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Journal of Bacteriology, January 2005, p. 567-575, Vol. 187, No. 2
0021-9193/05/$08.00+0 doi:10.1128/JB.187.2.567-575.2005
Copyright © 2005, American Society for Microbiology. All Rights Reserved.
Microbial Pathogenesis Laboratory, Department of Microbiology, Faculty of Medicine,1 Department of Preventive Dentistry, Faculty of Dentistry, National University of Singapore, Singapore2
Received 4 August 2004/ Accepted 13 October 2004
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CDT constitutes a family of genetically related bacterial protein toxins that are produced by a variety of gram-negative mucosal pathogens such as Escherichia coli (31), Shigella dysenteriae (29), Campylobacter jejuni (32), Haemophilus ducreyi (6), and A. actinomycetemcomitans (39). CDT causes sensitive eukaryotic cells to become irreversibly blocked at the G2/M phase of the cell cycle (5). Morphologically, intoxicated cells become distended to several times their normal size over 2 to 5 days, eventually leading to cell death (25, 39). The cdt locus of A. actinomycetemcomitans consists of cdtA, cdtB, and cdtC organized in an apparent operon (38). The gene products have molecular masses of 27, 30, and 20 kDa, respectively. The deduced amino acid sequences derived from the three cdt genes of A. actinomycetemcomitans are about 20 to 50% similar to those from E. coli, S. dysenteriae, and C. jejuni and >95% similar to those from H. ducreyi (33). Expression of all three genes is required for CDT activity. Individually, purified recombinant CdtA, CdtB, or CdtC does not exhibit toxic activity (39). However, the toxin subunits are able to interact with one another to form an active tripartite holotoxin that exhibits full cellular toxicity (21, 37). CdtB is the active subunit of CDT holotoxin (9) and is capable of causing cell cycle arrest when introduced into cells. The CdtB polypeptide exhibits striking pattern-specific homology to members of the DNase I protein family (10, 20). Information about the functions of the CdtA and CdtC subunits of A. actinomycetemcomitans is limited (22). Recombinant CdtA, which has similarities to the carbohydrate-binding domain of the ricin B subunit, binds to the surfaces of Chinese hamster ovary (CHO) cells (23). Additionally, this study reported that recombinant CdtC, when introduced into CHO cells, resulted in cellular distension and eventual death. The emerging model for CDT action predicts that CdtA, CdtB, and CdtC form a tripartite complex that facilitates the entry of CdtB into cells by endocytosis (7, 8).
Introns are rarely found in eubacteria. Eubacterial introns identified to date are found mostly in genes associated with conjugal transfer, for instance, Tn5397 of Clostridium difficile (28) and the relaxase gene (ltrb) of Lactobacillus lactis (27). More recently, protein-encoding genes of C. difficile and Bacillus anthracis have been reported to possess introns (2, 15). Bacterial introns typically belong to either group I or group II. These introns are usually self-splicing where cleavage-ligation reactions occur efficiently in the absence of proteins (18, 36). Group I and II introns share little homology at the primary sequence level. Instead, these introns are classified based on their secondary structures and splicing mechanisms (4, 26). The conserved secondary structure of group I introns consists of characteristic stem-loop pairings (P1 to P10) and four conserved sequence elements (P, Q, R, and S) which form the catalytic core of the intron (4). The secondary structure of group II introns consists of six helical domains (I to VI) emerging from a central domain (26). Mechanistically, splicing of group I introns is initiated by a nucleophilic attack of the 3' OH group of an exogenous guanosine cofactor at the 5' splice site, resulting in covalent attachment of the guanosine to the 5' end of the intron and release of the 5' exon. In the second step, the free 3' OH of the 5' exon attacks the 3' splice site, forming a phosphodiester bond between the 5' exon and the 3' exon, and liberating the intron (4). The splicing mechanism of group II introns is similar to that of eukaryotic pre-mRNA. The first step involves nucleophilic attack at the 5' splice site by the 2' OH group of a conserved A residue located within the 3' end of the intron. The reaction yields a lariat structure where the 5' end of the intron is ligated to the A residue by a 2'
5' phosphodiester bond. The second step involves the attack of the 3' splice site by the free 3' OH group of the 5' exon, resulting in ligation of the 5' and 3' exons and release of the intron lariat (26).
In this study, we report the presence of intervening sequences (IVS), or introns, within the cdt gene of A. actinomycetemcomitans. To the best of our knowledge, this is the first description of the presence of introns not only within the cdt gene family but also in the genome of an oral bacterium. The characteristics of these novel introns are discussed.
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DNA manipulations.
Restriction endonucleases, T4 DNA ligase, alkaline phosphatase, and the Klenow fragment of DNA polymerase I were purchased from New England Biolabs (Beverly, Mass.) and used as recommended by the manufacturer. PCR products were purified by using the QIAquick PCR purification system (QIAGEN, Valencia, Calif.) according to the manufacturer's instructions. Plasmid DNA was extracted by using a QIAprep plasmid kit (QIAGEN). E. coli was transformed by electroporation with a Gene Pulser apparatus (Bio-Rad Laboratories, Hercules, Calif.). Electroporation was performed in a 0.1-cm electrocuvette (Bio-Rad) at 1.8 kV, with a pulse setting of 25 µF capacitance and 200
resistance.
RNA isolation. Total RNA was extracted from A. actinomycetemcomitans at pre-logarithmic, logarithmic, and stationary phases of bacterial growth. Overnight cultures of E. coli were diluted 1:100 and incubated at 37°C with aeration until early-logarithmic phase (optical density at 600 nm, 0.4). Transcription of the cloned gene was induced with 1 mM isopropyl-ß-D-thiogalactopyranoside (IPTG). Cells were harvested by centrifugation at 5,000 x g for 10 min at 4°C. The cell pellet was washed twice by using 1x phosphate-buffered saline. RNA was isolated by using RNAwiz (Ambion, Austin, Tex.) according to the manufacturer's protocol.
cDNA synthesis. The sequences of primers used in this study are listed in Table 1. A schematic diagram showing the organization of the cdt gene and the locations of the primers is shown in Fig. 1a. Oligonucleotides were purchased from Proligos, Singapore. Prior to reverse transcription, RNA was treated with 2 U of DNase I (Ambion) at 37°C for 30 min. The reverse transcription reaction mixture consisted of 100 ng of DNase I-treated RNA, 20 pmol of a gene-specific primer, 10 mM deoxynucleoside triphosphates, 40 U of an RNase inhibitor (Fermentas, Hanover, Md.), 200 U of RevertAid H Minus Moloney murine leukemia virus reverse transcriptase (Fermentas), and 1x reaction buffer. The negative-control reaction mixture was prepared in the same manner without reverse transcriptase to ensure that the RNA samples were free from contaminating DNA. cDNA synthesis was carried out at 42°C for 1 h. Reverse transcriptase was denatured by heating at 70°C for 10 min prior to PCR.
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TABLE 1. Primers used in this study
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FIG. 1. Analysis of cdt gene transcription using primers cdtAF and cdtCR. (a) Diagram showing the organization of the cdt genes. Arrows indicate the locations and orientations of the primers used. (b) Lanes 1 and 2, PCR results for the genomic DNAs of strains 33384 and 700685, respectively. (c) Lanes 1 and 2, RT-PCR amplicons of strains 33384 and 700685, respectively. Lanes 3 and 4, RT-PCR without reverse transcriptase of RNAs used in lanes 1 and 2. Lanes M, DNA size marker (1 Kb Plus; Invitrogen).
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DNA sequencing and analysis. RT-PCR products were gel purified from SeaKem GTG agarose (FMC Bioproducts, Philadelphia, Pa.) by using a QIAquick gel purification system (QIAGEN) according to the manufacturer's instructions. Purified products were cloned into the pGEMT-easy vector (Promega). Both sense and antisense strands were sequenced. Cycle sequencing was performed by using the BigDye Terminator cycle sequencing kit (version 3.1; Applied Biosystems, Foster City, Calif.) according to the manufacturer's instructions. Amplified products were analyzed by using an ABI PRISM model 3100 automated sequencer (Applied Biosystems). Sequence alignment was performed using MegAlign 5.05 (DNASTAR, Madison, Wis.).
In vitro transcription.
RNA was synthesized in vitro by using T7 RNA polymerase (Ambion). A linear PCR DNA template with T7 RNA polymerase promoter sequence upstream was used as a template for in vitro transcription. Radiolabeled and unlabeled transcripts were synthesized by using the Megascript (Ambion) in vitro transcription system according to the manufacturer's instructions. For synthesis of the labeled transcript, an additional 1 µl of [
-32P]rUTP (3,000 Ci/mmol; 10 mCi/ml) (Amersham Biosciences, Little Chalfont, Buckinghamshire, United Kingdom) was added to the reaction mixture. The RNA was purified by lithium chloride precipitation.
In vitro splicing assay. Radiolabeled in vitro-transcribed cdt RNA was incubated in the presence of either group I or group II splicing buffers. For the group I intron splicing assay, the labeled RNA was heated at 95°C for 1 min and cooled in the presence of group I splicing buffer containing 100 mM NH4Cl, 100 mM MgCl2, and 50 mM HEPES (43). The reaction was initiated with GTP (Fermentas) to a final concentration of 0.1 mM, and the reaction mixture was incubated at 37°C for 60 min. For the group II intron splicing assay, the labeled transcripts were incubated at 45°C in 40 mM Tris-HCl (pH 7.5), 100 mM MgCl2, and 500 mM NH4Cl for 60 min (11). Reaction products were analyzed by using a 1% glyoxal gel (Ambion). Following electrophoresis, the gel was dried, and a sheet of X-ray film was laid on the gel and exposed in a cassette for 12 h at 70°C. After exposure, the film was developed and fixed.
trans-splicing assay. In vitro-transcribed cdtC was incubated in the presence of A. actinomycetemcomitans leukotoxin A (ltxA) RNA at 37°C for 1 h (16). The reaction mixture consisted of 100 ng of each RNA species in the presence of 1x in vitro transcription reaction buffer (Ambion) in a reaction volume of 10 µl.
SDM. Site-directed mutagenesis (SDM) was performed by using the Gene Editor in vitro SDM system (Promega) according to the manufacturer's instructions. The sequences of the mutagenic oligonucleotides SDM-2 and SDM-3 can be found in Table 1. SDM mutants were confirmed by DNA sequencing. The cdtAF primer, together with either the cdtCR2 or the cdtCR3 reverse primer, was used to generate two 3' splice site deletion mutants, W79 and W80.
Plasmid constructs. A summary of plasmid constructs made in this study can be found in Table 2. All cloned fragments were sequenced to ensure that the cloned insert was inserted in the correct orientation. Primer pair cdtAF(RBS)-cdtCR was used to amplify the complete cdt gene. The PCR fragment was ligated to pGEMT-easy, and the resulting recombinant vector was designated pW78. For construction of pWAC, primer pair cdtAF-cdtAR (BglII) was used to amplify the cdtA gene with the BglII restriction site at the 3' end. The purified PCR product was cloned into the pGEMT-easy vector, giving rise to pWA. The cdtC gene was amplified by using primer pair cdtCF (BglII)-cdtCR (PstI) and was inserted downstream of cdtA of pWA via the BglII and PstI sites of the insert and vector. Primer pairs cdtBF-cdtCR and cdtAF-cdtBR were used to amplify the cdtBC and cdtAB genes, respectively. A purified PCR product was cloned into the pGEMT-easy vector. The resulting recombinant plasmids were designated pWBC and pWAB, respectively. Primer pair HX1-HX5R (BglII) was used to amplify the leukotoxin A (ltxA) gene from the genomic DNA of A. actinomycetemcomitans by PCR. A purified PCR fragment was cloned into the pGEMT-easy vector to yield pHX. A cdtC fragment amplified by using primers cdtCF (BglII) and cdtCR (PstI) was cloned downstream of the ltxA gene of pHX via the BglII and PstI restriction sites of the gene and vector, giving rise to pHXC.
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TABLE 2. Summary of plasmid constructs
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The growth profile of A. actinomycetemcomitans is shown in Fig. 2. RT-PCR analysis of RNAs extracted from 3-, 6-, 12-, 16-, 20-, and 24-h bacterial cultures of A. actinomycetemcomitans 33384 and 700685 using primer pair cdtAF-cdtCR gave three amplicons of 2.123, 1.572, and 0.882 kb (Fig. 2). As the bacteria approached the stationary phase of growth, the 2.123-kb cdt RNA was no longer detectable. The shorter cdt transcripts persisted until stationary phase for strain 700685. For strain 33384, no cdt transcripts were detected from a 24-h culture. Negative-control RT-PCRs of the RNA samples yielded no amplicons (data not shown). A single PCR band of 2.123 kb was obtained from cultures of different ages for both A. actinomycetemcomitans strains studied (data not shown).
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FIG. 2. Time course analysis of cdt transcription. Graph shows the growth profiles of strains 33384 and 700685. RT-PCR using the primer pair cdtAF-cdtCR was performed on RNAs extracted from 3-, 6-, 12-, 16-, 20-, and 24-h cultures of A. actinomycetemcomitans. (a and b) Gel electrophoresis results for RT-PCR amplicons of strains 33384 and 700685, respectively.
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FIG. 3. Analysis of cdt gene transcription in E. coli W78, carrying the cdt gene on a recombinant plasmid. Lanes 1 to 4, amplicons obtained from PCR (a) and RT-PCR (b) from cultures at 1 to 4 h postinduction, respectively, by using the primer pair cdtAF-cdtCR. Lanes M, DNA size marker.
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FIG. 4. Sequence alignment of full-length (RTA1) and spliced (RTA2 and RTA3) transcripts. Exon-intron boundaries, or splice sites (SS), are underlined and boldfaced.
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FIG. 5. Effects of mutated 5' splice site I on splicing activity. Lanes 1 and 2, PCR (a) and RT-PCR (b) amplicons of SDM-24 and SDM-32, respectively. Lanes M, DNA size marker.
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FIG. 6. Deletion of 3' splice site results in activation of cryptic splice sites. (a) Lane M, DNA size marker (1 Kb Plus). Lane 1, RT-PCR products of mutant W79. (b) Lane M, DNA size marker (2-Log Ladder; New England Biolabs). Lane 1, RT-PCR products of mutant W80. Lanes 2, negative-control RT-PCRs. (c) Sequences of wild-type and cryptic splice sites are underlined. Determination of the locations of the 3' splice sites is dependent on a 20- to 24-nt proximity (upstream) to the 3' exon.
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FIG. 7. Group I and group II intron splicing assays. Radiolabeled cdt RNA was incubated in the presence of group I (a) and group II (b) intron-splicing buffers. Lanes 1, 0 min after incubation; lanes 2, 60 min after incubation.
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FIG. 8. Transcription analysis was carried out on a series of clones with deletions of either cdtB (clone WAC), cdtA (clone WBC), or cdtC (clone WAB) to determine the location of the catalytic region of the cdt RNA. (a, c, and e) Lanes 1, PCR products of clones WAC, WBC, and WAB, respectively. (b, d, and f) Lanes 1, RT-PCR products of clones WAC, WBC, and WAB, respectively. Lanes 2, negative-control RT-PCRs without reverse transcriptase. Lanes M, DNA size marker.
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FIG. 9. Demonstration of the cis- and trans-splicing abilities of cdtC RNA. Transcription analysis of E. coli clone WHXC, possessing a fusion construct of ltxA and cdtC, was performed to show that cdtC RNA alone is catalytically active. (a and b) Lanes 1, PCR (a) and RT-PCR (b) products of E. coli clone WHXC. Lane 2, negative-control RT-PCR. (c) In vitro-transcribed cdtC RNAs were incubated in the presence of ltxA. Lanes M, DNA size marker.
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The 5' splice sites of all group I introns identified to date share sequence and structure similarities. Splicing always occurred at the conserved "wobble" U-G base pair in the first stem-loop (P1) of the introns. Replacement of the consensus U-G with U-A, U-U, G-G, or A-G resulted in decreased splicing activity (1). Deletion of the 3' splice site of cdt RNA did not abolish splicing function but resulted in activation of a cryptic splice site 24 nt upstream of the native 3' splice site. The cryptic splice site of cdt possessed the sequence GTA AA, which shows some similarity to the original splice site sequence. However, mutant W80, which possessed deletions to both the native and cryptic splice sites, spliced at another cryptic splice site with the sequence TAT TAC CT, located 45 nt upstream of the original 3' splice site. It is noteworthy that a cryptic splice site was used only in the absence of the normal site, never in its presence. In the absence of the native splice site sequence, splicing at cryptic sites can occur. In general, cryptic splice sites that are activated possess sequence similarity to the original sequence (34). Comparison between the authentic and cryptic splice site sequences did not reveal much similarity. Instead, it was observed that determination of cryptic splice site activation was dependent on a location 20 to 24 nt upstream from the end of the 3' exon (Fig. 6c). Based on these observations, it appears possible for us to create a whole new set of "RNA restriction endonucleases" that may be used for sequence-specific cleavage of RNA by modifying the nucleotide sequences within the 3' exon of the cdt ribozyme.
Deletion analysis was used to identify regions in cdt RNA that are essential for splicing and those that are dispensable. CdtB possesses endonuclease activity capable of nicking a supercoiled plasmid in vitro (10). Additionally, computational analysis of the amino acid sequence of CdtB using the Conserved Domain Database revealed similarity to a predicted RNA nuclease of Schizosaccharomyces pombe (24). Thus, the catalytic region of the cdt RNA was thought to reside within cdtB. However, in the absence of the cdtB gene, splicing of cdt occurred, indicating that that cdtB is dispensable and is not required for splicing. Splicing of cdt RNA was also unaffected in the absence of cdtA. In contrast, clone WAB, which lacks the cdtC gene, was found to be deficient in splicing, suggesting that the catalytically active part of cdt RNA resides within cdtC. Nevertheless, cdtA and cdtB sequences could be required to assist the folding of cdtC RNA into a catalytically active structure, since the activity of an RNA molecule resides in its ability to fold into a specific three-dimensional conformation (43). However, cdtC RNA was able to catalyze splicing of ltxA RNA (a heterologous RNA) in both the cis and trans configurations. These results indicate that cdtC RNA alone is a catalytically active ribozyme. Generally, in vivo splicing is an intramolecular reaction where only sequences on the same RNA molecule can be spliced out. In contrast, trans-splicing refers to the joining of exons found on different RNA molecules. This RNA processing mechanism can be found in lower eukaryotic cells such as trypanosomes, nematodes, and Euglena (17, 40, 42). This involves an interaction between a 5' splice site present in the spliced leader RNA and a 3' splice site located near the 5' end of the pre-mRNAs. More recently, it was reported that viral-cellular hybrid mRNA molecules could be generated in mammalian cells by trans-splicing (3). Since cdtC RNA has the ability to trans-splice in vitro, we speculate that trans-splicing probably occurs within A. actinomycetemcomitans, producing a new combination of RNA species and thus increasing the coding capacity of genes.
Genes encoding endonucleases can often be found within group I introns (19). These endonucleases function in intron mobility; they initiate mobility by recognizing the intron insertion site within an intronless allele, followed by introduction of a DNA double-strand break near that site. A subsequent double-stranded break and repair mechanism using an intron-containing allele as a template leads to insertion of the intron into the target site by gene conversion. This process is called intron homing, because the intron usually inserts into the identical location in an intronless recipient allele. Although AacdtIVS-1 and AacdtIVS-2 do not possess structures and elements characteristic of group I introns, these introns possess a cdtB gene that, coincidentally, possesses endonuclease function (10). Whether CdtB functions as a homing endonuclease facilitating intron mobility in A. actinomycetemcomitans awaits future studies.
The function of introns within protein-encoding genes of eubacteria remains unknown. Intervening sequences found in the tcdA and recA genes of C. difficile and B. anthracis, respectively, are removed from their precursor mRNAs, giving rise to proteins that are functionally indistinguishable from their intronless counterparts (2, 15). More recently, bacterial RNA splicing was shown to function in a temperature-dependent fashion, as a novel means of regulating the expression of the major outer membrane protein gene (p44-18) of A. phagocytophilum (45). In this light, splicing of the cdt transcripts could serve as an avenue for posttranscriptional control, regulating the expression of Cdt proteins. We are currently investigating the roles of introns and RNA splicing of A. actinomycetemcomitans cdt in association with health and disease.
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