KEGG   PATHWAY: ecz00920
Entry
ecz00920                    Pathway                                
Name
Sulfur metabolism - Escherichia coli O45:K1:H7 S88 (ExPEC)
Description
Sulfur is an essential element for life and the metabolism of organic sulfur compounds plays an important role in the global sulfur cycle. Sulfur occurs in various oxidation states ranging from +6 in sulfate to -2 in sulfide (H2S). Sulfate reduction can occur in both an energy consuming assimilatory pathway and an energy producing dissimilatory pathway. The assimilatory pathway, which is found in a wide range of organisms, produces reduced sulfur compounds for the biosynthesis of S-containing amino acids and does not lead to direct excretion of sulfide. In the dissimilatory pathway, which is restricted to obligatory anaerobic bacterial and archaeal lineages, sulfate (or sulfur) is the terminal electron acceptor of the respiratory chain producing large quantities of inorganic sulfide. Both pathways start from the activation of sulfate by reaction with ATP to form adenylyl sulfate (APS). In the assimilatory pathway [MD:M00176] APS is converted to 3'-phosphoadenylyl sulfate (PAPS) and then reduced to sulfite, and sulfite is further reduced to sulfide by the assimilatory sulfite reductase. In the dissimilatory pathway [MD:M00596] APS is directly reduced to sulfite, and sulfite is further reduced to sulfide by the dissimilatory sulfite reductase. The capacity for oxidation of sulfur is quite widespread among bacteria and archaea, comprising phototrophs and chemolithoautotrophs. The SOX (sulfur-oxidation) system [MD:M00595] is a well-known sulfur oxidation pathway and is found in both photosynthetic and non-photosynthetic sulfur-oxidizing bacteria. Green sulfur bacteria and purple sulfur bacteria carry out anoxygenic photosynthesis with reduced sulfur compounds such as sulfide and elemental sulfur, as well as thiosulfate (in some species with the SOX system), as the electron donor for photoautotrophic growth. In some chemolithoautotrophic sulfur oxidizers (such as Thiobacillus denitrificans), it has been suggested that dissimilatory sulfur reduction enzymes operate in the reverse direction, forming a sulfur oxidation pathway from sulfite to APS and then to sulfate.
Class
Metabolism; Energy metabolism
Pathway map
ecz00920  Sulfur metabolism
ecz00920

Module
ecz_M00021  Cysteine biosynthesis, serine => cysteine [PATH:ecz00920]
ecz_M00176  Assimilatory sulfate reduction, sulfate => H2S [PATH:ecz00920]
Other DBs
GO: 0006790
Organism
Escherichia coli O45:K1:H7 S88 (ExPEC) [GN:ecz]
Gene
ECS88_2614  cysP; thiosulfate transporter subunit; periplasmic-binding component of ABC superfamily [KO:K02048]
ECS88_4367  sbp; sulfate transporter subunit; periplasmic-binding component of ABC superfamily [KO:K23163]
ECS88_2613  cysU; sulfate/thiosulfate transporter subunit; membrane component of ABC superfamily [KO:K02046]
ECS88_2612  cysW; sulfate/thiosulfate transporter subunit; membrane component of ABC superfamily [KO:K02047]
ECS88_2611  cysA; sulfate/thiosulfate transporter subunit; ATP-binding component of ABC superfamily [KO:K02045] [EC:7.3.2.3]
ECS88_0362  tauA; taurine transporter subunit; periplasmic-binding component of ABC superfamily [KO:K15551]
ECS88_0364  tauC; taurine transporter subunit; membrane component of ABC superfamily [KO:K15552]
ECS88_0363  tauB; taurine transporter subunit; ATP-binding component of ABC superfamily [KO:K10831] [EC:7.6.2.7]
ECS88_0365  tauD; taurine dioxygenase, 2-oxoglutarate-dependent [KO:K03119] [EC:1.14.11.17]
ECS88_0964  ssuA; alkanesulfonate transporter subunit; periplasmic-binding component of ABC superfamily [KO:K15553]
ECS88_0962  ssuC; alkanesulfonate transporter subunit; membrane component of ABC superfamily [KO:K15554]
ECS88_0961  ssuB; alkanesulfonate transporter subunit; ATP-binding component of ABC superfamily [KO:K15555] [EC:7.6.2.14]
ECS88_0963  ssuD; alkanesulfonate monooxygenase, FMNH(2)-dependent [KO:K04091] [EC:1.14.14.5 1.14.14.34]
ECS88_0965  ssuE; NAD(P)H-dependent FMN reductase [KO:K00299] [EC:1.5.1.38]
ECS88_3022  cysN; sulfate adenylyltransferase, subunit 1 [KO:K00956] [EC:2.7.7.4]
ECS88_3023  cysD; sulfate adenylyltransferase, subunit 2 [KO:K00957] [EC:2.7.7.4]
ECS88_3021  cysC; adenosine 5'-phosphosulfate kinase [KO:K00860] [EC:2.7.1.25]
ECS88_4808  cysQ; PAPS (adenosine 3'-phosphate 5'-phosphosulfate) 3'(2'),5'-bisphosphate nucleotidase [KO:K01082] [EC:3.1.3.7]
ECS88_3026  cysH; 3'-phosphoadenosine 5'-phosphosulfate reductase [KO:K00390] [EC:1.8.4.8 1.8.4.10]
ECS88_3028  cysJ; sulfite reductase, alpha subunit, flavoprotein [KO:K00380] [EC:1.8.1.2]
ECS88_3027  cysI; sulfite reductase, beta subunit, NAD(P)-binding, heme-binding [KO:K00381] [EC:1.8.1.2]
ECS88_1718  ydhU; putative cytochrome b subunit of a reductase [KO:K08354]
ECS88_2697  sseA; 3-mercaptopyruvate sulfurtransferase [KO:K01011] [EC:2.8.1.1 2.8.1.2]
ECS88_3814  glpE; thiosulfate:cyanide sulfurtransferase (rhodanese) [KO:K02439] [EC:2.8.1.1]
ECS88_4024  cysE; serine acetyltransferase [KO:K00640] [EC:2.3.1.30]
ECS88_2131  wbvC; putative O-acetyltransferase [KO:K00640] [EC:2.3.1.30]
ECS88_2604  cysK; cysteine synthase A, O-acetylserine sulfhydrolase A subunit [KO:K01738] [EC:2.5.1.47]
ECS88_4478  metA; homoserine transsuccinylase [KO:K00651] [EC:2.3.1.46 2.3.1.31]
ECS88_4390  metB; cystathionine gamma-synthase, PLP-dependent [KO:K01739] [EC:2.5.1.48]
ECS88_0925  dmsA; dimethyl sulfoxide reductase, anaerobic, subunit A [KO:K07306] [EC:1.8.5.3]
ECS88_0926  dmsB; dimethyl sulfoxide reductase, anaerobic, subunit B [KO:K07307]
ECS88_0927  dmsC; dimethyl sulfoxide reductase, anaerobic, subunit C [KO:K07308]
Compound
C00033  Acetate
C00042  Succinate
C00053  3'-Phosphoadenylyl sulfate
C00054  Adenosine 3',5'-bisphosphate
C00059  Sulfate
C00065  L-Serine
C00084  Acetaldehyde
C00087  Sulfur
C00094  Sulfite
C00097  L-Cysteine
C00155  L-Homocysteine
C00224  Adenylyl sulfate
C00245  Taurine
C00263  L-Homoserine
C00283  Hydrogen sulfide
C00320  Thiosulfate
C00409  Methanethiol
C00580  Dimethyl sulfide
C00979  O-Acetyl-L-serine
C01118  O-Succinyl-L-homoserine
C01861  Trithionate
C02084  Tetrathionate
C03920  2-(Methylthio)ethanesulfonate
C04022  S,S-Dimethyl-beta-propiothetin
C08276  3-(Methylthio)propanoate
C11142  Dimethyl sulfone
C11143  Dimethyl sulfoxide
C11145  Methanesulfonic acid
C15521  Alkanesulfonate
C17267  S-Sulfanylglutathione
C19692  Polysulfide
C20870  3-(Methylthio)propanoyl-CoA
C20955  3-(Methylthio)acryloyl-CoA
C22834  Protein-trisulfide
Reference
  Authors
Grein F, Ramos AR, Venceslau SS, Pereira IA
  Title
Unifying concepts in anaerobic respiration: Insights from dissimilatory sulfur metabolism.
  Journal
Biochim Biophys Acta 1827:145-60 (2013)
DOI:10.1016/j.bbabio.2012.09.001
Reference
  Authors
Fauque GD, Barton LL
  Title
Hemoproteins in dissimilatory sulfate- and sulfur-reducing prokaryotes.
  Journal
Adv Microb Physiol 60:1-90 (2012)
DOI:10.1016/B978-0-12-398264-3.00001-2
Reference
  Authors
Sakurai H, Ogawa T, Shiga M, Inoue K
  Title
Inorganic sulfur oxidizing system in green sulfur bacteria.
  Journal
Photosynth Res 104:163-76 (2010)
DOI:10.1007/s11120-010-9531-2
Reference
  Authors
Falkenby LG, Szymanska M, Holkenbrink C, Habicht KS, Andersen JS, Miller M, Frigaard NU
  Title
Quantitative proteomics of Chlorobaculum tepidum: insights into the sulfur metabolism of a phototrophic green sulfur bacterium.
  Journal
FEMS Microbiol Lett 323:142-50 (2011)
DOI:10.1111/j.1574-6968.2011.02370.x
Reference
  Authors
Gregersen LH, Bryant DA, Frigaard NU
  Title
Mechanisms and evolution of oxidative sulfur metabolism in green sulfur bacteria.
  Journal
Front Microbiol 2:116 (2011)
DOI:10.3389/fmicb.2011.00116
Reference
  Authors
Beller HR, Chain PS, Letain TE, Chakicherla A, Larimer FW, Richardson PM, Coleman MA, Wood AP, Kelly DP.
  Title
The genome sequence of the obligately chemolithoautotrophic, facultatively anaerobic bacterium Thiobacillus denitrificans.
  Journal
J Bacteriol 188:1473-88 (2006)
DOI:10.1128/JB.188.4.1473-1488.2006
Reference
PMID:9695921
  Authors
Pott AS, Dahl C
  Title
Sirohaem sulfite reductase and other proteins encoded by genes at the dsr locus of Chromatium vinosum are involved in the oxidation of intracellular sulfur.
  Journal
Microbiology 144 ( Pt 7):1881-94 (1998)
DOI:10.1099/00221287-144-7-1881
Reference
  Authors
Frigaard NU, Dahl C
  Title
Sulfur metabolism in phototrophic sulfur bacteria.
  Journal
Adv Microb Physiol 54:103-200 (2009)
DOI:10.1016/S0065-2911(08)00002-7
Related
pathway
ecz00260  Glycine, serine and threonine metabolism
ecz00270  Cysteine and methionine metabolism
ecz00680  Methane metabolism
ecz00720  Other carbon fixation pathways
KO pathway
ko00920   
LinkDB

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