the septum within the outgrown cell, and the distribution of DNA (nucleoid) in relation to the septum. The extent of replication was measured directly through a hybridization approach. The results show clearly that a central division septum can close down onto a chromosome that is only partially replicated (to a minimum extent of about 60% of the round) such that DNA appears on both sides of the septum and frequently very close to it. It is concluded, as claimed previously on the basis of a less direct approach (T. McGinness and R.G. Wake, J. Mol. Biol. 134:251-264, 1979), that replication through the terminus region of the chromosome is not essential for the formation of a division septum that partitions the DNA.

Bacillus subtilis↗

FtsZ and nucleoid segregation during outgrowth of Bacillus subtilis spores.

Spores of a strain of Bacillus subtilis in which ftsZ was under the control of the spac promoter were allowed to germinate and grow out in the presence of increasing concentrations of isopropyl-beta-D-thiogalactopyranoside (IPTG). Over the IPTG concentration range of 0 to 10(-3) M, the level of FtsZ from the time when the first nucleoid segregations were occurring, measured in Western blot (immunoblot) transfer experiments, varied between 15 and 100% of that in the wild type. Septation was completely blocked (for at least several hours) when the amount of FtsZ was < 30% of the wild-type level. At all levels of ftsZ induction, the timing and rate of segregation of nucleoids following the first round of replication were unaltered. It is concluded that FtsZ has no direct role in nucleoid segregation in this situation.

Bacillus subtilis↗

Chromosome partitioning in bacteria.

This review addresses chromosome partitioning in Escherichia coli and Bacillus subtilis. The first part deals with events associated with completion of a round of replication to an extent that yields separable chromosomes. Events more directly involved in chromosome movement are covered in the second part. In the final section, a model for chromosome partitioning based on the information presented in the first two parts is presented.

Bacillus subtilis↗

Conservation of the 168 divIB gene in Bacillus subtilis W23 and B. licheniformis, and evidence for homology to ftsQ of Escherichia coli.

The chromosomal regions of Bacillus subtilis (Bs) W23 and Bacillus licheniformis (Bl), which span the sequence encoding the homolog of the division initiation gene, divIB, of Bs168 were cloned and sequenced. The high level of conservation of the amino acid (aa) sequence of the DivIB protein (99 and 68% identity for BsW23 and Bl, respectively) was consistent with a significant role for this protein in the cell cycle of the two species. The hydropathy profile for DivIB of Bl was almost identical to that of Bs168 and consistent with a membrane location, as previously established for the latter. The higher than average level of identity (87%) of the 31-aa N-terminal cytoplasmic domain of DivIB between Bs168 and Bl raised the possibility of a special role for this domain. Database analyses using the Bl DivIB sequence and similarity analyses also strongly suggested that DivIB, of Bl and Bs, is a homolog of FtsQ of Escherichia coli. The flanking sequences extending into the unidentified orfs both upstream and downstream from divIB were highly conserved between Bs168 and Bl at both the nucleotide and aa levels. It was confirmed that orf4 of Bs168 is dispensable.

Amino Acid Sequence↗

The minimal sequence needed to define a functional DNA terminator in Bacillus subtilis.

The 47 bp DNA replication terminator (IRI) of Bacillus subtilis, contains two binding sites, A and B, for the replication terminator protein (RTP). Each site binds a dimer of RTP. Removal of the first two base-pairs (bp 1-2) from IRI completely destroyed in vivo terminator (fork arrest) function and was accompanied by loss of RTP binding to the A site, which is distal to the approaching fork that is arrested. Removal of base-pairs 34 to 47 from the other end, proximal to the approaching fork, lowered in vivo function to approximately 50% of the complete IRI. RTP binding appeared to be largely unaffected. Terminator function remained at the approximately 50% level with further deletions that proceeded as far as to include base-pair 28; and RTP binding remained largely unaffected. Removal of more of the sequence beyond base-pair 27 and into the region that makes extensive contact with RTP resulted in a further impairment to in vivo function, and caused altered RTP binding. The base-pairs 1 to 24 segment retained only 16% fork arrest activity and the effect on RTP binding was largely evidenced by an elimination of the ability of this extensively truncated sequence to fill the B site alone. The behaviour of the various terminator deletions emphasize the importance of the previously defined RTP-DNA contacts which allow the binding of RTP to the two overlapping sites, A and B, of IRI for terminator function. A comparison of the affinities of selected truncated terminators for RTP raises the possibility that the overall affinity of RTP for its DNA terminator is not the sole determinant of terminator function.

Bacillus subtilis↗

The Bacillus subtilis replication terminator system functions in Escherichia coli.

The Bacillus subtilis DNA terminators, IRI + IRII, were inserted into the Escherichia coli plasmid pACYC184 such that the IRI terminator would be in its active orientation with respect to the approaching unidirectionally moving replication fork. When this new plasmid was transferred into E. coli, harbouring an expression plasmid producing the B. subtilis terminator protein RTP, fork arrest was observed to occur at the position of the inserted terminator region. Thus, the B. subtilis replication terminator system can function in E. coli. It was shown that the B. subtilis system operated with approximately 30% of the efficiency of the E. coli system utilizing the R6K TerR2 DNA terminator and the E. coli Tus terminator protein. Assuming that RTP and Tus have quite different folded structures these results suggest that fork arrest in B. subtilis is not dependent upon a highly specific recognition and interaction between RTP positioned on the DNA terminator and a component(s) of the approaching replisome.

Bacillus subtilis↗

Expression of divIB of Bacillus subtilis during vegetative growth.

Expression of the division initiation gene, divIB, of Bacillus subtilis vegetative growth was examined. lacZ fusion studies and transcription start point mapping have established that a sigma A promoter proximal to divIB is utilized in vivo. The -10 region of this promoter, which is located 93 bp upstream of the start codon, has been defined precisely by site-directed mutagenesis that destroys the promoter. Examination of transcripts by Northern (RNA) blotting has shown that there are at least two transcripts for divIB. The established proximal promoter was found to give rise to a very minor transcript which could not be convincingly demonstrated in wild-type cells but which became apparent upon insertion of a plasmid into the chromosome just upstream of this promoter. The major transcript for divIB originated from a site several kb upstream of the gene and is probably the same as the long polycistronic message also traversing the murD-spoVE-murG genes that was identified previously by others (A.D. Henriques, H. de Lencastre, and P.J. Piggot, Biochimie 74:735-748, 1992). Transcription from the proximal promoter alone, in an upstream-deletion mutant strain, provided sufficient DivIB for normal growth and division as well as sporulation.

Amino Acid Sequence↗

Autoregulation of the gene encoding the replication terminator protein of Bacillus subtilis.

One of two putative sigma A promoters identified previously in the region immediately upstream from the rtp gene (encoding the replication terminator protein) [Smith and Wake, J. Bacteriol. 170 (1988) 4083-4090] has been shown by transcription start point (tsp) mapping to be the functional rtp promoter. In these tsp mapping experiments, it was observed that the level of mRNA from this promoter, Prtp, was increased by a factor of 30 in the absence of the replication terminator protein (RTP), consistent with the autoregulation of rtp at the level of transcription. In vitro transcription from Prtp by sigma A RNA polymerase has been shown to be specifically repressed by RTP. A Prtp-spoVG-lacZ fusion was inserted into the chromosome of a strain in which RTP production was inducible by IPTG. Addition of IPTG to cultures of the new strain lowered beta Gal production by a factor of at least four. It is concluded that rtp is autoregulated in vivo at the level of transcription.

Amino Acid Sequence↗

Symmetry and secondary structure of the replication terminator protein of Bacillus subtilis: sedimentation equilibrium and circular dichroic, infrared, and NMR spectroscopic studies.

We have used analytical ultracentrifugation in combination with a number of spectroscopic techniques to analyze the symmetry and secondary structure of the DNA-binding replication terminator protein (RTP) of Bacillus subtilis. Sedimentation equilibrium studies confirm that RTP is a dimer in solution under the conditions used for spectroscopic analysis, whereas the number of cross peaks displayed in 1H-15N HSQC NMR spectra of uniformly 15N-labeled RTP are consistent with the primary structure of the monomer. These two results in combination lead to the conclusion that RTP is a symmetric dimer in solution. Circular dichroic and Fourier-transform infrared spectra reveal, in contrast to the results obtained from a number of commonly used secondary structure prediction algorithms, that RTP contains 20-30% alpha-helical and 40-50% beta-sheet/beta-turn secondary structure and that the conformation of the protein remains unchanged over the pH range 5-8. It is proposed on the basis of protein folding-class prediction algorithms, in combination with various physical properties of RTP, that it belongs to the alpha + beta protein-folding class.

Algorithms↗

Protein-nucleoside contacts in the interaction between the replication terminator protein of Bacillus subtilis and the DNA terminator.

The interaction between the DNA replication terminator, IRI, of Bacillus subtilis and its cognate replication terminator protein (RTP) has been examined by the technique of missing nucleoside interference (MNI). IRI contains two adjacent binding sites (A and B) for RTP dimers. The B site is proximal to the replication fork arrest site. The present results have shown that nucleoside contacts with RTP in the two sites are very different. There are more extensive contacts of nucleosides in both strands of the B site with RTP compared with the A site. The data also strongly suggest that filling by RTP of the B site occurs first and is needed for subsequent co-operative filling of an overlapping A site. The A site alone binds RTP poorly. The findings are consistent with interaction occurring between RTP dimers bound to adjacent sites of IRI, which would explain why RTP bound to the B site alone cannot cause replication fork arrest.

Bacillus subtilis↗

Characterization of mutations in divIB of Bacillus subtilis and cellular localization of the DivIB protein.

Four temperature-sensitive mutations in the divIB gene of Bacillus subtilis have been localized to the region corresponding to the C-terminal half of the 263-residue DivIB protein. Antiserum was raised to the 80% C-terminal portion lying on one side of a putative transmembrane (hydrophobic) segment, and used to examine aspects of the nature and localization of the DivIB protein in the cell. A single DivIB species of a size equal to the full-length protein encoded by the divIB gene was detected in wild-type cells. Cell fractionation studies established that DivIB is associated preferentially with the cell envelope (membrane plus cell wall), with approximately 50% being released into solution upon treatment of cells with lysozyme under conditions that yield protoplasts. Of the remaining 50%, approximately half remained firmly associated with the membrane fraction. On the basis of the 'positive-inside rule' of von Heijne (1986) it is suggested that the topology of membrane-bound DivIB is such that the long C-terminal portion is directed to the outside and the smaller N-terminal portion to the inside of the cell. DivIB in protoplasts was rapidly degraded by proteinase K under conditions where there was no general proteolysis of the cytoplasmic proteins. This is consistent with its absence from the cytoplasm, and with the predicted membrane topology. Septum positioning in a divIB null mutant, which grows as filaments at temperatures of 30 degrees C and below, was found to be normal. It appears that DivIB is needed for achieving the appropriate rate of initiation of septum formation at normal division sites. It is proposed that the C-terminal portion of DivIB, localized on the exterior surface of the membrane and in juxtaposition to the peptidoglycan, normally interacts with another protein (or proteins) to initiate septum formation.

Amino Acid Sequence↗

Definition and polarity of action of DNA replication terminators in Bacillus subtilis.

The first stage in termination of chromosome replication in Bacillus subtilis involves arrest of the clockwise fork at the inverted repeat region (IRR), comprising the opposed IRI and IRII sequences, adjacent to the upstream region of the rtp gene, which encodes the replication terminator protein RTP. RTP binds to IRI and IRII. The ability of the IRR and its components to function as terminators, in conjunction with RTP, and their polarity of action have now been tested by the use of plasmids replicating in B. subtilis as unidirectional theta structures and into which potential terminator sequences were inserted in alternate orientations relative to fork movement. When the complete IRR was inserted into such plasmids and the new plasmids transferred into a B. subtilis strain overproducing RTP, it was able to block movement of a replication fork approaching from either direction. IRI and IRII were shown to function as polar terminators, each blocking movement of a fork when it approached from one particular direction but not the other. Furthermore, the polarity of action was in accordance with the IRR being able to operate as a replication fork trap. Thus, a fork approaching the IRR would pass through the first terminator encountered (IRI or IRII) and be halted by the second. The previously observed nonfunctioning of a particular orientation of chromosomal IRR as a fork arrest site probably reflects a limiting level of RTP in the cell. Interestingly, a 21 base-pair core sequence spanning a single RTP binding site within IRI (the 47 base-pair IRI contains 2 binding sites) was unable to arrest a fork approaching from either direction in the plasmid system. This suggests that both binding sites within an IR must be filled in order to function as an arrest site. It is possible that co-operative interaction between adjacent dimers within IRI or IRII provides the necessary conformation for causing fork arrest.

Bacillus subtilis↗

Normal terC-region of the Bacillus subtilis chromosome acts in a polar manner to arrest the clockwise replication fork.

A procedure is described for relocating a functional terC-region to various sites on the Bacillus subtilis chromosome, and in alternative orientations. The relocated terC-region comprised the IRR-rtp portion of the chromosome contained within a 1.75 x 10(3) base-pair segment of DNA. This segment was first cloned into the Tn 917 vector pTV20 in both orientations, and the two new plasmids used for inserting the terC-region into chromosomal copies of Tn 917. When relocated to the pyr and metD loci (139 degrees and 100 degrees positions on the 360 degrees map) it was found that clockwise replication fork arrest occurred only when the IRR-rtp (or terC-) region was oriented, in relation to the direction of approach of the fork, in the same way as in the wild-type strain. Thus, the complete IRR when located in the chromosome, and apparently made up of opposing terminators which might enable it to function in both orientations, is polar in its action. Of the two inverted repeats present in the IRR, it appears that IRI is functional in the chromosome, but not IRII.

Bacillus subtilis↗