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PMID: 17617060 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Human copper transporter 2 is localized in late endosomes and lysosomes and facilitates cellular copper uptake.

The Biochemical journal ·Vol. 407 ·No. 1 ·2007-10-01 ·Pages 49-59

van den Berghe PV, Folmer DE, Malingré HE, van Beurden E, Klomp AE, van de Sluis B, Merkx M, Berger R, Klomp LW

Abstract

High-affinity cellular copper uptake is mediated by the CTR (copper transporter) 1 family of proteins. The highly homologous hCTR (human CTR) 2 protein has been identified, but its function in copper uptake is currently unknown. To characterize the role of hCTR2 in copper homoeostasis, epitope-tagged hCTR2 was transiently expressed in different cell lines. hCTR2-vsvG (vesicular-stomatitis-virus glycoprotein) predominantly migrated as a 17 kDa protein after imunoblot analysis, consistent with its predicted molecular mass. Chemical cross-linking resulted in the detection of higher-molecular-mass complexes containing hCTR2-vsvG. Furthermore, hCTR2-vsvG was co-immunoprecipitated with hCTR2-FLAG, suggesting that hCTR2 can form multimers, like hCTR1. Transiently transfected hCTR2-eGFP (enhanced green fluorescent protein) was localized exclusively to late endosomes and lysosomes, and was not detected at the plasma membrane. To functionally address the role of hCTR2 in copper metabolism, a novel transcription-based copper sensor was developed. This MRE (metal-responsive element)-luciferase reporter contained four MREs from the mouse metallothionein 1A promoter upstream of the firefly luciferase open reading frame. Thus the MRE-luciferase reporter measured bioavailable cytosolic copper. Expression of hCTR1 resulted in strong activation of the reporter, with maximal induction at 1 muM CuCl2, consistent with the K(m) of hCTR1. Interestingly, expression of hCTR2 significantly induced MRE-luciferase reporter activation in a copper-dependent manner at 40 and 100 microM CuCl2. Taken together, these results identify hCTR2 as an oligomeric membrane protein localized in lysosomes, which stimulates copper delivery to the cytosol of human cells at relatively high copper concentrations. This work suggests a role for endosomal and lysosomal copper pools in the maintenance of cellular copper homoeostasis.

MeSH Terms
Amino Acid Sequence Biological Transport Cation Transport Proteins/analysis,genetics,metabolism,physiology Cell Membrane/metabolism Cells, Cultured Copper/metabolism Copper Transporter 1 Cytosol/metabolism Endosomes/chemistry,metabolism HeLa Cells Humans Lysosomes/chemistry,metabolism Molecular Sequence Data SLC31 Proteins Sequence Alignment Transfection
Chemicals
Cation Transport Proteins Copper Transporter 1 SLC31 Proteins SLC31A2 protein, human Copper
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
van den Berghe Peter V E
Department of Metabolic and Endocrine Diseases, University Medical Center Utrecht, 3584 EA Utrecht, The Netherlands.
Folmer Dineke E
Malingré Helga E M
van Beurden Ellen
Klomp Adriana E M
van de Sluis Bart
Merkx Maarten
Berger Ruud
Klomp Leo W J
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Article Info
Journal
The Biochemical journal
Abbr.
Biochem J
ISSN
1470-8728
Published
2007-10-01
Pages
49-59
Language
English
Region
England
NLM ID
2984726R
PMCID
PMC2267400
Subset
IM
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