Abstract
The extremely halophilic bacterium Salinibacter ruber inhabits saltern crystallizer ponds worldwide, together with the square archaeon Haloquadratum walsbyi. Cultures of Salinibacter have been shown to convert up to 20% of the glycerol added to a not previously characterized overflow product. We here identify this product of incomplete glycerol oxidation by Salinibacter as dihydroxyacetone. Genomic information suggests that H. walsbyi possesses an efficient uptake system for dihydroxyacetone, and we show here that dihydroxyacetone is indeed metabolized by Haloquadratum cultures, as well as by the heterotrophic prokaryotic community of the saltern crystallizer ponds in Eilat, Israel, dominated by Haloquadratum-like cells. In the absence of glycerol, Salinibacter also takes up dihydroxyacetone. Degradation of glycerol, produced in hypersaline lakes as an osmotic solute by the green alga Dunaliella salina may thus involve dihydroxyacetone as an intermediate, which can then be taken up by different types of heterotrophs present in the environment.
MeSH Terms
Bacteria/genetics,metabolism
Chlorophyta/metabolism
Dihydroxyacetone/metabolism
Genome, Bacterial/physiology
Glycerol/metabolism
Israel
Oxidation-Reduction
Water Microbiology
Chemicals
Dihydroxyacetone
Glycerol
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Elevi Bardavid Rahel
The Institute of Life Sciences, and The Moshe Shilo Minerva Center for Marine Biogeochemistry, The Hebrew University of Jerusalem, Jerusalem, 91904, Israel.
Oren Aharon
References (16)
16 references, click to expand
-
Haloquadratum walsbyi gen. nov., sp. nov., the square haloarchaeon of Walsby, isolated from saltern crystallizers in Australia and Spain.
Int J Syst Evol Microbiol. 2007 Feb;57(Pt 2):387-392
PMID: 17267984
-
Isolation and cultivation of Walsby's square archaeon.
Environ Microbiol. 2004 Dec;6(12):1287-91
PMID: 15560825
-
The metabolism of carbohydrates by extremely halophilic bacteria: glucose metabolism via a modified Entner-Doudoroff pathway.
Can J Microbiol. 1974 Aug;20(8):1085-91
PMID: 4153875
-
Salinibacter ruber gen. nov., sp. nov., a novel, extremely halophilic member of the Bacteria from saltern crystallizer ponds.
Int J Syst Evol Microbiol. 2002 Mar;52(Pt 2):485-91
PMID: 11931160
-
Cultivation of Walsby's square haloarchaeon.
FEMS Microbiol Lett. 2004 Sep 15;238(2):469-73
PMID: 15358434
-
Complete genome sequence of the acetic acid bacterium Gluconobacter oxydans.
Nat Biotechnol. 2005 Feb;23(2):195-200
PMID: 15665824
-
Environmental genomics of "Haloquadratum walsbyi" in a saltern crystallizer indicates a large pool of accessory genes in an otherwise coherent species.
BMC Genomics. 2006 Jul 04;7:171
PMID: 16820057
-
Optimization of the microbial synthesis of dihydroxyacetone from glycerol with Gluconobacter oxydans.
Bioprocess Biosyst Eng. 2003 Dec;26(2):109-16
PMID: 14598160
-
Glycerol metabolism in the extremely halophilic bacterium Salinibacter ruber.
FEMS Microbiol Lett. 2004 Mar 19;232(2):211-5
PMID: 15033241
-
Substrate uptake in extremely halophilic microbial communities revealed by microautoradiography and fluorescence in situ hybridization.
Extremophiles. 2003 Oct;7(5):409-13
PMID: 12820037
-
Interrelationships between Dunaliella and halophilic prokaryotes in saltern crystallizer ponds.
Extremophiles. 2008 Jan;12(1):5-14
PMID: 17186316
-
The genome of the square archaeon Haloquadratum walsbyi : life at the limits of water activity.
BMC Genomics. 2006 Jul 04;7:169
PMID: 16820047
-
The genome of Salinibacter ruber: convergence and gene exchange among hyperhalophilic bacteria and archaea.
Proc Natl Acad Sci U S A. 2005 Dec 13;102(50):18147-52
PMID: 16330755
-
The contribution of halophilic Bacteria to the red coloration of saltern crystallizer ponds(1).
FEMS Microbiol Ecol. 2001 Jul;36(2-3):123-130
PMID: 11451516
-
Studies on acid production during carbohydrate metabolism by extremely halophilic bacteria.
Can J Microbiol. 1972 Dec;18(12):1973-6
PMID: 4649745
-
Extremely halophilic bacteria in crystallizer ponds from solar salterns.
Appl Environ Microbiol. 2000 Jul;66(7):3052-7
PMID: 10877805