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

Human Molecular Genetics
|November 25, 2000
PubMed

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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