Role of glutaredoxin1 and glutathione in regulating the activity of the copper-transporting P-type ATPases, ATP7A and ATP7B.

J Biol Chem

Strategic Research Centre for Molecular and Medical Research and Centre for Cellular and Molecular Biology, School of Life and Environmental Sciences, Deakin University, Burwood, 3125 Victoria, Australia. Electronic address:

Published: August 2010

AI Article Synopsis

  • The study investigates the roles of glutathione (GSH) and glutaredoxin1 (GRX1) in regulating the activity of copper-transporting P-type ATPases (Cu-ATPases), which are key for maintaining copper levels in cells.
  • It shows that fluctuations in copper levels influence how Cu-ATPases interact with GRX1 and undergo glutathionylation, a process that impacts their ability to bind and transport copper.
  • Additionally, experiments reveal that reducing GSH or knocking down GRX1 leads to altered intracellular copper levels and highlights their important roles in the redox regulation of Cu-ATPases.

Article Abstract

The copper-transporting P-type ATPases (Cu-ATPases), ATP7A and ATP7B, are essential for the regulation of intracellular copper homeostasis. In this report we describe new roles for glutathione (GSH) and glutaredoxin1 (GRX1) in Cu homeostasis through their regulation of Cu-ATPase activity. GRX1 is a thiol oxidoreductase that catalyzes the reversible reduction of GSH-mixed disulfides to their respective sulfhydryls (deglutathionylation). Here, we demonstrated that glutathionylation of the Cu-ATPases and their interaction with GRX1 were affected by alterations in Cu levels. The data support our hypothesis that the Cu-ATPases serve as substrates for Cu-dependent GRX1-mediated deglutathionylation. This in turn liberates the Cu-ATPase cysteinyl thiol groups for Cu binding and transport. GSH depletion experiments led to reversible inhibition of the Cu-ATPases that correlated with effects on intracellular Cu levels and GRX1 activity. Finally, knockdown of GRX1 expression resulted in an increase in intracellular Cu accumulation. Together, these data directly implicate GSH and GRX1 with important new roles in redox regulation of the Cu-ATPases, through modulation of Cu binding by the Cu-ATPase cysteine motifs.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC2930710PMC
http://dx.doi.org/10.1074/jbc.M110.154468DOI Listing

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