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Results 1 - 10 of 14 > >>
EC Number Natural Substrates Commentary (Nat. Sub.)
Display the word mapDisplay the reaction diagram Show all sequences 7.3.2.5ATP + H2O + molybdate-[molybdate-binding protein][side 1] -
Display the word mapDisplay the reaction diagram Show all sequences 7.3.2.5ATP + H2O + molybdate/out -
Display the word mapDisplay the reaction diagram Show all sequences 7.3.2.5ATP + H2O + molybdate/out enzyme is involved in molybdate transport
Display the word mapDisplay the reaction diagram Show all sequences 7.3.2.5ATP + H2O + molybdate/out import of molybdate
Display the word mapDisplay the reaction diagram Show all sequences 7.3.2.5ATP + H2O + molybdate/out the enzyme is essential for arsenite oxidation
Display the word mapDisplay the reaction diagram Show all sequences 7.3.2.5ATP + H2O + molybdate/out the ATPase activity is strictly required
Display the word mapDisplay the reaction diagram Show all sequences 7.3.2.5more MOT1 is required for efficient uptake and translocation of molybdate and for normal growth under conditions of limited molybdate supply
Display the word mapDisplay the reaction diagram Show all sequences 7.3.2.5more ModABC can also transport tungstate
Display the word mapDisplay the reaction diagram Show all sequences 7.3.2.5more ModABC can also transport tungstate and sulfate, while the sulfate/thiosulfate permease, CysPTWA belonging to the sulfate/tungstate uptake transporter SulT family, of Escherichia coli can transport sulfate, chromate, molybdate, and selenate, overview. Molybdate can also be taken up by a non-specific low-efficiency anion transport system that requires high molybdate concentrations, and which also transports sulfate, selenate, and selenite
Display the word mapDisplay the reaction diagram Show all sequences 7.3.2.5more ModABC can also transport tungstate and sulfate. ModA specifically binds molybdate or tungstate
Results 1 - 10 of 14 > >>