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Catalysis of the transfer of inorganic cations from one side of a membrane to the other. Inorganic cations are atoms or small molecules with a positive charge that do not contain carbon in covalent linkage. Catalysis of the transfer of metal ions from one side of a membrane to the other. Catalysis of the transfer of cadmium (Cd) ions from one side of a membrane to the other. Catalysis of the transfer of transition metal ions from one side of a membrane to the other. A transition metal is an element whose atom has an incomplete d-subshell of extranuclear electrons, or which gives rise to a cation or cations with an incomplete d-subshell. Transition metals often have more than one valency state. Biologically relevant transition metals include vanadium, manganese, iron, copper, cobalt, nickel, molybdenum and silver. Catalysis of the transfer of a solute or solutes from one side of a membrane to the other according to the reaction: ATP + H2O + Cd (cytosol) = ADP + phosphate + Cd (vacuole). Catalysis of the transfer of a solute or solutes from one side of a membrane to the other according to the reaction: ATP + H2O + Cd2+(in) = ADP + phosphate + Cd2+(out). Catalysis of the transfer of inorganic cations with a valency of two or three from one side of the membrane to the other. Inorganic cations are atoms or small molecules with a positive charge that do not contain carbon in covalent linkage.

View Gene Ontology (GO) Term

GO TERM SUMMARY

Name: cadmium ion transmembrane transporter activity
Acc: GO:0015086
Aspect: Molecular Function
Desc: Catalysis of the transfer of cadmium (Cd) ions from one side of a membrane to the other.
Synonyms:
  • zinc, cadmium, cobalt, nickel, lead-efflux ATPase activity
  • zinc, cadmium uptake permease activity
Proteins in PDR annotated with:
   This term: 11 [Search]
   Term or descendants: 16 [Search]


[geneontology.org]
INTERACTIVE GO GRAPH

GO:0015086 - cadmium ion transmembrane transporter activity (interactive image map)

YRC Informatics Platform - Version 3.0
Created and Maintained by: Michael Riffle