Literature DB >> 22493022

Fructose degradation in the haloarchaeon Haloferax volcanii involves a bacterial type phosphoenolpyruvate-dependent phosphotransferase system, fructose-1-phosphate kinase, and class II fructose-1,6-bisphosphate aldolase.

Andreas Pickl1, Ulrike Johnsen, Peter Schönheit.   

Abstract

The halophilic archaeon Haloferax volcanii utilizes fructose as a sole carbon and energy source. Genes and enzymes involved in fructose uptake and degradation were identified by transcriptional analyses, deletion mutant experiments, and enzyme characterization. During growth on fructose, the gene cluster HVO_1495 to HVO_1499, encoding homologs of the five bacterial phosphotransferase system (PTS) components enzyme IIB (EIIB), enzyme I (EI), histidine protein (HPr), EIIA, and EIIC, was highly upregulated as a cotranscript. The in-frame deletion of HVO_1499, designated ptfC (ptf stands for phosphotransferase system for fructose) and encoding the putative fructose-specific membrane component EIIC, resulted in a loss of growth on fructose, which could be recovered by complementation in trans. Transcripts of HVO_1500 (pfkB) and HVO_1494 (fba), encoding putative fructose-1-phosphate kinase (1-PFK) and fructose-1,6-bisphosphate aldolase (FBA), respectively, as well as 1-PFK and FBA activities were specifically upregulated in fructose-grown cells. pfkB and fba knockout mutants did not grow on fructose, whereas growth on glucose was not inhibited, indicating the functional involvement of both enzymes in fructose catabolism. Recombinant 1-PFK and FBA obtained after homologous overexpression were characterized as having kinetic properties indicative of functional 1-PFK and a class II type FBA. From these data, we conclude that fructose uptake in H. volcanii involves a fructose-specific PTS generating fructose-1-phosphate, which is further converted via fructose-1,6-bisphosphate to triose phosphates by 1-PFK and FBA. This is the first report of the functional involvement of a bacterial-like PTS and of class II FBA in the sugar metabolism of archaea.

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Year:  2012        PMID: 22493022      PMCID: PMC3370872          DOI: 10.1128/JB.00200-12

Source DB:  PubMed          Journal:  J Bacteriol        ISSN: 0021-9193            Impact factor:   3.490


  46 in total

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Authors:  Ravi D Barabote; Milton H Saier
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Authors:  Vincent Bardey; Corinne Vallet; Nathalie Robas; Bruno Charpentier; Benoit Thouvenot; Annie Mougin; Eliane Hajnsdorf; Philippe Régnier; Mathias Springer; Christiane Branlant
Journal:  Mol Microbiol       Date:  2005-09       Impact factor: 3.501

Review 4.  The ABC of binding-protein-dependent transport in Archaea.

Authors:  Sung-Jae Lee; Alex Böhm; Michael Krug; Winfried Boos
Journal:  Trends Microbiol       Date:  2007-08-30       Impact factor: 17.079

5.  Fructose 1,6-bisphosphate aldolase/phosphatase may be an ancestral gluconeogenic enzyme.

Authors:  Rafael F Say; Georg Fuchs
Journal:  Nature       Date:  2010-03-28       Impact factor: 49.962

6.  Biosynthesis of ribose-5-phosphate and erythrose-4-phosphate in archaea: a phylogenetic analysis of archaeal genomes.

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7.  Sequence and phylogenetic position of a class II aldolase gene in the amitochondriate protist, Giardia lamblia.

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8.  Improved strains and plasmid vectors for conditional overexpression of His-tagged proteins in Haloferax volcanii.

Authors:  Thorsten Allers; Shahar Barak; Susan Liddell; Kayleigh Wardell; Moshe Mevarech
Journal:  Appl Environ Microbiol       Date:  2010-01-22       Impact factor: 4.792

9.  Characterization of a Haloferax volcanii member of the enolase superfamily: deletion mutant construction, expression analysis, and transcriptome comparison.

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Journal:  Arch Microbiol       Date:  2008-05-21       Impact factor: 2.552

10.  Transformation of the archaebacterium Halobacterium volcanii with genomic DNA.

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Journal:  J Bacteriol       Date:  1989-09       Impact factor: 3.490

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  20 in total

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Review 2.  The bacterial phosphoenolpyruvate:carbohydrate phosphotransferase system: regulation by protein phosphorylation and phosphorylation-dependent protein-protein interactions.

Authors:  Josef Deutscher; Francine Moussan Désirée Aké; Meriem Derkaoui; Arthur Constant Zébré; Thanh Nguyen Cao; Houda Bouraoui; Takfarinas Kentache; Abdelhamid Mokhtari; Eliane Milohanic; Philippe Joyet
Journal:  Microbiol Mol Biol Rev       Date:  2014-06       Impact factor: 11.056

Review 3.  Carbohydrate metabolism in Archaea: current insights into unusual enzymes and pathways and their regulation.

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4.  Analysis of the transcriptional regulator GlpR, promoter elements, and posttranscriptional processing involved in fructose-induced activation of the phosphoenolpyruvate-dependent sugar phosphotransferase system in Haloferax mediterranei.

Authors:  Lei Cai; Shuangfeng Cai; Dahe Zhao; Jinhua Wu; Lei Wang; Xiaoqing Liu; Ming Li; Jing Hou; Jian Zhou; Jingfang Liu; Jing Han; Hua Xiang
Journal:  Appl Environ Microbiol       Date:  2013-12-13       Impact factor: 4.792

5.  The PEP-pyruvate-oxaloacetate node: variation at the heart of metabolism.

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Review 6.  Post-translation modification in Archaea: lessons from Haloferax volcanii and other haloarchaea.

Authors:  Jerry Eichler; Julie Maupin-Furlow
Journal:  FEMS Microbiol Rev       Date:  2012-12-20       Impact factor: 16.408

7.  Glucose Metabolism and Acetate Switch in Archaea: the Enzymes in Haloferax volcanii.

Authors:  Tom Kuprat; Marius Ortjohann; Ulrike Johnsen; Peter Schönheit
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8.  GlpR Is a Direct Transcriptional Repressor of Fructose Metabolic Genes in Haloferax volcanii.

Authors:  Jonathan H Martin; Katherine Sherwood Rawls; Jou Chin Chan; Sungmin Hwang; Mar Martinez-Pastor; Lana J McMillan; Laurence Prunetti; Amy K Schmid; Julie A Maupin-Furlow
Journal:  J Bacteriol       Date:  2018-08-10       Impact factor: 3.490

9.  Microbial ecology of an Antarctic hypersaline lake: genomic assessment of ecophysiology among dominant haloarchaea.

Authors:  Timothy J Williams; Michelle A Allen; Matthew Z DeMaere; Nikos C Kyrpides; Susannah G Tringe; Tanja Woyke; Ricardo Cavicchioli
Journal:  ISME J       Date:  2014-02-20       Impact factor: 10.302

10.  Sulfolobus acidocaldarius Transports Pentoses via a Carbohydrate Uptake Transporter 2 (CUT2)-Type ABC Transporter and Metabolizes Them through the Aldolase-Independent Weimberg Pathway.

Authors:  Michaela Wagner; Lu Shen; Andreas Albersmeier; Nienke van der Kolk; Sujin Kim; Jaeho Cha; Christopher Bräsen; Jörn Kalinowski; Bettina Siebers; Sonja-Verena Albers
Journal:  Appl Environ Microbiol       Date:  2018-01-17       Impact factor: 4.792

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