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The Menkes copper transporter is required for the activation of tyrosinase
M J Petris1, D Strausak, J F Mercer
1Centre for Cellular and Molecular Biology, School of Biological and Chemical Sciences, Deakin University, 221 Burwood Highway, Burwood 3125, Australia. petrism@missouri.edu
Abstract:
Menkes disease is an X-linked recessive copper deficiency disorder caused by mutations in the ATP7A (MNK) gene. The MNK gene encodes a copper-transporting P-type ATPase, MNK, which is localized predominantly in the trans-Golgi network (TGN). The MNK protein relocates to the plasma membrane in cells exposed to elevated copper where it functions in copper efflux. A role for MNK at the TGN in mammalian cells has not been demonstrated. In this study, we investigated whether the MNK protein is required for the activity of tyrosinase, a copper-dependent enzyme involved in melanogenesis that is synthesized within the secretory pathway. We demonstrate that recombinant tyrosinase expressed in immortalized Menkes fibroblast cell lines was inactive, whereas in normal fibroblasts known to express MNK protein there was substantial tyrosinase activity. Co-expression of the Menkes protein and tyrosinase from plasmid constructs in Menkes fibroblasts led to the activation of tyrosinase and melanogenesis. This MNK-dependent activation of tyrosinase was impaired by the chelation of copper in the medium of cells and after mutation of the invariant phosphorylation site at aspartic acid residue 1044 of MNK. Collectively, these findings suggest that the MNK protein transports copper into the secretory pathway of mammalian cells to activate copper-dependent enzymes and reveal a second copper transport role for MNK in mammalian cells. These findings describe a single cell-based system that allows both the copper transport and trafficking functions of MNK to be studied. This study also contributes to our understanding of the molecular basis of pigmentation in mammalian cells.
Insights
Menkes disease protein (MNK) transports copper within cells to activate tyrosinase, an enzyme essential for pigmentation. This study reveals a new role for MNK in copper transport for cellular processes.
Area of Science:
- Cell Biology
- Genetics
- Biochemistry
Background:
- Menkes disease is a copper deficiency disorder caused by mutations in the ATP7A (MNK) gene.
- The MNK protein, a copper-transporting ATPase, is primarily found in the trans-Golgi network (TGN).
- While MNK's role in copper efflux at the plasma membrane is known, its function at the TGN in mammalian cells remained unclear.
Purpose of the Study:
- To investigate if the MNK protein is essential for the activity of tyrosinase, a copper-dependent enzyme involved in melanogenesis.
- To explore the role of MNK in transporting copper into the secretory pathway for enzyme activation.
Main Methods:
- Utilized immortalized Menkes fibroblast cell lines and normal fibroblasts.
- Expressed recombinant tyrosinase and co-expressed MNK and tyrosinase using plasmid constructs.
- Investigated the effect of copper chelation and MNK phosphorylation site mutation on tyrosinase activity.
Main Results:
- Recombinant tyrosinase was inactive in Menkes fibroblasts but active in normal fibroblasts expressing MNK.
- Co-expression of MNK and tyrosinase in Menkes fibroblasts restored tyrosinase activity and melanogenesis.
- MNK-dependent tyrosinase activation was inhibited by copper chelation and mutation of the MNK phosphorylation site.
Conclusions:
- The MNK protein transports copper into the secretory pathway to activate copper-dependent enzymes like tyrosinase.
- This study demonstrates a second copper transport role for MNK in mammalian cells, specifically within the secretory pathway.
- The findings provide insights into the molecular basis of pigmentation and establish a cell-based system for studying MNK functions.
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