J Bacteriol. 1992 June; 174(11): 3684-3694
Regulation and expression of the arsenic resistance operon from Staphylococcus aureus plasmid pI258.
G Ji and
S Silver
Department of Microbiology and Immunology, University of Illinois College of Medicine, Chicago 60680.
ABSTRACT
The arsenic resistance operon from Staphylococcus aureus plasmid pI258 was cloned and sequenced. The DNA sequence contains three genes in the order arsR, arsB, and arsC. The predicted amino acid sequences of the gene products are homologous with those of the products of the ars operons of plasmids pSX267 from Staphylococcus xylosus and R773 from Escherichia coli. The cloned staphylococcal ars operon confers resistances to arsenate, arsenite, and antimonite in S. aureus and Bacillus subtilis. The same operon was also expressed in E. coli and conferred resistance to arsenite but less resistance to arsenate and antimonite. Regulation of the pI258 ars operon was studied by using a translational arsB-blaZ fusion in S. aureus and a transcriptional arsB-luxAB fusion in E. coli. The ars operon was induced by arsenate [As(V)], arsenite [As(III)], and antimonite [Sb(III)], to which the strains were resistant, plus Bi(III) in S. aureus. Only arsenate and arsenite induced the operon in E. coli. Northern (RNA) blot DNA-RNA hybridization analysis showed inducible synthesis of a full-length ars mRNA, about 2.1 kb in size, both in S. aureus and in E. coli. S. aureus ars proteins were expressed in E. coli from the T7 phage promoter under the control of the T7 RNA polymerase. Primer extension (reverse transcriptase) analysis showed that the ars mRNA started at the same position (nucleotides 17 and 18 upstream from the arsR ATG) both in S. aureus and in E. coli. An internal deletion mutation in arsB resulted in decreased resistance to arsenate and total loss of arsenite and antimonite resistances. Partial deletion of 56 bp from the 3' end of the arsC gene resulted in loss of resistance to arsenate; the determinant retained arsenite and antimonite resistances.
J Bacteriol. 1992 June; 174(11): 3684-3694
This article has been cited by other articles:
-
Zhang, Y., Ma, Y.-F., Qi, S.-W., Meng, B., Chaudhry, M. T., Liu, S.-Q., Liu, S.-J.
(2007). Responses to arsenate stress by Comamonas sp. strain CNB-1 at genetic and proteomic levels. Microbiology
153: 3713-3721
[Abstract]
[Full Text]
-
Lehr, C. R., Kashyap, D. R., McDermott, T. R.
(2007). New Insights into Microbial Oxidation of Antimony and Arsenic. Appl. Environ. Microbiol.
73: 2386-2389
[Abstract]
[Full Text]
-
Kobayashi, M., Katoh, H., Ikeuchi, M.
(2006). Mutations in a Putative Chloride Efflux Transporter Gene Suppress the Chloride Requirement of Photosystem II in the Cytochrome c550-deficient Mutant. Plant Cell Physiol
47: 799-804
[Abstract]
[Full Text]
-
Wang, L., Chen, S., Xiao, X., Huang, X., You, D., Zhou, X., Deng, Z.
(2006). arsRBOCT Arsenic Resistance System Encoded by Linear Plasmid pHZ227 in Streptomyces sp. Strain FR-008.. Appl. Environ. Microbiol.
72: 3738-3742
[Abstract]
[Full Text]
-
Ordonez, E., Letek, M., Valbuena, N., Gil, J. A., Mateos, L. M.
(2005). Analysis of Genes Involved in Arsenic Resistance in Corynebacterium glutamicum ATCC 13032. Appl. Environ. Microbiol.
71: 6206-6215
[Abstract]
[Full Text]
-
Parvatiyar, K., Alsabbagh, E. M., Ochsner, U. A., Stegemeyer, M. A., Smulian, A. G., Hwang, S. H., Jackson, C. R., McDermott, T. R., Hassett, D. J.
(2005). Global Analysis of Cellular Factors and Responses Involved in Pseudomonas aeruginosa Resistance to Arsenite. J. Bacteriol.
187: 4853-4864
[Abstract]
[Full Text]
-
Dodge, A. G., Wackett, L. P.
(2005). Metabolism of Bismuth Subsalicylate and Intracellular Accumulation of Bismuth by Fusarium sp. Strain BI. Appl. Environ. Microbiol.
71: 876-882
[Abstract]
[Full Text]
-
Li, R., Haile, J. D., Kennelly, P. J.
(2003). An Arsenate Reductase from Synechocystis sp. Strain PCC 6803 Exhibits a Novel Combination of Catalytic Characteristics. J. Bacteriol.
185: 6780-6789
[Abstract]
[Full Text]
-
Nemeti, B., Gregus, Z.
(2002). Reduction of Arsenate to Arsenite in Hepatic Cytosol. Toxicol Sci
70: 4-12
[Abstract]
[Full Text]
-
Butcher, B. G., Deane, S. M., Rawlings, D. E.
(2000). The Chromosomal Arsenic Resistance Genes of Thiobacillus ferrooxidans Have an Unusual Arrangement and Confer Increased Arsenic and Antimony Resistance to Escherichia coli. Appl. Environ. Microbiol.
66: 1826-1833
[Abstract]
[Full Text]
-
Rensing, C., Ghosh, M., Rosen, B. P.
(1999). Families of Soft-Metal-Ion-Transporting ATPases. J. Bacteriol.
181: 5891-5897
[Full Text]
-
Kurdi-Haidar, B., Heath, D., Aebi, S., Howell, S. B.
(1998). Biochemical Characterization of the Human Arsenite-stimulated ATPase (hASNA-I). J. Biol. Chem.
273: 22173-22176
[Abstract]
[Full Text]
-
Xiong, A., Jayaswal, R. K.
(1998). Molecular Characterization of a Chromosomal Determinant Conferring Resistance to Zinc and Cobalt Ions in Staphylococcus aureus. J. Bacteriol.
180: 4024-4029
[Abstract]
[Full Text]
-
Sato, T., Kobayashi, Y.
(1998). The ars Operon in the skin Element of Bacillus subtilis Confers Resistance to Arsenate and Arsenite. J. Bacteriol.
180: 1655-1661
[Abstract]
[Full Text]
-
Suzuki, K., Wakao, N., Kimura, T., Sakka, K., Ohmiya, K.
(1998). Expression and Regulation of the Arsenic Resistance Operon of Acidiphilium multivorum AIU 301 Plasmid pKW301 in Escherichia coli. Appl. Environ. Microbiol.
64: 411-418
[Abstract]
[Full Text]
-
Kuroda, M., Dey, S., Sanders, O. I., Rosen, B. P.
(1997). Alternate Energy Coupling of ArsB, the Membrane Subunit of the Ars Anion-translocating ATPase. J. Biol. Chem.
272: 326-331
[Abstract]
[Full Text]
-
Shi, W., Dong, J., Scott, R. A., Ksenzenko, M. Y., Rosen, B. P.
(1996). The Role of Arsenic-Thiol Interactions in Metalloregulation of the ars Operon. J. Biol. Chem.
271: 9291-9297
[Abstract]
[Full Text]
-
Xu, C., Shi, W., Rosen, B. P.
(1996). The Chromosomal arsR Gene of Escherichia coli Encodes a trans-acting Metalloregulatory Protein. J. Biol. Chem.
271: 2427-2432
[Abstract]
[Full Text]
Copyright © 1992 by the American Society for Microbiology. All rights reserved.