Previous Article | Next Article 
Applied and Environmental Microbiology, April 1999, p. 1710-1720, Vol. 65, No. 4
0099-2240/99/$04.00+0
Copyright © 1999, American Society for Microbiology. All rights reserved.
Monounsaturated but Not Polyunsaturated Fatty
Acids Are Required for Growth of the Deep-Sea Bacterium
Photobacterium profundum SS9 at High Pressure and
Low Temperature
Eric E.
Allen,1
Daniel
Facciotti,2 and
Douglas H.
Bartlett1,*
Center for Marine Biotechnology and
Biomedicine, Scripps Institution of Oceanography, University of
California, San Diego, La Jolla, California
92093-0202,1 and Calgene LLC Monsanto,
Davis, California 956162
Received 28 October 1998/Accepted 3 February 1999
There is considerable evidence correlating the production of
increased proportions of membrane unsaturated fatty acids (UFAs) with
bacterial growth at low temperatures or high pressures. In order to
assess the importance of UFAs to microbial growth under these
conditions, the effects of conditions altering UFA levels in the
psychrotolerant piezophilic deep-sea bacterium Photobacterium profundum SS9 were investigated. The fatty acids produced by
P. profundum SS9 grown at various temperatures and
pressures were characterized, and differences in fatty acid composition
as a function of phase growth, and between inner and outer membranes, were noted. P. profundum SS9 was found to exhibit enhanced
proportions of both monounsaturated (MUFAs) and polyunsaturated (PUFAs)
fatty acids when grown at a decreased temperature or elevated pressure. Treatment of cells with cerulenin inhibited MUFA but not PUFA synthesis
and led to a decreased growth rate and yield at low temperature and
high pressure. In addition, oleic acid-auxotrophic mutants were
isolated. One of these mutants, strain EA3, was deficient in the
production of MUFAs and was both low-temperature sensitive and
high-pressure sensitive in the absence of exogenous 18:1 fatty acid.
Another mutant, strain EA2, produced little MUFA but elevated levels of
the PUFA species eicosapentaenoic acid (EPA; 20:5n-3). This mutant grew slowly but was not low-temperature sensitive or
high-pressure sensitive. Finally, reverse genetics was employed to
construct a mutant unable to produce EPA. This mutant, strain EA10, was
also not low-temperature sensitive or high-pressure sensitive. The
significance of these results to the understanding of the role of UFAs
in growth under low-temperature or high-pressure conditions is discussed.
*
Corresponding author. Mailing address: Center for
Marine Biotechnology and Biomedicine, Scripps Institution of
Oceanography, 4405 Hubbs Hall, University of California, San Diego,
8604 La Jolla Shores Dr., La Jolla, CA 92093-0202. Phone: (619)
534-5233. Fax: (619) 534-7313. E-mail: dbartlett{at}ucsd.edu.
Applied and Environmental Microbiology, April 1999, p. 1710-1720, Vol. 65, No. 4
0099-2240/99/$04.00+0
Copyright © 1999, American Society for Microbiology. All rights reserved.
This article has been cited by other articles:
-
Wang, F., Xiao, X., Ou, H.-Y., Gai, Y., Wang, F.
(2009). Role and Regulation of Fatty Acid Biosynthesis in the Response of Shewanella piezotolerans WP3 to Different Temperatures and Pressures. J. Bacteriol.
191: 2574-2584
[Abstract]
[Full Text]
-
Kawamoto, J., Kurihara, T., Yamamoto, K., Nagayasu, M., Tani, Y., Mihara, H., Hosokawa, M., Baba, T., Sato, S. B., Esaki, N.
(2009). Eicosapentaenoic Acid Plays a Beneficial Role in Membrane Organization and Cell Division of a Cold-Adapted Bacterium, Shewanella livingstonensis Ac10. J. Bacteriol.
191: 632-640
[Abstract]
[Full Text]
-
Lauro, F. M., Tran, K., Vezzi, A., Vitulo, N., Valle, G., Bartlett, D. H.
(2008). Large-Scale Transposon Mutagenesis of Photobacterium profundum SS9 Reveals New Genetic Loci Important for Growth at Low Temperature and High Pressure. J. Bacteriol.
190: 1699-1709
[Abstract]
[Full Text]
-
Okuyama, H., Orikasa, Y., Nishida, T.
(2008). Significance of Antioxidative Functions of Eicosapentaenoic and Docosahexaenoic Acids in Marine Microorganisms. Appl. Environ. Microbiol.
74: 570-574
[Full Text]
-
Lauro, F. M., Chastain, R. A., Blankenship, L. E., Yayanos, A. A., Bartlett, D. H.
(2007). The Unique 16S rRNA Genes of Piezophiles Reflect both Phylogeny and Adaptation. Appl. Environ. Microbiol.
73: 838-845
[Abstract]
[Full Text]
-
Miyazaki, M., Nogi, Y., Usami, R., Horikoshi, K.
(2006). Shewanella surugensis sp. nov., Shewanella kaireitica sp. nov. and Shewanella abyssi sp. nov., isolated from deep-sea sediments of Suruga Bay, Japan.. Int. J. Syst. Evol. Microbiol.
56: 1607-1613
[Abstract]
[Full Text]
-
Nogi, Y., Hosoya, S., Kato, C., Horikoshi, K.
(2004). Colwellia piezophila sp. nov., a novel piezophilic species from deep-sea sediments of the Japan Trench. Int. J. Syst. Evol. Microbiol.
54: 1627-1631
[Abstract]
[Full Text]
-
Allen, E. E., Bartlett, D. H.
(2002). Structure and regulation of the omega-3 polyunsaturated fatty acid synthase genes from the deep-sea bacterium Photobacterium profundum strain SS9. Microbiology
148: 1903-1913
[Abstract]
[Full Text]
-
Metz, J. G., Roessler, P., Facciotti, D., Levering, C., Dittrich, F., Lassner, M., Valentine, R., Lardizabal, K., Domergue, F., Yamada, A., Yazawa, K., Knauf, V., Browse, J.
(2001). Production of Polyunsaturated Fatty Acids by Polyketide Synthases in Both Prokaryotes and Eukaryotes. Science
293: 290-293
[Abstract]
[Full Text]
-
Abe, F., Horikoshi, K.
(2000). Tryptophan Permease Gene TAT2 Confers High-Pressure Growth in Saccharomyces cerevisiae. Mol. Cell. Biol.
20: 8093-8102
[Abstract]
[Full Text]
-
Yamada, M., Nakasone, K., Tamegai, H., Kato, C., Usami, R., Horikoshi, K.
(2000). Pressure Regulation of Soluble Cytochromes c in a Deep-Sea Piezophilic Bacterium, Shewanella violacea. J. Bacteriol.
182: 2945-2952
[Abstract]
[Full Text]
-
Allen, E. E., Bartlett, D. H.
(2000). FabF Is Required for Piezoregulation of cis-Vaccenic Acid Levels and Piezophilic Growth of the Deep-Sea Bacterium Photobacterium profundum Strain SS9. J. Bacteriol.
182: 1264-1271
[Abstract]
[Full Text]