Journal of Bacteriology, February 2004, p. 989-1000, Vol. 186, No. 4
0021-9193/04/$08.00+0 DOI: 10.1128/JB.186.4.989-1000.2004
Copyright © 2004, American Society for Microbiology. All Rights Reserved.
Novel Roles of the Master Transcription Factors Spo0A and
B for Survival and Sporulation of Bacillus subtilis at Low Growth Temperature
Marcelo B. Méndez, Lelia M. Orsaria, Valeria Philippe, María Eugenia Pedrido, and Roberto R. Grau*
Department of Microbiology, Rosario University School of Biochemistry and Pharmacy, and Institute of Molecular and Cellular Biology of Rosario, IBR-CONICET, Rosario, Argentina
Received 20 June 2003/
Accepted 5 November 2003
Spore development and stress resistance in Bacillus subtilis are governed by the master transcription factors Spo0A and
B, respectively. Here we show that the coding genes for both regulatory proteins are dramatically induced, during logarithmic growth, after a temperature downshift from 37 to 20°C. The loss of
B reduces the stationary-phase viability of cold-adapted cells 10- to 50-fold. Furthermore, we show that
B activity is required at a late stage of development for efficient sporulation at a low temperature. On the other hand, Spo0A loss dramatically reduces the stationary-phase viability of cold-adapted cells 10,000-fold. We show that the requirement of Spo0A for cellular survival during the cold is independent of the activity of the key transition state regulator AbrB and of the simple loss of sporulation ability. Furthermore, Spo0A, and not proficiency in sporulation, is required for the development of complete stress resistance of cold-adapted cells to heat shock (54°C, 1 h), since a loss of Spo0A, but not a loss of the essential sporulation transcription factor
F, reduced the cellular survival in response to heat by more than 1,000-fold. The overall results argue for new and important roles for Spo0A in the development of full stress resistance by nonsporulating cells and for
B in sporulation proficiency at a low temperature.
* Corresponding author. Mailing address: Facultad de Ciencias Bioquímicas y Farmacéuticas, Departamento de Microbiología, Subsuelo de Sala 9, Suipacha 531, Rosario-2000, Argentina. Phone: (54) 341-4353377. Fax (54) 341-4804601. E-mail: rrgrau{at}infovia.com.ar.
Journal of Bacteriology, February 2004, p. 989-1000, Vol. 186, No. 4
0021-9193/04/$08.00+0 DOI: 10.1128/JB.186.4.989-1000.2004
Copyright © 2004, American Society for Microbiology. All Rights Reserved.
This article has been cited by other articles:
-
Lombardia, E., Rovetto, A. J., Arabolaza, A. L., Grau, R. R.
(2006). A LuxS-Dependent Cell-to-Cell Language Regulates Social Behavior and Development in Bacillus subtilis.. J. Bacteriol.
188: 4442-4452
[Abstract]
[Full Text]
-
Budde, I., Steil, L., Scharf, C., Volker, U., Bremer, E.
(2006). Adaptation of Bacillus subtilis to growth at low temperature: a combined transcriptomic and proteomic appraisal.. Microbiology
152: 831-853
[Abstract]
[Full Text]
-
Hoper, D., Volker, U., Hecker, M.
(2005). Comprehensive Characterization of the Contribution of Individual SigB-Dependent General Stress Genes to Stress Resistance of Bacillus subtilis. J. Bacteriol.
187: 2810-2826
[Abstract]
[Full Text]
-
Holtmann, G., Brigulla, M., Steil, L., Schutz, A., Barnekow, K., Volker, U., Bremer, E.
(2004). RsbV-Independent Induction of the SigB-Dependent General Stress Regulon of Bacillus subtilis during Growth at High Temperature. J. Bacteriol.
186: 6150-6158
[Abstract]
[Full Text]
-
Carniol, K., Kim, T.-J., Price, C. W., Losick, R.
(2004). Insulation of the {sigma}F Regulatory System in Bacillus subtilis. J. Bacteriol.
186: 4390-4394
[Abstract]
[Full Text]
Copyright © 2004 by the American Society for Microbiology. All rights reserved.