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PMID: 16939419 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Copper binding to the N-terminal metal-binding sites or the CPC motif is not essential for copper-induced trafficking of the human Wilson protein (ATP7B).

The Biochemical journal ·Vol. 401 ·No. 1 ·2007-01-01 ·Pages 143-53

Cater MA, La Fontaine S, Mercer JF

Abstract

The Wilson protein (ATP7B) is a copper-translocating P-type ATPase that mediates the excretion of excess copper from hepatocytes into bile. Excess copper causes the protein to traffic from the TGN (trans-Golgi network) to subapical vesicles. Using site-directed mutagenesis, mutations known or predicted to abrogate catalytic activity (copper translocation) were introduced into ATP7B and the effect of these mutations on the intracellular trafficking of the protein was investigated. Mutation of the critical aspartic acid residue in the phosphorylation domain (DKTGTIT) blocked copper-induced redistribution of ATP7B from the TGN, whereas mutation of the phosphatase domain [TGE (Thr-Gly-Glu)] trapped ATP7B at cytosolic vesicular compartments. Our findings demonstrate that ATP7B trafficking is regulated with its copper-translocation cycle, with cytosolic vesicular localization associated with the acyl-phosphate intermediate. In addition, mutation of the six N-terminal metal-binding sites and/or the trans-membrane CPC (Cys-Pro-Cys) motif did not suppress the constitutive vesicular localization of the ATP7B phosphatase domain mutant. These results suggested that copper co-ordination by these sites is not essential for trafficking. Importantly, copper-chelation studies with these mutants clearly demonstrated a requirement for copper in ATP7B trafficking, suggesting the presence of an additional copper-binding site(s) within the protein. The results presented in this report significantly advance our understanding of the regulatory mechanism that links copper-translocation activity with copper-induced intracellular trafficking of ATP7B, which is central to hepatic and hence systemic copper homoeostasis.

MeSH Terms
Adenosine Triphosphatases/chemistry,genetics,metabolism Amino Acid Sequence Binding Sites Cation Transport Proteins/chemistry,genetics,metabolism Copper/metabolism Copper-Transporting ATPases Cysteine DNA Primers Glutamic Acid/metabolism Glycine Hepatolenticular Degeneration/metabolism Humans Models, Molecular Oligopeptides/metabolism Polymerase Chain Reaction Protein Conformation Threonine
Chemicals
Cation Transport Proteins DNA Primers Oligopeptides Threonine Glutamic Acid Copper Adenosine Triphosphatases ATP7B protein, human Copper-Transporting ATPases Cysteine Glycine
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Cater Michael A
Centre for Cellular and Molecular Biology, School of Biological and Chemical Sciences, Deakin University, 221 Burwood Highway, Burwood, VIC 3125, Australia.
La Fontaine Sharon
Mercer Julian F B
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Article Info
Journal
The Biochemical journal
Abbr.
Biochem J
ISSN
1470-8728
Published
2007-01-01
Pages
143-53
Language
English
Region
England
NLM ID
2984726R
PMCID
PMC1698686
Subset
IM
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