Comparative Genomics of Thiohalobacter thiocyanaticus HRh1T and Guyparkeria sp. SCN-R1, Halophilic Chemolithoautotrophic Sulfur-Oxidizing Gammaproteobacteria Capable of Using Thiocyanate as Energy Source

The genomes of Thiohalobacter thiocyanaticus and Guyparkeria (formerly known as Halothiobacillus) sp. SCN-R1, two gammaproteobacterial halophilic sulfur-oxidizing bacteria (SOB) capable of thiocyanate oxidation via the “cyanate pathway”, have been analyzed with a particular focus on their thiocyanat...

Full description

Bibliographic Details
Main Authors: Stanislav I. Tsallagov, Dimitry Y. Sorokin, Tamara V. Tikhonova, Vladimir O. Popov, Gerard Muyzer
Format: Article
Language:English
Published: Frontiers Media S.A. 2019-05-01
Series:Frontiers in Microbiology
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fmicb.2019.00898/full
id doaj-1c4d7afc3bc04dce90331f6ba12e519a
record_format Article
spelling doaj-1c4d7afc3bc04dce90331f6ba12e519a2020-11-24T21:26:42ZengFrontiers Media S.A.Frontiers in Microbiology1664-302X2019-05-011010.3389/fmicb.2019.00898428529Comparative Genomics of Thiohalobacter thiocyanaticus HRh1T and Guyparkeria sp. SCN-R1, Halophilic Chemolithoautotrophic Sulfur-Oxidizing Gammaproteobacteria Capable of Using Thiocyanate as Energy SourceStanislav I. Tsallagov0Dimitry Y. Sorokin1Dimitry Y. Sorokin2Tamara V. Tikhonova3Vladimir O. Popov4Gerard Muyzer5Bach Institute of Biochemistry, Research Centre of Biotechnology, Russian Academy of Sciences, Moscow, RussiaWinogradsky Institute of Microbiology, Research Centre of Biotechnology, Russian Academy of Sciences, Moscow, RussiaDepartment of Biotechnology, Delft University of Technology, Delft, NetherlandsBach Institute of Biochemistry, Research Centre of Biotechnology, Russian Academy of Sciences, Moscow, RussiaBach Institute of Biochemistry, Research Centre of Biotechnology, Russian Academy of Sciences, Moscow, RussiaMicrobial Systems Ecology, Department of Freshwater and Marine Ecology, Institute for Biodiversity and Ecosystem Dynamics, University of Amsterdam, Amsterdam, NetherlandsThe genomes of Thiohalobacter thiocyanaticus and Guyparkeria (formerly known as Halothiobacillus) sp. SCN-R1, two gammaproteobacterial halophilic sulfur-oxidizing bacteria (SOB) capable of thiocyanate oxidation via the “cyanate pathway”, have been analyzed with a particular focus on their thiocyanate-oxidizing potential and sulfur oxidation pathways. Both genomes encode homologs of the enzyme thiocyanate dehydrogenase (TcDH) that oxidizes thiocyanate via the “cyanate pathway” in members of the haloalkaliphilic SOB of the genus Thioalkalivibrio. However, despite the presence of conservative motives indicative of TcDH, the putative TcDH of the halophilic SOB have a low overall amino acid similarity to the Thioalkalivibrio enzyme, and also the surrounding genes in the TcDH locus were different. In particular, an alternative copper transport system Cus is present instead of Cop and a putative zero-valent sulfur acceptor protein gene appears just before TcDH. Moreover, in contrast to the thiocyanate-oxidizing Thioalkalivibrio species, both genomes of the halophilic SOB contained a gene encoding the enzyme cyanate hydratase. The sulfur-oxidizing pathway in the genome of Thiohalobacter includes a Fcc type of sulfide dehydrogenase, a rDsr complex/AprAB/Sat for oxidation of zero-valent sulfur to sulfate, and an incomplete Sox pathway, lacking SoxCD. The sulfur oxidation pathway reconstructed from the genome of Guyparkeria sp. SCN-R1 was more similar to that of members of the Thiomicrospira-Hydrogenovibrio group, including a Fcc type of sulfide dehydrogenase and a complete Sox complex. One of the outstanding properties of Thiohalobacter is the presence of a Na+-dependent ATP synthase, which is rarely found in aerobic Prokaryotes.Overall, the results showed that, despite an obvious difference in the general sulfur-oxidation pathways, halophilic and haloalkaliphilic SOB belonging to different genera within the Gammaproteobacteria developed a similar unique thiocyanate-degrading mechanism based on the direct oxidative attack on the sulfane atom of thiocyanate.https://www.frontiersin.org/article/10.3389/fmicb.2019.00898/fullcyanatehalophileshypersaline lakesthiocyanate dehydrogenasesulfide
collection DOAJ
language English
format Article
sources DOAJ
author Stanislav I. Tsallagov
Dimitry Y. Sorokin
Dimitry Y. Sorokin
Tamara V. Tikhonova
Vladimir O. Popov
Gerard Muyzer
spellingShingle Stanislav I. Tsallagov
Dimitry Y. Sorokin
Dimitry Y. Sorokin
Tamara V. Tikhonova
Vladimir O. Popov
Gerard Muyzer
Comparative Genomics of Thiohalobacter thiocyanaticus HRh1T and Guyparkeria sp. SCN-R1, Halophilic Chemolithoautotrophic Sulfur-Oxidizing Gammaproteobacteria Capable of Using Thiocyanate as Energy Source
Frontiers in Microbiology
cyanate
halophiles
hypersaline lakes
thiocyanate dehydrogenase
sulfide
author_facet Stanislav I. Tsallagov
Dimitry Y. Sorokin
Dimitry Y. Sorokin
Tamara V. Tikhonova
Vladimir O. Popov
Gerard Muyzer
author_sort Stanislav I. Tsallagov
title Comparative Genomics of Thiohalobacter thiocyanaticus HRh1T and Guyparkeria sp. SCN-R1, Halophilic Chemolithoautotrophic Sulfur-Oxidizing Gammaproteobacteria Capable of Using Thiocyanate as Energy Source
title_short Comparative Genomics of Thiohalobacter thiocyanaticus HRh1T and Guyparkeria sp. SCN-R1, Halophilic Chemolithoautotrophic Sulfur-Oxidizing Gammaproteobacteria Capable of Using Thiocyanate as Energy Source
title_full Comparative Genomics of Thiohalobacter thiocyanaticus HRh1T and Guyparkeria sp. SCN-R1, Halophilic Chemolithoautotrophic Sulfur-Oxidizing Gammaproteobacteria Capable of Using Thiocyanate as Energy Source
title_fullStr Comparative Genomics of Thiohalobacter thiocyanaticus HRh1T and Guyparkeria sp. SCN-R1, Halophilic Chemolithoautotrophic Sulfur-Oxidizing Gammaproteobacteria Capable of Using Thiocyanate as Energy Source
title_full_unstemmed Comparative Genomics of Thiohalobacter thiocyanaticus HRh1T and Guyparkeria sp. SCN-R1, Halophilic Chemolithoautotrophic Sulfur-Oxidizing Gammaproteobacteria Capable of Using Thiocyanate as Energy Source
title_sort comparative genomics of thiohalobacter thiocyanaticus hrh1t and guyparkeria sp. scn-r1, halophilic chemolithoautotrophic sulfur-oxidizing gammaproteobacteria capable of using thiocyanate as energy source
publisher Frontiers Media S.A.
series Frontiers in Microbiology
issn 1664-302X
publishDate 2019-05-01
description The genomes of Thiohalobacter thiocyanaticus and Guyparkeria (formerly known as Halothiobacillus) sp. SCN-R1, two gammaproteobacterial halophilic sulfur-oxidizing bacteria (SOB) capable of thiocyanate oxidation via the “cyanate pathway”, have been analyzed with a particular focus on their thiocyanate-oxidizing potential and sulfur oxidation pathways. Both genomes encode homologs of the enzyme thiocyanate dehydrogenase (TcDH) that oxidizes thiocyanate via the “cyanate pathway” in members of the haloalkaliphilic SOB of the genus Thioalkalivibrio. However, despite the presence of conservative motives indicative of TcDH, the putative TcDH of the halophilic SOB have a low overall amino acid similarity to the Thioalkalivibrio enzyme, and also the surrounding genes in the TcDH locus were different. In particular, an alternative copper transport system Cus is present instead of Cop and a putative zero-valent sulfur acceptor protein gene appears just before TcDH. Moreover, in contrast to the thiocyanate-oxidizing Thioalkalivibrio species, both genomes of the halophilic SOB contained a gene encoding the enzyme cyanate hydratase. The sulfur-oxidizing pathway in the genome of Thiohalobacter includes a Fcc type of sulfide dehydrogenase, a rDsr complex/AprAB/Sat for oxidation of zero-valent sulfur to sulfate, and an incomplete Sox pathway, lacking SoxCD. The sulfur oxidation pathway reconstructed from the genome of Guyparkeria sp. SCN-R1 was more similar to that of members of the Thiomicrospira-Hydrogenovibrio group, including a Fcc type of sulfide dehydrogenase and a complete Sox complex. One of the outstanding properties of Thiohalobacter is the presence of a Na+-dependent ATP synthase, which is rarely found in aerobic Prokaryotes.Overall, the results showed that, despite an obvious difference in the general sulfur-oxidation pathways, halophilic and haloalkaliphilic SOB belonging to different genera within the Gammaproteobacteria developed a similar unique thiocyanate-degrading mechanism based on the direct oxidative attack on the sulfane atom of thiocyanate.
topic cyanate
halophiles
hypersaline lakes
thiocyanate dehydrogenase
sulfide
url https://www.frontiersin.org/article/10.3389/fmicb.2019.00898/full
work_keys_str_mv AT stanislavitsallagov comparativegenomicsofthiohalobacterthiocyanaticushrh1tandguyparkeriaspscnr1halophilicchemolithoautotrophicsulfuroxidizinggammaproteobacteriacapableofusingthiocyanateasenergysource
AT dimitryysorokin comparativegenomicsofthiohalobacterthiocyanaticushrh1tandguyparkeriaspscnr1halophilicchemolithoautotrophicsulfuroxidizinggammaproteobacteriacapableofusingthiocyanateasenergysource
AT dimitryysorokin comparativegenomicsofthiohalobacterthiocyanaticushrh1tandguyparkeriaspscnr1halophilicchemolithoautotrophicsulfuroxidizinggammaproteobacteriacapableofusingthiocyanateasenergysource
AT tamaravtikhonova comparativegenomicsofthiohalobacterthiocyanaticushrh1tandguyparkeriaspscnr1halophilicchemolithoautotrophicsulfuroxidizinggammaproteobacteriacapableofusingthiocyanateasenergysource
AT vladimiropopov comparativegenomicsofthiohalobacterthiocyanaticushrh1tandguyparkeriaspscnr1halophilicchemolithoautotrophicsulfuroxidizinggammaproteobacteriacapableofusingthiocyanateasenergysource
AT gerardmuyzer comparativegenomicsofthiohalobacterthiocyanaticushrh1tandguyparkeriaspscnr1halophilicchemolithoautotrophicsulfuroxidizinggammaproteobacteriacapableofusingthiocyanateasenergysource
_version_ 1725977826455191552