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Journal of Bacteriology, April 2006, p. 3126-3129, Vol. 188, No. 8
0021-9193/06/$08.00+0 doi:10.1128/JB.188.8.3126-3129.2006
Copyright © 2006, American Society for Microbiology. All Rights Reserved.
An Allele of gyrA Prevents Salmonella enterica Serovar Typhimurium from Using Succinate as a Carbon Source
George E. Schmitz and
Diana M. Downs*
Department of Bacteriology, University of WisconsinMadison, Madison, Wisconsin 53706
Received 13 January 2006/
Accepted 3 February 2006

ABSTRACT
A mutant
gyrA allele resulting in an A271E substitution in the
DNA gyrase protein generated a strain unable to grow on the
C
4-dicarboxylates succinate, malate, and fumarate. Bacteria
harboring
gyrA751 displayed decreased negative supercoiling
in cells. Expression of the
dctA gene, which encodes the C
4-dicarboxylate
transporter, was reduced in a
gyrA751 mutant, providing the
first evidence that
dctA expression is supercoiling sensitive
and uncovering a simple metabolic screen for lesions in gyrase
that reduce negative supercoiling.

TEXT
DNA supercoiling is implicated in genome dynamics affecting
processes such as DNA replication, gene expression, and phage
genome integration (
4,
20). DNA gyrase, an ATP-dependent enzyme
encoded by the essential genes
gyrA and
gyrB, is the only known
bacterial topoisomerase that introduces negative supercoils
(
13). Perturbing DNA gyrase via mutations or antibiotics results
in reduced growth rates and altered gene expression and can
lead to cell death as a result of aberrant DNA supercoiling
(
15,
27,
28). Many studies on
gyrA have identified mutant alleles
that confer resistance to specific antibiotics but few alleles
with easily screened metabolic phenotypes. This work reports
the identification of an allele of
gyrA in
Salmonella enterica serovar Typhimurium that results in a mutant gyrase (A271E)
and generates a strong metabolic phenotype. Strains carrying
the mutant gyrase (A271E) are defective in C
4-dicarboxylate
transport mediated by DctA. The
dctA gene encodes the aerobically
expressed transporter for succinate, malate, and fumarate and
is catabolite (cyclic AMP receptor protein) and anaerobically
(ArcA) repressed (
9). This is the first report of the strong
influence of DNA supercoiling on
dctA expression sufficient
to generate a clear metabolic defect and provides a means to
identify mutant strains with decreased negative supercoiling.
An allele of gyrA prevents growth on succinate, malate, and fumarate.
In the course of other work, a mutant strain unable to utilize succinate (Fig. 1) as a sole carbon source for growth was isolated following mutagenesis by diethyl sulfate (11). Representative growth data are shown in Fig. 1. An otherwise wild-type strain carrying the causative lesion (gyrA751, as described below) was surveyed for growth on a variety of carbon sources. Nearly wild-type growth of the mutant strain was observed on the majority of carbon sources tested, including glucose, gluconate, galactose, glycerol, fructose, mannitol, acetate, and citrate (data not shown). However, similar to succinate, neither malate nor fumarate supported growth at 30, 37, or 42°C. The ability to use other specific tricarboxylic acid cycle intermediates (e.g., citrate and acetate) indicated that the causative lesion was not in a tricarboxylic acid cycle enzyme.
A Tn
10d(Tc) insertion mutation linked by P22 to the causative
mutation was identified with standard techniques (
18). In a
transductional cross using a donor pool of Tn
10d(Tc) insertions,
36 of 18,000 Tc
r transductants had gained the ability to grow
on succinate. The linkage of these insertions to the causative
mutation was determined. The location of one insertion [
rcsC71::Tn
10d(Tc)],
subsequently shown to be 56% linked to the succinate-negative
phenotype, was identified by degenerate sequencing (
5). A genetic
map of the region surrounding
rcsC is shown in Fig.
2A. When
used as donors in transduction crosses, strains with insertions
in
rcsB,
yojN,
apbE,
ompC, STM2273, STM2274, or STM2275 generated
two phenotypic classes (Suc
+ and Suc
) when the succinate-negative
mutant was the recipient. Since sequence analyses determined
that the relevant insertions were located internal to open reading
frames (ORFs), they were assumed to eliminate gene function.
Because these insertions neither eliminated nor caused the succinate-negative
phenotype, it was concluded that the causative mutation was
not an allele of the eight genes mentioned above.
Because of its location in the relevant region, the
gyrA gene
was PCR amplified and sequenced from strains isogenic for the
causative lesion (i.e., phenotypically Suc
+ or Suc
).
Compared to the wild-type sequence, the mutant strain carried
a C-to-A transversion at nucleotide 811 of the
gyrA gene. This
mutation resulted in the substitution of a glutamic acid for
an alanine at residue 271 (A271E) in the gyrase protein. This
residue is conserved in 26/41 gyrase homologs from diverse bacteria
analyzed by standard BLAST analyses (
1).
The A271E form of gyrase results in reduced negative supercoiling but not quinolone resistance.
The majority of alleles of gyrA that have been described were identified because they resulted in resistance to the quinolone class of antibiotics, such as nalidixic acid and oxolinic acid, though a few gyrA alleles (hisW) were isolated as regulatory mutants of the his operon (2, 26). Numerous mutations in gyrA resulting in quinolone resistance have been sequenced, and a well-described quinolone resistance-determining region spans residues 51 to 106 (12, 29). Residue 271 does not fall in this region (Fig. 2B), so the demonstration that the gyrA751 allele did not affect sensitivity to nalidixic acid or oxolinic acid was not surprising (data not shown). In fact, residue 271 is in a region of the gyrase protein where no previous mutations have been reported.
The expression of a number of genes is affected by supercoiling, and therefore, aberrant expression of these genes occurs when DNA supercoiling has been altered by a gyr mutation(s) or by addition of various drugs, in particular quinolones and coumarins (15, 28). Transcriptional fusions in a number of genes (hisD9953::MudJ, trp-3615::MudJ, and ilvD2654::MudJ) were moved by P22 transduction into strains with and without the gyrA751 allele. The resulting pairs of strains were assayed for ß-galactosidase activity, and the results are shown in Table 1. The gyrA751 mutation increased expression of the his operon fourfold under repressing conditions (e.g., Luria broth) and prevented the normal sevenfold derepression of the ilv operon under inducing conditions (defined medium with limiting, branched-chain amino acids). Conversely, no effect on expression of the trp operon was observed under growth conditions expected to either induce or repress the operon. Deregulation of the his and ilv operons, but not the trp operon, has been reported for cells with reduced negative supercoiling (e.g., the hisW class of alleles) (8, 10, 27). As predicted from the derepression of the his operon, strain DM8306 (gyrA751) formed wrinkled colonies on medium with 2% glucose and was resistant to the histidine analog amino triazole (22, 27). Both of these phenotypes are reported for hisW and hisU (alleles of gyrB that result in similar consequences) alleles (27). Together, these results suggest that the A271E substitution in GyrA, similar to the hisW allele class, decreases negative supercoiling and that the decreased supercoiling alters the transcription of the expected loci.
The gyrA751 mutant strain is deficient in extrachromosomal DNA maintenance and supercoiling.
Plasmid DNA (pSU19) (
3) was isolated with a commercial product
(Promega, Madison, WI) from 10
9 CFU of strains isogenic for
the
gyrA751 or
gyrA+ alleles. The yield of plasmid DNA was consistently
lower from the
gyrA751 mutant than from the wild-type strain
(1.1 ± 0.32 versus 5.1 ± 0.75 µg, respectively),
though both strains were grown in the same medium. The plasmid
DNA isolated from a
gyrA751 mutant was transformed into a wild-type
strain. Subsequent isolation of the plasmid DNA confirmed that
the plasmid had reestablished itself to wild-type levels, indicating
that the
gyrA751 mutant inefficiently maintained episomal DNA.
Although it was formally possible that the
gyrA751 mutant was
unable to maintain only pSU19, a similar result was obtained
when pBR322 was isolated from isogenic strains. Since plasmids
pSU19 and pBR322 have different origins of replication, it was
concluded that the
gyrA751 mutant was in general unable to efficiently
maintain plasmids. In a different study, gyrase inhibitors such
as novobiocin were shown to promote plasmid curing, implicating
a role for supercoiling in plasmid maintenance, which would
be consistent with the interpretation of the data above (
14).
To measure directly the extent of plasmid supercoiling, the
pSU19 topoisomers were separated by electrophoresis in a 1%
agarose gel containing chloroquine (Fig.
3). The topoisomer
mobility of plasmid DNA isolated from the
gyrA751 mutant was
visibly decreased, confirming that the
gyrA751 mutant strain
maintained a lower level of DNA supercoiling.
Decreased dctA expression is responsible for the succinate-negative phenotype of gyrA751.
Since the
gyrA751 allele caused multiple transcriptional changes,
it was hypothesized that the inability of the
gyrA751 mutant
to grow on C
4-dicarboxylates was due to reduced expression of
a gene(s) required for C
4-dicarboxylate utilization. Similar
to the
gyrA751 mutant, strains lacking
dctA are unable to grow
with malate, fumarate, or succinate as a carbon source (
17).
DctA is an inner membrane permease responsible for transporting
these three dicarboxylic acids during aerobic growth conditions
(
19,
25). To determine whether the growth behavior of a
gyrA751 mutant was consistent with a reduction in DctA activity, transport
assays were performed. Cells were harvested from media containing
24 mM glycerol (as a carbon source) and 16 mM succinate (to
induce transport), and the rates of [2,3-
14C]succinic acid transport
in a pair of strains isogenic for the
gyrA+ or
gyrA751 allele
are shown in Fig.
4. The rate of succinate uptake by the
gyrA751 mutant was significantly lower than that of the wild-type strain
and in fact was not significantly higher than that of a
dctA mutant. That the
gyrA751 mutant was strongly deficient in DctA
activity was consistent with the succinate-negative growth phenotype.
To determine whether the transcriptional expression of the
dctA gene was reduced in a
gyrA751 mutant background, a
lacZ operon
fusion (MudJ) in
dctA was isolated from a pool of random MudJ
insertions. The
dctA81::MudJ insertion was transduced into strains
with or without the
gyrA751 mutation, and the resulting strains
were assayed for ß-galactosidase activity. Expression
of
dctA was twofold lower in the
gyr mutant than in the wild-type
strain (163 ± 5 versus 358 ± 22 Miller units,
respectively), indicating that the
dctA promoter is sensitive
to supercoiling. The relatively small effect on transcription
was surprising given the large effect of the
gyrA751 mutation
on both the phenotype and DctA-dependent transport. It had previously
been noted that inactivation of
dctA with a
lacZ fusion caused
constitutive expression of
dctA and suggested that DctA might
be autoregulatory (
9), thus complicating the interpretation
of the fusion data. Total cellular RNA was isolated (RNeasy;
QIAGEN) from
gyrA751 or
gyrA+ isogenic strains cultured in 24
mM glycerol, 16 mM fumarate in mid-logarithmic phase, and reverse
transcription-PCR was performed as previously described (
7).
The levels of
dctA mRNA were determined in at least two isolates
of isogenic strains and were normalized to
trp mRNA levels as
a control. The amount of
dctA mRNA was 13-fold lower in the
gyrA751 strain than in the wild-type strain (2,896 ±
4,007 versus 38,298 ± 2,922 arbitrary units, respectively),
demonstrating that
dctA expression is strongly regulated by
the extent of DNA supercoiling.
Conclusion.
The data herein identify dctA as a locus whose transcription is sensitive to levels of DNA supercoiling. Further, a temperature-insensitive allele of the essential gyrA gene that decreased supercoiling yet did not influence the sensitivity of the strain to growth inhibition by quinolones was identified. Visualization of the relevant A271 residue in the crystal structure of the breakage-reunion domain of GyrA (GyrA59) (21) reveals that this residue is in the
11 helix that is proximal to, but not in, the quinolone resistance-determining region and catalytic tyrosine region. To the best of our knowledge, no mutations in the
11 helix have been reported, and the importance of the
11 helix for protein function remains to be determined biochemically. The proximity of the
11 helix to the catalytic site might suggest that the A271 residue has a role in DNA recognition or catalysis. This work has identified a simple metabolic screen (the inability to grow on succinate) for the isolation of gyrA alleles and other genes that result in reduced supercoiling.

ACKNOWLEDGMENTS
This work was supported by competitive grant GM47296 from the
NIH and an S. C. Johnson Distinguished Fellowship. Funds were
also provided by a 21st Century Scientists Scholars Award from
the J. M. McDonnell fund to D.M.D. G. Schmitz was supported
as a trainee by a Molecular Biosciences Training Grant from
the NIH (GM07215).
We acknowledge the assistance of Inna Larsen in the preparation of the manuscript and thank Heidi Goodrich-Blair and Kimberly Cowles for use of their quantitative PCR thermocycler and expertise in performing the reverse transcription-PCR experiment.

FOOTNOTES
* Corresponding author. Mailing address: Department of Bacteriology, University of WisconsinMadison, 420 Henry Mall, Rm. 120, Madison, WI 53706. Phone: (608) 265-4630. Fax: (608) 890-0785. E-mail:
downs{at}bact.wisc.edu.


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Journal of Bacteriology, April 2006, p. 3126-3129, Vol. 188, No. 8
0021-9193/06/$08.00+0 doi:10.1128/JB.188.8.3126-3129.2006
Copyright © 2006, American Society for Microbiology. All Rights Reserved.
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