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Journal of Bacteriology, April 2009, p. 2266-2275, Vol. 191, No. 7
0021-9193/09/$08.00+0 doi:10.1128/JB.01152-08
Copyright © 2009, American Society for Microbiology. All Rights Reserved.
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Department of Medical Laboratory Science and Biotechnology, China Medical University, Taichung 404, Taiwan,1 Department of Biotechnology, Asia University, Wufeng, Taichung County 413, Taiwan2
Received 15 August 2008/ Accepted 29 December 2008
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54 activator, FleQ, has been shown to be required for the transcriptional activation of the flagellar type III secretion system (F-T3SS), rod, and hook proteins. One of the two rpoN genes, rpoN2, encoding
54, is essential for flagellation. RpoN2 and FleQ direct the expression of a second alternative sigma FliA (
28) that is essential for the expression of the flagellin FliC. FlgM interacts with FliA and represses the FliA regulons. An flgM mutant overexpressing FliC generates a deformed flagellum and displays an abnormal motility. Mutation in the two structural genes of F-T3SS, flhA and flhB, suppresses the production of FliC. Furthermore, FliA protein levels are decreased in an flhB mutant. A mutant defective in flhA, but not flhB, exhibits a decreased infection rate. In conclusion, the flagellar biogenesis of Xanthomonas campestris requires alternative sigma factors RpoN2 and FliA and is temporally regulated by FlhA, FlhB, and FlgM. |
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Expression of flagellar genes is generally regulated by several regulators in a hierarchical manner (3, 8, 10, 43). In Enterobacteriaceae, which possess multiple peritrichous flagella, the flagellar genes can be classified into three classes: the class I proteins FlhDC expressed from a
70-directed promoter are the master regulators that regulate the transcription of the class II genes comprising fliA (
28) and the genes encoding F-T3SS, rod, and hook proteins (2, 39). Expression of the class III genes, including those for flagellin proteins, requires an active FliA. Several feedback pathways have been reported to coordinate the gene expression and flagellin assembly. An anti-sigma factor, FlgM, expressed from a class II promoter binds to FliA and inhibits its activity. This inhibition terminates with complete formation of the hook-basal body complex through which FlgM is expelled from the cytoplasm (35). The duration of expression of class III genes is limited due to increased proteolysis of FliA in the absence of FlgM (5). Chaperones, FliT and FlgN, also play roles in shifting from class II to class III promoters. FliT binds directly to FlhC and represses the expression of the class II genes (76). FlgN upregulates flgM and represses class III genes (1).
A second type of regulation is represented by a bacterial group, including vibrios and pseudomonads, that possesses single, polar flagella. Two alternative sigma factors (RpoN and FliA) are implicated in the regulation of the transcriptional hierarchy of flagellar genes. In coordination with RpoN, two NtrC-type activators, FlrA/FleQ and FlrBC/FleSR, regulate the transcription of the class II and III promoters (14, 60). The expression of class IV promoters is dependent on FliA under the negative regulation of FlgM (14).
A third type of regulation is found in Caulobacter crescentus, which also possesses a single polar flagellum. The production of flagellin (class III) is directly dependent on RpoN and the activator FlbD (a class II protein) (54). The expression of flbD is dependent on
73 and the activator CtrA (class I). Regulator FliX binds to FlbD and inhibits its activity (16, 53, 54). After the assembling of an early structure of the basal body, FliX becomes an activator of FlbD, which initiates the transcription of late flagellar genes (52). Similar to the case for FlgM in the enteric bacteria, vibrios, and pseudomonads, FliX regulates a critical checkpoint coupling flagellar gene regulation to assembly.
Xanthomonas campestris pv. campestris, a member of the Pseudomonadaceae bearing a single polar flagellum, is a plant-pathogenic bacterium causing black rot in cruciferous plants (74). By examining the genome sequence of X. campestris pv. campestris ATCC 33913 (GenBank accession no. NC_003902), more than 40 genes have been predicted to be involved in flagellar biogenesis and motility. It is known that expression of the flagellin gene (fliC) is upregulated by Clp, a homolog of the cyclic AMP receptor protein (36). Our previous studies have demonstrated that fleQ, encoding a
54-cognate activator, is essential for normal flagellation and for the transcription of the promoters upstream of fliE, fliL, fliQ, flgB, flgG, and flhF (27). In this work, we show that the expression of flagellar genes of X. campestris pv. campestris is regulated in a three-tier hierarchy. Alternative sigma factors, RpoN2 (
54) and FliA (
28), are required for the expression of class II and class III flagellar promoters, respectively. FlgM represses the activity of a FliA-dependent promoter via protein-protein interaction. The effects of mutations in two F-T3SS structural genes, flhA and flhB, on flagellar genes expression and virulence are also examined.
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TABLE 1. Bacteria and plasmids used in this work
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Construction of flhA, flhB, rpoN2, fliC, flgM, and fliA mutants. The flhA, flhB, rpoN2, flgM, and fliC mutants were constructed by insertional mutagenesis. A gentamicin resistance (Gmr) gene from pUCGM (66) was inserted into the target gene that had been cloned in suicide plasmid pOK12 (72) or pBB. The orientation of the inserted Gmr gene was the same as that of the target gene as confirmed by sequencing. The recombinant plasmids were then electroporated into a wild-type X. campestris pv. campestris strain, Xc17. Allelic exchange between the chromosomal gene and the mutagenized plasmidic copy was achieved by double crossover. The mutant strains were selected by antibiotic sensitivity and checked by PCR. A fliA mutant was constructed by inserting the plasmid pOK12 into the fliA gene via single crossover. The plasmids and oligonucleotide primers used in this work are listed in Tables 1 and 2. The details of the construction of recombinant suicide plasmids are provided as below.
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TABLE 2. Oligonucleotides used in this work
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(ii) flhB. A 1,140-bp DNA fragment containing the entire CDS of flhB of Xc17 was amplified by PCR with primer pair flhBw-F/-R and cloned into pBB to obtain pBBflhBw. Two PstI sites were introduced into the flhB gene in pBBflhBw by inverse PCR with flhB_PstI-F/-R. After digestion with PstI, the PCR fragment was self-ligated to form pBBflhB-PstI. A Gmr gene was inserted into the created PstI site to form pBBflhB::Gm.
(iii) rpoN2. A 2,661-bp PstI-XhoI fragment containing the entire CDS of rpoN2 of Xc17 was obtained by chromosomal walking and cloned in pOK12. A Gmr was inserted into the cloned rpoN2 gene to replace an internal 996 bp of a SphI fragment. The derived plasmid was named pOKrpoN2::Gm.
(iv) flgM. An 847-bp DNA fragment containing the entire CDS of flgM of Xc17 was amplified by PCR with primer pair flgM-F/-R and cloned into pBB to obtain pBBflgM. A Gmr gene was inserted into the sole PstI site of flgM to form pBBflgM::Gm.
(v) fliC. A 1,194-bp DNA fragment containing the entire CDS of fliC of Xc17 was amplified by PCR with primer pair fliCw-F/-R and cloned into pBB to obtain pBBfliCw. A Gmr gene was inserted into pBBfliCw to replace an internal 459 bp of a SalI fragment of fliC to form pBBfliC::Gm.
(vi) fliA. A 347-bp DNA fragment containing the internal region of fliA of Xc17 was amplified with primer pair fliA-F/-R and cloned into pOK12 to form pOKfliA.
Construction of flhA, flhB, and flgM complementary plasmids. The entire CDSs of flhA and flhB were cut from pBBflhAw and pBBflhBw with KpnI and HindIII and then subcloned into the broad-host-range expression vector pBBAD22K (68) to obtain complementary plasmids pBBADflhA and pBBADflhB, respectively. Expression of the cloned genes was under the control of an arabinose-inducible promoter. An EcoRI/HindIII fragment of 548 bp containing the entire flgM gene and the upstream promoter region was cut from pBBflgM and subcloned into a broad-host-range vector pRK415 (31) to form pRKflgM.
Antibody preparation and Western blotting. For antibody preparation, His-tagged antigen proteins were overexpressed from pET30b (Novagen, Madison, WI)-derived plasmids in E. coli strain BL21(DE3) after 4 h of induction with 0.4 mM IPTG (isopropyl-β-D-thiogalactopyranoside). The proteins were purified on an Ni-nitrilotriacetic acid resin column (Pharmacia), and ca. 1 mg of each protein was used for four injections to immunize a rabbit or five mice at intervals of 1 week. Overexpression plasmids were cloned as described below.
(i) fliA. The entire CDS (765 bp) of fliA was amplified by PCR with primers fliAw-F/-R and cloned into pBB to obtain pBBfliAw. The CDS region was then subcloned into the NdeI/XhoI sites of pET30b to generate pETfliA.
(ii) fliC. The entire CDS of fliC in pBBfliCw was subcloned into the NdeI/NotI sites of pET30b to generate pETfliC.
(iii) rpoN2. The entire CDS (1,401 bp) of rpoN2 was amplified by PCR with primers rpoN2w-F/-R and cloned into pBB to obtain pBBrpoN2w. The CDS region was subcloned into the NdeI/XhoI sites of pET30b to generate pETrpoN2.
(iv) Western blotting. Unless otherwise specified, 10 µg of crude extract prepared from test strains was separated on a sodium dodecyl sulfate (SDS)-12% polyacrylamide gel and transferred to a polyvinylidene difluoride membrane (Perkin-Elmer Inc.). After hybridization with the specific polyclonal antisera and alkaline phosphatase-conjugated goat anti-rabbit antibodies (or alkaline phosphatase-conjugated anti-mouse antibodies), membranes were developed with appropriate substrates (Zymed Laboratories Inc.).
Determination of promoter activity. The upstream promoter-containing regions of the fliC gene were PCR amplified with primers fliCp-F/R and cloned into pFY13-9, a promoter-probing vector using promoterless lacZ as the reporter (36), to form transcriptional fusion constructs. Promoter activity was monitored by measuring the β-galactosidase activities of the flagellar promoter-lacZ fusion constructs in the different strains as previously described (27).
Motility assay. Motility assays were carried out by inoculating 3 µl (ca. 105 CFU) of mid-log-phase cultures onto the surfaces of a freshly prepared semisolid XOL medium (19) containing 0.3% agar. The subsurface distribution of bacteria, an indication of movement, was observed at 48 h postinoculation.
TEM. Bacteria were grown in LB medium without agitation to avoid breakage of flagella. Cells were harvested by centrifugation at 4,000 x g for 5 min at 4°C. The cells were washed twice and resuspended in cold deionized water, which was then deposited onto grids coated with Formva (Standard Technology). The grids with the cells were floated on a drop of 2% uranyl acetate for 30 s for staining. After air drying for 15 min, transmission electron microscopy (TEM) characterization was performed in a JEOL JEM-1200CXII electron microscope.
Pathogenicity tests. Pathogenicity tests were carried out by inoculating the X. campestris pv. campestris cells from overnight cultures onto leaves, which had been cut with a pair of scissors, of 6-week-old potted cabbage plants (77). Statistical results for 15 rounds of independent inoculation experiments are presented.
Yeast two-hybrid assay. Protein-protein interaction assay was performed by using the Matchmaker III yeast two-hybrid system (Clontech) with a 312-bp fragment of flgM CDS (amplified with primers flgM_YA-F/-R) cloned into the NdeI/BamHI sites of pACT2 to form pACTflgM and a 768-bp fragment of fliA CDS (amplified with primers fliA_YB-F/-R) cloned into the NdeI/BamHI sites of pAS2-1 to form pAS2-fliA. The recombinant and parental plasmids were transformed into yeast strain Y187. Cotransformants were selected on a synthetic complete dropout medium (SD/–Trp/–Leu). Protein interaction was detected by β-galactosidase activity using the colony lift filter approach as described in the Clontech manual.
EPS assay. Cells of X. campestris pv. campestris were grown in LB or XOLN medium (20) (40 ml in 250-ml flasks) for 72 h. The cells were removed by centrifugation (12,000 x g for 15 min at 4°C), and the exopolysaccharide (EPS) in the culture supernatants was precipitated in the presence of 0.5 M NaCl and 70% ethanol. The amounts of EPS were determined by the anthrone method as described previously (38).
Plate assays for extracellular hydrolytic enzymes. The ability of the X. campestris pv. campestris strains to secrete extracellular enzymes was tested on LB plates containing skim milk (1%), starch (0.2%), polygalacturonic acid (PGA) (1%), or carboxymethylcellulose (0.5%). The cells (ca. 1x 107 CFU in 10 µl) were deposited on the surface of the plates. After 48 h of incubation, the plates were examined either by direct visualization or by being treated with appropriate reagents. Protease activity was judged by the appearance of clear zones surrounding the colonies on milk plates. In amylase assays, starch plates were stained with iodine (5% in ethanol). PGA plates were developed with 1% hexadecyl-trimethyl-ammonium bromide. The region exhausted of PGA by secreted pectinase displayed a clear zone. Carboxymethylcellulose plates were stained with 0.1% Congo red for 5 min, rinsed once with water, and washed twice with 20 ml of 1.0 M NaCl. Cellulase-positive colonies manifested pale-yellow clear zones against a red background.
Bioinformatic analysis. The FliA-dependent promoters in X. campestris pv. campestris were predicted using the tools in RSAT (http://rsat.scmbb.ulb.ac.be/rsat/). A weight matrix was generated based on 25 published FliA-dependent promoter sequences (see Table S1 in the supplemental material). A genome-scale Patser search on X. campestris pv. campestris strain ATCC 33913 was performed using the FliA matrix (see Table S2 in the supplemental material), and the 21 best-hit sequences were selected (see Table S3 in the supplemental material).
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FIG. 1. Swimming motility assay of Xc17 and Xc17-derived mutant strains. WT, wild-type strain Xc17; flhA(c), flhA mutant complemented with pBBADflhA; flhB(c), flhB mutant complemented with pBBADflhB. For each tube, 3 µl (ca. 105 CFU) mid-log phase culture was inoculated onto the surface of freshly prepared semisolid (0.3% agar) XOL medium and observed after 48 h of incubation.
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FIG. 2. TEM of Xc17 and Xc17-derived mutant strains. 1, flhA mutant; 2, flhA mutant complemented with pBBADflhA; 3, flhB mutant; 4, flhB mutant complemented with pBBADflhB; 5, rpoN2 mutant; 7, fliA mutant; 6 and 9, flgM mutant; and 8, Xc17. The cells of Xc17 and complementary strains of flhA and flhB mutants exhibit a long, straight polar flagellum. Mutations in flhA, flhB, rpoN2, and fliA abolish the flagellation. An flgM mutant has a truncated flagellum with an abnormal structure (9).
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Production of FliC protein is suppressed in flhA and flhB mutants. To elucidate the effects of flhA and flhB on the production of flagellin, the flagellin FliC was detected by Western blotting using polyclonal anti-FliC antibodies. A fliC (XCC1941) mutant, XcfliC, was used as a negative control. As shown in Fig. 1B, XcfliC was nonmotile, and it did not have a flagellum (data not shown). The Western blot results showed a band of approximately 40.4 kDa, which corresponded to the FliC protein, in the wild-type strain Xc17 but not in the flhA and flhB mutants (Fig. 3A). Production of FliC protein was restored in XcflhA(c) and XcflhB(c) (Fig. 3A). These results demonstrated that flhA and flhB were required for the synthesis of flagellin FliC.
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FIG. 3. Western blotting, using polyclonal antibodies raised against the flagellin (FliC) (A), 28 (FliA) (B), activator (FleQ) (C), and 54 (RpoN2) (D), of whole-cell extracts from X. campestris pv. campestris wild-type Xc17 and Xc17-derived mutant strains. Lane 1, Xc17; lane 2, flhA mutant; lane 3, flhA mutant complemented with pBBADflhA; lane 4, flhB mutant; lane 5, flhB mutant complemented with pBBADflhB; lane 6, fliC mutant; lane 7, fleQ mutant; lane 8, rpoN2 mutant; lane 9, fliA mutant. The positions of FliC, FliA, FleQ, and RpoN2 are indicated.
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54 were identified in the genome of X. campestris pv. campestris ATCC 33913. To distinguish these two genes, rpoN (XCC2802), located in a conserved region in most bacteria, was named rpoN1 and the other was named rpoN2 (XCC1935). Genes encoding the
28 factor (fliA, XCC1906) and the anti-
28 factor (flgM, XCC1955), as well as rpoN2, were located in a large flagellar gene cluster (27).
To elucidate the function of these genes in flagellation, rpoN2, fliA, and flgM mutants were constructed by insertional mutagenesis. Motility assay revealed that rpoN2 and fliA mutants were nonmotile on soft-agar medium (Fig. 1B). Electron micrographs revealed that rpoN2 and fliA mutants did not have any flagellum present (Fig. 2). A mutation of flgM severely reduced motility (Fig. 1B). TEM observation demonstrated that XcflgM had a short, immature flagellum (Fig. 2). Upon further investigation, we noticed that a normal flagellum had a smooth, long whip-like structure, while in XcflgM, the flagellum was short with an abnormal structural appearance (Fig. 2). These observations suggested that the two sigma factors,
54 and
28, were necessary for flagellar biogenesis and motility. The anti-sigma factor FlgM was essential for normal flagellar structure formation and full motility.
Synthesis of FliC is regulated by a cascade of three sigma factors: RpoD, RpoN2, and FliA. To elucidate the hierarchy of regulation between RpoN2/FleQ and FliA, Western blotting was carried out using antibodies raised against FliA, RpoN2, FleQ, and FliC. FliC protein was absent in fliA, fleQ, and rpoN2 mutants (Fig. 3A). Consequently, FliA, FleQ, and RpoN2 were necessary for the production of FliC. A 28-kDa FliA protein could be detected in the total cell lysates of Xc17 and the fliC mutant XcfliC but was undetectable in the fliA, fleQ, and rpoN2 mutants (Fig. 3B). Therefore, RpoN2 and FleQ were required for the production of FliA. A 51.2-kDa RpoN2 protein and a 54.4 kDa FleQ protein were detected in the cell lysates of Xc17, XcfliC, and XcfliA, while they were absent in the respective mutants (Fig. 3C and D). This suggested that the regulation of the synthesis of both FleQ and RpoN2 was independent of FleQ, RpoN2, FliA, and FliC.
Results from a series of lacZ transcriptional fusion experiments indicated that the upstream regions of fliA and fleN did not have promoter activity (data not shown). Hence, the expression of fliA, fleN, and flhF was dependent on the promoter region upstream of flhF. The transcription levels of fliC and fliA were monitored by β-galactosidase activity of promoter-lacZ fusion constructs pFYfliC and pFYflhF (27) in Xc17 and flagellar mutants at 3-h intervals from an initial optical density at 550 nm of 0.35 (Table 3). The data demonstrated that the expression of fliC in rpoN2, fleQ, and fliA mutants was reduced to 28 to 33, 27 to 30, and 48 to 64%, respectively, of that in Xc17. The promoter activity of the upstream region of flhF decreased to 6 to 14 and 24 to 27% in rpoN2 and fleQ mutants, respectively, but increased to 140 to 150% in a fliA mutant (Table 3). These results suggested that RpoN2, FleQ, and FliA were required for the transcription of fliC. Moreover, the transcription of the flhF promoter was dependent on RpoN2/FleQ and was moderately autoregulated by FliA.
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TABLE 3. β-Galactosidase activities of the fliC promoter-lacZ and flhF promoter-lacZ fusions in Xc17 and flagellar mutants
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The Western blot data also showed that expression of RpoN2 and FleQ was not significantly affected by the mutation of flhA or flhB (Fig. 3C and D). FliA production was slightly decreased in the flhA mutant and significantly reduced in the flhB mutant (Fig. 3B). The defect in expression was rescued after complementation in trans by plasmid-borne flhA and flhB genes, respectively (Fig. 3B). This indicated that flhB was involved not only in the regulation of class III genes but also in that of class II genes.
The anti-sigma factor FlgM negatively regulates the production of FliC via an interaction with FliA. To detect the expression of FliC in XcflgM, different amounts of cell lysate of XcflgM were prepared, separated on an SDS-polyacrylamide gel (Fig. 4B), and then immunoblotted with anti-FliC antiserum (Fig. 4A). The blotting results showed that the FliC protein was overproduced about fivefold in an flgM mutant in comparison with Xc17 (Fig. 4A). The promoter activity of fliC was enhanced to 223 to 266% in XcflgM compared to the parental strain (Table 3), indicating the expression of fliC was negatively regulated by FlgM at the transcriptional level. The quantity of FliA did not change significantly in XcflgM (Fig. 4C), even though the transcription level of the flhF promoter underwent a 25% decrease at the late log phase, compared to Xc17 (Table 3).
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FIG. 4. (B) Different amounts of whole-cell extracts were separated on an SDS-polyacrylamide gel. Lane 1, 10 µg Xc17; lane 2, 2 µg flgM mutant; lane 3, 8 µg flgM mutant. (A) This was followed by Western blotting with polyclonal antibodies raised against the flagellin (FliC). (C) Western blotting, using polyclonal antibodies against 28 (FliA), of the cell extract. Lane 1, Xc17; lane 2, flgM mutant; lane 3, flgM mutant complemented with pRKflgM.
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FIG. 5. Colony filter lift assay to identify the specificity of interaction between FliA and FlgM. S. cerevisiae Y187 carrying recombinant plasmids pAS2-fliA and pACT-flgM (sector A) and parental plasmids pAS2-1 and pACT2 (sector B) were grown on yeast synthetic dropout medium (–Trp/–Leu) and transferred to a Whatman no. 5 paper filter. Cells were permeabilized by freeze-thaw treatment of the filters. The filters carrying the cells were then placed over filters presoaked with Z-buffer-X-Gal (5-bromo-4-chloro-3-indolyl-β-D-galactopyranoside) solution. A blue color revealed within 30 min was considered positive. Assays were repeated three times with at least four independent transformants.
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TABLE 4. Activities of extracellular enzymes and production of EPS in the flhA and flhB mutants, their complementary strains, and Xc17
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70,
54, and
28, respectively, as commonly seen in vibrios and pseudomonads (14, 60). Nevertheless, two-tier RpoN-cognate activators, FlrA/FleQ and FlrBC/FleSR, are involved in flagellar gene expression in vibrios/pseudomonads (14, 60), whereas in X. campestris pv. campestris, FleQ appears to be the sole RpoN regulator involved in the flagellation (26). A similar model has been reported for Helicobacter pylori, except that only the FleSR-type regulator was identified (29, 57). A proposed model of the flagellar regulation pathway in X. campestris pv. campestris is illustrated in Fig. 6.
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FIG. 6. Model of the flagellar transcriptional cascade in X. campestris pv. campestris. Flagellar genes can be placed in three temporal classes according to the type of promoter recognized by the different sigma factors. Class I proteins RpoN2 ( 54) and the cognate activator FleQ are the master regulator directing the expression of class II genes. Early FlgM transcribed from a class I promoter inhibits class II sigma factor FliA until completion of the production of class II proteins and assembly of the F-T3SS-basal body-hook structure. Late (class III) genes belong to the FliA ( 28) regulons. Flagellar filament, cap proteins, and motility regulatory proteins are identified. Late FlgM acts as a final brake to the whole process. The promoter consensus based on the type II and type III flagellar genes of X. campestris pv. campestris is indicated at the top.
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54 factor, is widely present in the microbial genome. RpoN is involved not only in nitrogen assimilation but also in many unrelated functions, such as utilization of carbon sources, nitrogen fixation, motility, alginate biosynthesis, and virulence, in different species (45, 61, 67). Most bacteria have only one rpoN gene, yet exceptions have been found in some nitrogen fixation bacteria and plant pathogens. The functions of the rpoN homologs in the same genome could be redundant or irrelevant (34, 46, 59). An allelic-exchange mutation in rpoN2 totally abolishes flagellar biogenesis and motility. This suggests that the two rpoN genes in X. campestris pv. campestris work independently. Further study is necessary to determine the mechanism of the specificity of the two RpoN proteins. Our previous data have characterized five RpoN/FleQ-dependent promoters encoding three types of proteins (Fig. 6): (i) regulators (FliA, FlhF, and FleN); (ii) secretion system (fliEFGHIJK, fliLMNOP, and fliQR); and (iii) rod and hook (flgBCDEF and flgGHIJKL). In Pseudomonas aeruginosa, FlhF and FleN play a role in the early stage of flagellation by regulating the localization and number of flagella (15, 55). A putative RpoN-dependent GG-N10-GC promoter (aGGaacaccacttGCa) is identified upstream of flhBA, indicating that it may also belong to the class II genes (Fig. 6).
Late flagellar genes and some motility/chemotaxis and c-di-GMP-signaling-related genes belong to the FliA regulons.
FliA is a
70 family protein that recognizes a –35/–10-type promoter sequence. Twenty-one putative
28-dependent genes are predicted in this work (see Table S3 in the supplemental material). Most are highly related to the late stage of flagellar biogenesis (such as flgM, fliC, and fliD) and to motility/chemotaxis (including XCC3653, XCC1891, XCC1727, XCC1870, XCC1871, XCC1883, XCC2315, and XCC3522). The most interesting finding is that five GGDEF domain-containing proteins (XCC0407, XCC1443, XCC1777, XCC3519, and XCC3546) and one HD-GYP domain-containing protein (XCC0350) are likely regulated by FliA. Both the GGDEF and HD-GYP domains are related to the synthesis and breakdown of an important bacterial intracellular secondary messenger, 3',5'-cyclic diguanylic acid (c-di-GMP) (4, 62, 63). Recently, c-di-GMP has been shown to be involved in EPS production, biofilm formation, quorum sensing, virulence, and flagellar mobility (6, 37, 56, 75). c-di-GMP may be involved in the sigma factor regulatory pathways. In a pathogenic E. coli strain, FliA regulates adhesion and invasion via a c-di-GMP-dependent pathway (11). c-di-GMP is also involved in the signaling pathway of the
S network (73). In the X. campestris pv. campestris genome, 29 proteins with a GGDEF motif and three proteins containing an HD-GYP domain have been identified, and, more importantly, some are involved in motility (64). More experiments are required to evaluate whether the expression of c-di-GMP-related genes is FliA dependent and to elucidate its roles in flagellar biogenesis and motility.
F-T3SS structural proteins FlhB and FlhA are required for the production of FliA and for virulence.
FlhA and FlhB are two F-T3SS structural proteins. It is not surprising that the defect in F-T3SS formation results in an accumulation of FlgM and represses expression from a FliA-dependent promoter. The dramatic decrease of FliA protein in an flhB mutant suggests that FlhB might play a role in the expression and/or the stability of FliA. The effect of FlhA (and FlhB) on class one or two promoters has been reported for some bacteria. In Proteus mirabilis, an flhA mutant expresses 10-fold-lower levels of flhCD (class 2) transcripts (20). In H. pylori, FlhA acts as a master regulator and positively regulates transcription in the RpoN (class 2) and FliA (class 3) regulons (57). In Campylobacter jejuni, mutation in either flhA or flhB reduces the transcription from
54-dependent flagellar genes (26).
Two classes of T3SS have been identified in gram-negative bacteria (13, 22). Besides F-T3SS, the nonflagellar T3SS (NF-T3SS) is involved in the delivery of protein effectors across eukaryotic cytoplasm to promote pathogenesis (12, 42). F- and NF-T3SS share many structural and functional features, and nine components of these two classes are homologous in sequence (13, 70). Furthermore, functional coordination between F- and NF-T3SS has been reported for some species. In Yersinia enterocolitica, the virulence-associated phospholipase YpIA can be secreted via F- and NF-T3SS (79, 80). In C. jejuni, FlhA coordinately regulates the bacterial motility and virulence (9, 30), and many virulence factors are secreted via F-T3SS (24). In Bacillus thuringiensis, an flhA mutation results in a defect in flagellar biogenesis, motility, virulence factors secretion, and cytotoxicity (7, 21). Our work demonstrated that the flhA mutant has an attenuated virulence, but the production of extracellular enzymes and EPS is not influenced. FlhA is highly homologous (30%) to HrcV (XCC1229), a protein of NF-T3SS. Since the nonmotile strain XcflhB exhibits a normal infection rate, F-T3SS and motility of X. campestris pv. campestris are not necessary for pathogenesis. Thus, further experiments will be necessary to determine whether FlhA participates in pathogenicity via NF-T3SS.
This study was supported by grants NSC 96- and 97-2317-B-468-001 from the National Science Council, Republic of China, to R.-M.H.
Published ahead of print on 9 January 2009. ![]()
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