Note to users. If you're seeing this message, it means that your browser cannot find this page's style/presentation instructions -- or possibly that you are using a browser that does not support current Web standards. Find out more about why this message is appearing, and what you can do to make your experience of our site the best it can be.

Site Tools

  • AAAS
  • Subscribe
  • Feedback

Site Search

Search Advanced

Science 31 March 2000:
Vol. 287. no. 5462, pp. 2492 - 2493
DOI: 10.1126/science.287.5462.2492

Reports

Similar Requirements of a Plant Symbiont and a Mammalian Pathogen for Prolonged Intracellular Survival

K. LeVier, 1 R. W. Phillips, 2 V. K. Grippe, 2 R. M. Roop , II, 2 G. C. Walker 1*

Brucella abortus, a mammalian pathogen, and Rhizobium meliloti, a phylogenetically related plant symbiont, establish chronic infections in their respective hosts. Here a highly conserved B. abortus homolog of the R. meliloti bacA gene, which encodes a putative cytoplasmic membrane transport protein required for symbiosis, was identified. An isogenic B. abortus bacA mutant exhibited decreased survival in macrophages and greatly accelerated clearance from experimentally infected mice compared to the virulent parental strain. Thus, the bacA gene product is critical for the maintenance of two very diverse host-bacterial relationships.

1 Department of Biology, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
2 Department of Microbiology and Immunology, Louisiana State University Health Sciences Center, Shreveport, LA 71130, USA.
*   To whom correspondence should be addressed. E-mail: gwalker{at}mit.edu


Read the Full Text


THIS ARTICLE HAS BEEN CITED BY OTHER ARTICLES:
The Sinorhizobium meliloti LpxXL and AcpXL Proteins Play Important Roles in Bacteroid Development within Alfalfa.
A. F. Haag, S. Wehmeier, S. Beck, V. L. Marlow, V. Fletcher, E. K. James, and G. P. Ferguson (2009)
J. Bacteriol. 191, 4681-4686
   Abstract »    Full Text »    PDF »
Essential Role for the BacA Protein in the Uptake of a Truncated Eukaryotic Peptide in Sinorhizobium meliloti.
V. L. Marlow, A. F. Haag, H. Kobayashi, V. Fletcher, M. Scocchi, G. C. Walker, and G. P. Ferguson (2009)
J. Bacteriol. 191, 1519-1527
   Abstract »    Full Text »    PDF »
Delayed maturation of nodules reduces symbiotic effectiveness of the Lotus japonicus-Rhizobium sp. NGR234 interaction.
O. Schumpp, M. Crevecoeur, W. J. Broughton, and W. J. Deakin (2009)
J. Exp. Bot. 60, 581-590
   Abstract »    Full Text »    PDF »
BacA, an ABC Transporter Involved in Maintenance of Chronic Murine Infections with Mycobacterium tuberculosis.
P. Domenech, H. Kobayashi, K. LeVier, G. C. Walker, and C. E. Barry III (2009)
J. Bacteriol. 191, 477-485
   Abstract »    Full Text »    PDF »
Osmoregulated periplasmic glucans of Salmonella enterica serovar Typhimurium are required for optimal virulence in mice.
A. A. Bhagwat, W. Jun, L. Liu, P. Kannan, M. Dharne, B. Pheh, B. D. Tall, M. H. Kothary, K. C. Gross, S. Angle, et al. (2009)
Microbiology 155, 229-237
   Abstract »    Full Text »    PDF »
Putative Quorum-Sensing Regulator BlxR of Brucella melitensis Regulates Virulence Factors Including the Type IV Secretion System and Flagella.
A. A. Rambow-Larsen, G. Rajashekara, E. Petersen, and G. Splitter (2008)
J. Bacteriol. 190, 3274-3282
   Abstract »    Full Text »    PDF »
The Sinorhizobium meliloti MsbA2 protein is essential for the legume symbiosis.
S. Beck, V. L. Marlow, K. Woodall, W. T. Doerrler, E. K. James, and G. P. Ferguson (2008)
Microbiology 154, 1258-1270
   Abstract »    Full Text »    PDF »
A Combination of sbmA and tolC Mutations in Escherichia coli K-12 Tn10-Carrying Strains Results in Hypersusceptibility to Tetracycline.
R. E. de Cristobal, P. A. Vincent, and R. A. Salomon (2008)
J. Bacteriol. 190, 1491-1494
   Abstract »    Full Text »    PDF »
The Type IV Secretion System of Sinorhizobium meliloti Strain 1021 Is Required for Conjugation but Not for Intracellular Symbiosis.
K. M. Jones, J. Lloret, J. R. Daniele, and G. C. Walker (2007)
J. Bacteriol. 189, 2133-2138
   Abstract »    Full Text »    PDF »
Irr regulates brucebactin and 2,3-dihydroxybenzoic acid biosynthesis, and is implicated in the oxidative stress resistance and intracellular survival of Brucella abortus..
M. Martinez, R. A. Ugalde, and M. Almiron (2006)
Microbiology 152, 2591-2598
   Abstract »    Full Text »    PDF »
Deletion of znuA Virulence Factor Attenuates Brucella abortus and Confers Protection against Wild-Type Challenge.
X. Yang, T. Becker, N. Walters, and D. W. Pascual (2006)
Infect. Immun. 74, 3874-3879
   Abstract »    Full Text »    PDF »
CbrA Is a Stationary-Phase Regulator of Cell Surface Physiology and Legume Symbiosis in Sinorhizobium meliloti..
K. E. Gibson, G. R. Campbell, J. Lloret, and G. C. Walker (2006)
J. Bacteriol. 188, 4508-4521
   Abstract »    Full Text »    PDF »
Flavonoid-Inducible Modifications to Rhamnan O Antigens Are Necessary for Rhizobium sp. Strain NGR234-Legume Symbioses..
W. J. Broughton, M. Hanin, B. Relic, J. Kopcinska, W. Golinowski, S. Simsek, T. Ojanen-Reuhs, B. Reuhs, C. Marie, H. Kobayashi, et al. (2006)
J. Bacteriol. 188, 3654-3663
   Abstract »    Full Text »    PDF »
BacA-Mediated Bleomycin Sensitivity in Sinorhizobium meliloti Is Independent of the Unusual Lipid A Modification..
G. P. Ferguson, A. Jansen, V. L. Marlow, and G. C. Walker (2006)
J. Bacteriol. 188, 3143-3148
   Abstract »    Full Text »    PDF »
The Pea Nodule Environment Restores the Ability of a Rhizobium leguminosarum Lipopolysaccharide acpXL Mutant To Add 27-Hydroxyoctacosanoic Acid to Its Lipid A.
V. Vedam, E. Kannenberg, A. Datta, D. Brown, J. G. Haynes-Gann, D. J. Sherrier, and R. W. Carlson (2006)
J. Bacteriol. 188, 2126-2133
   Abstract »    Full Text »    PDF »
Systematic Targeted Mutagenesis of Brucella melitensis 16M Reveals a Major Role for GntR Regulators in the Control of Virulence.
V. Haine, A. Sinon, F. Van Steen, S. Rousseau, M. Dozot, P. Lestrate, C. Lambert, J.-J. Letesson, and X. De Bolle (2005)
Infect. Immun. 73, 5578-5586
   Abstract »    Full Text »    PDF »
The Lipopolysaccharide of Brucella abortus BvrS/BvrR Mutants Contains Lipid A Modifications and Has Higher Affinity for Bactericidal Cationic Peptides.
L. Manterola, I. Moriyon, E. Moreno, A. Sola-Landa, D. S. Weiss, M. H. J. Koch, J. Howe, K. Brandenburg, and I. Lopez-Goni (2005)
J. Bacteriol. 187, 5631-5639
   Abstract »    Full Text »    PDF »
Two New Sinorhizobium meliloti LysR-Type Transcriptional Regulators Required for Nodulation.
L. Luo, S.-Y. Yao, A. Becker, S. Ruberg, G.-Q. Yu, J.-B. Zhu, and H.-P. Cheng (2005)
J. Bacteriol. 187, 4562-4572
   Abstract »    Full Text »    PDF »
Opsonized Virulent Brucella abortus Replicates within Nonacidic, Endoplasmic Reticulum-Negative, LAMP-1-Positive Phagosomes in Human Monocytes.
B. H Bellaire, R. M. Roop II, and J. A. Cardelli (2005)
Infect. Immun. 73, 3702-3713
   Abstract »    Full Text »    PDF »
Identification of Genes Required for Avian Escherichia coli Septicemia by Signature-Tagged Mutagenesis.
G. Li, C. Laturnus, C. Ewers, and L. H. Wieler (2005)
Infect. Immun. 73, 2818-2827
   Abstract »    Full Text »    PDF »
Non-Traditional Targets of Endocrine Disrupting Chemicals: The Roots of Hormone Signaling.
J. E. Fox (2005)
Integr. Comp. Biol. 45, 179-188
   Abstract »    Full Text »    PDF »
Generation of the Brucella melitensis ORFeome Version 1.1.
A. Dricot, J.-F. Rual, P. Lamesch, N. Bertin, D. Dupuy, T. Hao, C. Lambert, R. Hallez, J.-M. Delroisse, J. Vandenhaute, et al. (2004)
Genome Res. 14, 2201-2206
   Abstract »    Full Text »    PDF »
Intact Purine Biosynthesis Pathways Are Required for Wild-Type Virulence of Brucella abortus 2308 in the BALB/c Mouse Model.
R. B. Alcantara, R. D. A. Read, M. W. Valderas, T. D. Brown, and R. M. Roop II (2004)
Infect. Immun. 72, 4911-4917
   Abstract »    Full Text »    PDF »
Similarity to peroxisomal-membrane protein family reveals that Sinorhizobium and Brucella BacA affect lipid-A fatty acids.
G. P. Ferguson, A. Datta, J. Baumgartner, R. M. Roop II, R. W. Carlson, and G. C. Walker (2004)
PNAS 101, 5012-5017
   Abstract »    Full Text »    PDF »
Molecular Cloning and Characterization of cgt, the Brucella abortus Cyclic {beta}-1,2-Glucan Transporter Gene, and Its Role in Virulence.
M. S. Roset, A. E. Ciocchini, R. A. Ugalde, and N. Inon de Iannino (2004)
Infect. Immun. 72, 2263-2271
   Abstract »    Full Text »    PDF »
Attenuated Signature-Tagged Mutagenesis Mutants of Brucella melitensis Identified during the Acute Phase of Infection in Mice.
P. Lestrate, A. Dricot, R.-M. Delrue, C. Lambert, V. Martinelli, X. De Bolle, J.-J. Letesson, and A. Tibor (2003)
Infect. Immun. 71, 7053-7060
   Abstract »    Full Text »    PDF »
Molecular Host-Pathogen Interaction in Brucellosis: Current Understanding and Future Approaches to Vaccine Development for Mice and Humans.
J. Ko and G. A. Splitter (2003)
Clin. Microbiol. Rev. 16, 65-78
   Abstract »    Full Text »    PDF »
Deficiency of a Sinorhizobium meliloti bacA Mutant in Alfalfa Symbiosis Correlates with Alteration of the Cell Envelope.
G. P. Ferguson, R. M. Roop II, and G. C. Walker (2002)
J. Bacteriol. 184, 5625-5632
   Abstract »    Full Text »    PDF »
Comparative genome analysis of the alpha -proteobacteria: Relationships between plant and animal pathogens and host specificity.
R. M. Tsolis (2002)
PNAS 99, 12503-12505
   Full Text »    PDF »
Diverse Bacteria Are Pathogens of Caenorhabditis elegans.
C. Couillault and J. J. Ewbank (2002)
Infect. Immun. 70, 4705-4707
   Abstract »    Full Text »    PDF »
Chronic intracellular infection of alfalfa nodules by Sinorhizobium meliloti requires correct lipopolysaccharide core.
G. R. O. Campbell, B. L. Reuhs, and G. C. Walker (2002)
PNAS 99, 3938-3943
   Abstract »    Full Text »    PDF »
The Genome of the Natural Genetic Engineer Agrobacterium tumefaciens C58.
D. W. Wood, J. C. Setubal, R. Kaul, D. E. Monks, J. P. Kitajima, V. K. Okura, Y. Zhou, L. Chen, G. E. Wood, N. F. Almeida Jr., et al. (2001)
Science 294, 2317-2323
   Abstract »    Full Text »    PDF »
Genome Sequence of the Plant Pathogen and Biotechnology Agent Agrobacterium tumefaciens C58.
B. Goodner, G. Hinkle, S. Gattung, N. Miller, M. Blanchard, B. Qurollo, B. S. Goldman, Y. Cao, M. Askenazi, C. Halling, et al. (2001)
Science 294, 2323-2328
   Abstract »    Full Text »    PDF »
Brucella abortus Genes Identified following Constitutive Growth and Macrophage Infection.
L. Eskra, A. Canavessi, M. Carey, and G. Splitter (2001)
Infect. Immun. 69, 7736-7742
   Abstract »    Full Text »    PDF »
Genetic Analysis of the Sinorhizobium meliloti BacA Protein: Differential Effects of Mutations on Phenotypes.
K. LeVier and G. C. Walker (2001)
J. Bacteriol. 183, 6444-6453
   Abstract »    Full Text »    PDF »
Brucella abortus Cyclic {beta}-1,2-Glucan Mutants Have Reduced Virulence in Mice and Are Defective in Intracellular Replication in HeLa Cells.
G. Briones, N. Inon de Iannino, M. Roset, A. Vigliocco, P. S. Paulo, and R. A. Ugalde (2001)
Infect. Immun. 69, 4528-4535
   Abstract »    Full Text »    PDF »
Gene Discovery through Genomic Sequencing of Brucella abortus.
D. O. Sanchez, R. O. Zandomeni, S. Cravero, R. E. Verdun, E. Pierrou, P. Faccio, G. Diaz, S. Lanzavecchia, F. Aguero, A. C. C. Frasch, et al. (2001)
Infect. Immun. 69, 865-868
   Abstract »    Full Text »    PDF »
Limited Genetic Diversity of Brucella spp..
B. Gándara, A. L. Merino, M. A. Rogel, and E. Martínez-Romero (2001)
J. Clin. Microbiol. 39, 235-240
   Abstract »    Full Text »
Keys to Symbiotic Harmony.
W. J. Broughton, S. Jabbouri, and X. Perret (2000)
J. Bacteriol. 182, 5641-5652
   Full Text »



To Advertise     Find Products


Science. ISSN 0036-8075 (print), 1095-9203 (online)