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Information on Organism Neomoorella thermoacetica

TaxTree of Organism Neomoorella thermoacetica
Condensed Tree View
cellular organisms (cellular root)
Bacteria can be found in Brenda BRENDA pathways(domain)
Bacillati can be found in Brenda (kingdom)
Bacillota can be found in Brenda BRENDA pathways(phylum)
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PATHWAY
BRENDA Link
KEGG Link
MetaCyc Link
(aminomethyl)phosphonate degradation
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PWY-7805
(S)-lactate fermentation to propanoate, acetate and hydrogen
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PWY-8086
(S)-propane-1,2-diol degradation
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PWY-7013
2-methyladeninyl adenosylcobamide biosynthesis from adenosylcobinamide-GDP
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PWY-7965
3-methylbutanol biosynthesis (engineered)
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PWY-6871
5-hydroxybenzimidazolyl adenosylcobamide biosynthesis from adenosylcobinamide-GDP
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PWY-7969
5-methoxy-6-methylbenzimidazolyl adenosylcobamide biosynthesis from adenosylcobinamide-GDP
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PWY-7966
5-methoxybenzimidazolyl adenosylcobamide biosynthesis from adenosylcobinamide-GDP
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PWY-7967
5-methylbenzimidazolyl adenosylcobamide biosynthesis from adenosylcobinamide-GDP
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PWY-7968
acetate and ATP formation from acetyl-CoA I
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PWY0-1312
acetate and ATP formation from acetyl-CoA III
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PWY-8328
acetate conversion to acetyl-CoA
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PWY0-1313
acetate fermentation
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acetylene degradation (anaerobic)
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P161-PWY
adeninyl adenosylcobamide biosynthesis from adenosylcobinamide-GDP
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PWY-7964
adenosylcobalamin biosynthesis from adenosylcobinamide-GDP I
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PWY-5509
adlupulone and adhumulone biosynthesis
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PWY-7857
aerobic respiration I (cytochrome c)
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PWY-3781
aerobic respiration III (alternative oxidase pathway)
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PWY-4302
alanine metabolism
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Alanine, aspartate and glutamate metabolism
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Aminoacyl-tRNA biosynthesis
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Aminobenzoate degradation
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aspartate and asparagine metabolism
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Atrazine degradation
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benzimidazolyl adenosylcobamide biosynthesis from adenosylcobinamide-GDP
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PWY-7970
beta-alanine biosynthesis III
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PWY-5155
beta-Alanine metabolism
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Bifidobacterium shunt
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P124-PWY
Biosynthesis of secondary metabolites
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Butanoate metabolism
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Carbon fixation pathways in prokaryotes
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carbon tetrachloride degradation II
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PWY-5372
chitin deacetylation
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PWY-7118
cis-geranyl-CoA degradation
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PWY-6672
Citrate cycle (TCA cycle)
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colupulone and cohumulone biosynthesis
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PWY-5133
Cyanoamino acid metabolism
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cyanuric acid degradation I
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PWY-8025
cyanuric acid degradation II
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PWY-5169
denitrification
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Entner-Doudoroff pathway II (non-phosphorylative)
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NPGLUCAT-PWY
ethanol degradation II
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PWY66-21
ethanol degradation III
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PWY66-161
ethanol degradation IV
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PWY66-162
ethanolamine utilization
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PWY0-1477
Fe(II) oxidation
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PWY-6692
flavin biosynthesis
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flavin biosynthesis I (bacteria and plants)
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RIBOSYN2-PWY
flavin biosynthesis II (archaea)
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PWY-6167
flavin biosynthesis III (fungi)
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PWY-6168
folate polyglutamylation
folate transformations I
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PWY-2201
folate transformations II (plants)
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PWY-3841
folate transformations III (E. coli)
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1CMET2-PWY
formaldehyde oxidation I
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RUMP-PWY
formaldehyde oxidation VII (THF pathway)
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PWY-7909
formate assimilation into 5,10-methylenetetrahydrofolate
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PWY-1722
gallate degradation III (anaerobic)
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P3-PWY
gluconeogenesis II (Methanobacterium thermoautotrophicum)
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PWY-6142
Glutathione metabolism
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glycine degradation (reductive Stickland reaction)
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PWY-8015
glycine metabolism
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Glycolysis / Gluconeogenesis
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Glyoxylate and dicarboxylate metabolism
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glyphosate degradation III
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PWY-7807
heterolactic fermentation
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P122-PWY
histidine metabolism
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hydrogen production I
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PWY-6744
hydrogen production VI
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PWY-6780
incomplete reductive TCA cycle
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P42-PWY
isopropanol biosynthesis (engineered)
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PWY-6876
L-alanine degradation V (oxidative Stickland reaction)
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PWY-8189
L-asparagine biosynthesis II
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ASPARAGINESYN-PWY
L-glutamate degradation VII (to butanoate)
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GLUDEG-II-PWY
L-histidine degradation III
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PWY-5030
L-isoleucine biosynthesis V
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PWY-5108
L-leucine biosynthesis
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LEUSYN-PWY
L-lysine biosynthesis VI
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PWY-5097
L-lysine fermentation to acetate and butanoate
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P163-PWY
L-selenocysteine biosynthesis I (bacteria)
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PWY0-901
L-threonine degradation I
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PWY-5437
lactate fermentation to acetate, CO2 and hydrogen (Desulfovibrionales)
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PWY-8377
leucine metabolism
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lipid metabolism
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lupulone and humulone biosynthesis
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PWY-5132
Lysine biosynthesis
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lysine metabolism
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Metabolic pathways
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Methane metabolism
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methanogenesis from acetate
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METH-ACETATE-PWY
methanogenesis from methoxylated aromatic compounds
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PWY-8304
methoxylated aromatic compound degradation I
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PWY-8306
methoxylated aromatic compound degradation II
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PWY-8305
Microbial metabolism in diverse environments
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mixed acid fermentation
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FERMENTATION-PWY
NAD(P)/NADPH interconversion
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PWY-5083
NADH to cytochrome bd oxidase electron transfer I
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PWY0-1334
NADH to cytochrome bo oxidase electron transfer I
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PWY0-1335
nitrate reduction I (denitrification)
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DENITRIFICATION-PWY
nitrifier denitrification
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PWY-7084
Nitrogen metabolism
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Nitrotoluene degradation
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One carbon pool by folate
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ornithine metabolism
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oxalate degradation I
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PWY-6694
Oxidative phosphorylation
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oxidative phosphorylation
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Pantothenate and CoA biosynthesis
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Pentose phosphate pathway
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pentose phosphate pathway
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pentose phosphate pathway (oxidative branch) I
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OXIDATIVEPENT-PWY
phenol degradation
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Phenylalanine metabolism
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Porphyrin and chlorophyll metabolism
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Propanoate metabolism
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propanol degradation
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purine metabolism
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purine nucleobases degradation I (anaerobic)
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P164-PWY
purine nucleobases degradation II (anaerobic)
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PWY-5497
pyruvate decarboxylation to acetyl CoA III
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PWY-8275
pyruvate fermentation to acetate I
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P142-PWY
pyruvate fermentation to acetate II
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PWY-5482
pyruvate fermentation to acetate III
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PWY-5483
pyruvate fermentation to acetate IV
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PWY-5485
pyruvate fermentation to acetate VI
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PWY-5538
pyruvate fermentation to acetate VII
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PWY-5600
pyruvate fermentation to acetone
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PWY-6588
pyruvate fermentation to butanoate
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CENTFERM-PWY
pyruvate fermentation to butanol I
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PWY-6583
pyruvate fermentation to ethanol III
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PWY-6587
pyruvate fermentation to hexanol (engineered)
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PWY-6863
Pyruvate metabolism
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reductive acetyl coenzyme A pathway
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reductive acetyl coenzyme A pathway I (homoacetogenic bacteria)
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CODH-PWY
reductive glycine pathway of autotrophic CO2 fixation
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PWY-8303
reductive monocarboxylic acid cycle
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PWY-5493
reductive TCA cycle I
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P23-PWY
reductive TCA cycle II
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PWY-5392
Riboflavin metabolism
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Selenocompound metabolism
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selenocysteine biosynthesis
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sulfoacetaldehyde degradation I
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PWY-1281
sulfolactate degradation II
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PWY-6637
superpathway of adenosylcobalamin salvage from cobinamide I
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COBALSYN-PWY
superpathway of adenosylcobalamin salvage from cobinamide II
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PWY-6269
superpathway of fermentation (Chlamydomonas reinhardtii)
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PWY4LZ-257
syringate degradation
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PWY-6339
Taurine and hypotaurine metabolism
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tetrahydrofolate metabolism
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tetrahydrofolate salvage from 5,10-methenyltetrahydrofolate
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PWY-6613
threonine metabolism
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Valine, leucine and isoleucine biosynthesis
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Valine, leucine and isoleucine degradation
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vanillin and vanillate degradation I
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PWY-7097
vitamin B12 metabolism
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ORGANISM
COMMENTARY hide
LITERATURE
UNIPROT
SEQUENCE DB
SOURCE
SOURCE TISSUE
ORGANISM
UNIPROT
COMMENTARY hide
LITERATURE
SOURCE
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activity in the crude extract is about 100times increased if 0.010 mM tungstate and a sulfur source in adition to sulfate is given to the growth medium
Manually annotated by BRENDA team
additional information
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optimum growth temperature of Moorella thermoacetica is 55°C
Manually annotated by BRENDA team
LOCALIZATION
ORGANISM
UNIPROT
COMMENTARY hide
GeneOntology No.
LITERATURE
SOURCE
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DsrMKJOP forms a membrane-spanning complex proposed to accept electrons from or to deliver electrons to cytoplasmic sulfur-oxidizing proteins
Manually annotated by BRENDA team
LINKS TO OTHER DATABASES (specific for Neomoorella thermoacetica)