Previous Article | Next Article 
J Bacteriol. 1993 December; 175(24): 7901-7909
Temperature sensing in Yersinia pestis: translation of the LcrF activator protein is thermally regulated.
N P Hoe and
J D Goguen
Department of Molecular Genetics and Microbiology, University of Masschusetts Medical Center, Worcester 01655.
ABSTRACT
The lcrF gene of Yersinia pestis encodes a transcription activator responsible for inducing expression of several virulence-related proteins in response to temperature. The mechanism of this thermoregulation was investigated. An lcrF clone was found to produce much lower levels of LcrF protein at 26 than at 37 degrees C in Y. pestis, although it was transcribed at similar levels at both temperatures. High-level T7 polymerase-directed transcription of the lcrF gene in Escherichia coli also resulted in temperature-dependent production of the LcrF protein. Pulse-chase experiments showed that the LcrF protein was stable at 26 and 37 degrees C, suggesting that translation rate or message degradation is thermally controlled. The lcrF mRNA appears to be highly unstable and could not be reliably detected in Y. pestis. Insertion of the lcrF gene into plasmid pET4a, which produces high levels of plasmid-length RNA, aided detection of lcrF-specific message in E. coli. Comparison of the amount of LcrF protein produced per unit of message at 26 and 37 degrees C indicated that the efficiency of translation of lcrF message increased with temperature. mRNA secondary structure predictions suggest that the lcrF Shine-Dalgarno sequence is sequestered in a stem-loop. A model in which decreased stability of this stem-loop with increasing temperature leads to increased efficiency of translation initiation of lcrF message is presented.
J Bacteriol. 1993 December; 175(24): 7901-7909
This article has been cited by other articles:
-
Brubaker, R. R.
(2005). Influence of Na+, Dicarboxylic Amino Acids, and pH in Modulating the Low-Calcium Response of Yersinia pestis. Infect. Immun.
73: 4743-4752
[Abstract]
[Full Text]
-
Chowdhury, S., Ragaz, C., Kreuger, E., Narberhaus, F.
(2003). Temperature-controlled Structural Alterations of an RNA Thermometer. J. Biol. Chem.
278: 47915-47921
[Abstract]
[Full Text]
-
Weber, W., Marty, R. R., Link, N., Ehrbar, M., Keller, B., Weber, C. C., Zisch, A. H., Heinzen, C., Djonov, V., Fussenegger, M.
(2003). Conditional human VEGF-mediated vascularization in chicken embryos using a novel temperature-inducible gene regulation (TIGR) system. Nucleic Acids Res
31: e69-e69
[Abstract]
[Full Text]
-
Cambronne, E. D., Schneewind, O.
(2002). Yersinia enterocolitica Type III Secretion: yscM1 and yscM2 Regulate yop Gene Expression by a Posttranscriptional Mechanism That Targets the 5' Untranslated Region of yop mRNA. J. Bacteriol.
184: 5880-5893
[Abstract]
[Full Text]
-
Wilson, J W, Schurr, M J, LeBlanc, C L, Ramamurthy, R, Buchanan, K L, Nickerson, C A
(2002). Mechanisms of bacterial pathogenicity. Postgrad. Med. J.
78: 216-224
[Abstract]
[Full Text]
-
Smoot, L. M., Smoot, J. C., Graham, M. R., Somerville, G. A., Sturdevant, D. E., Migliaccio, C. A. L., Sylva, G. L., Musser, J. M.
(2001). Global differential gene expression in response to growth temperature alteration in group A Streptococcus. Proc. Natl. Acad. Sci. USA
10.1073/pnas.191267598v1
[Abstract]
[Full Text]
-
Pouttu, R., Westerlund-Wikstrom, B., Lang, H., Alsti, K., Virkola, R., Saarela, U., Siitonen, A., Kalkkinen, N., Korhonen, T. K.
(2001). matB, a Common Fimbrillin Gene of Escherichia coli, Expressed in a Genetically Conserved, Virulent Clonal Group. J. Bacteriol.
183: 4727-4736
[Abstract]
[Full Text]
-
DeBord, K. L., Lee, V. T., Schneewind, O.
(2001). Roles of LcrG and LcrV during Type III Targeting of Effector Yops by Yersinia enterocolitica. J. Bacteriol.
183: 4588-4598
[Abstract]
[Full Text]
-
Repoila, F., Gottesman, S.
(2001). Signal Transduction Cascade for Regulation of RpoS: Temperature Regulation of DsrA. J. Bacteriol.
183: 4012-4023
[Abstract]
[Full Text]
-
Garcia, E., Nedialkov, Y. A., Elliott, J., Motin, V. L., Brubaker, R. R.
(1999). Molecular Characterization of KatY (Antigen 5), a Thermoregulated Chromosomally Encoded Catalase-Peroxidase of Yersinia pestis. J. Bacteriol.
181: 3114-3122
[Abstract]
[Full Text]
-
Storz, G.
(1999). An RNA thermometer. Genes Dev.
13: 633-636
[Full Text]
-
Morita, M. T., Tanaka, Y., Kodama, T. S., Kyogoku, Y., Yanagi, H., Yura, T.
(1999). Translational induction of heat shock transcription factor sigma 32: evidence for a built-in RNA thermosensor. Genes Dev.
13: 655-665
[Abstract]
[Full Text]
-
Cornelis, G. R., Boland, A., Boyd, A. P., Geuijen, C., Iriarte, M., Neyt, C., Sory, M.-P., Stainier, I.
(1998). The Virulence Plasmid of Yersinia, an Antihost Genome. Microbiol. Mol. Biol. Rev.
62: 1315-1352
[Abstract]
[Full Text]
-
Williams, A. W., Straley, S. C.
(1998). YopD of Yersinia pestis Plays a Role in Negative Regulation of the Low-Calcium Response in Addition to Its Role in Translocation of Yops. J. Bacteriol.
180: 350-358
[Abstract]
[Full Text]
-
Lee, V. T., Tam, C., Schneewind, O.
(2000). LcrV, a Substrate for Yersinia enterocolitica Type III Secretion, Is Required for Toxin Targeting into the Cytosol of HeLa Cells. J. Biol. Chem.
275: 36869-36875
[Abstract]
[Full Text]
-
Smoot, L. M., Smoot, J. C., Graham, M. R., Somerville, G. A., Sturdevant, D. E., Migliaccio, C. A. L., Sylva, G. L., Musser, J. M.
(2001). Global differential gene expression in response to growth temperature alteration in group A Streptococcus. Proc. Natl. Acad. Sci. USA
98: 10416-10421
[Abstract]
[Full Text]
Copyright © 1993 by the American Society for Microbiology. All rights reserved.