A cadmium-transporting P1B-type ATPase in yeast Saccharomyces cerevisiae.

J Biol Chem

Redox Biology Center, Department of Biochemistry, University of Nebraska, Lincoln, Nebraska 68588-0664, USA.

Published: January 2007

AI Article Synopsis

  • Detoxification of metal ions is crucial for living organisms, and PCA1 in yeast acts as a suppressor of copper toxicity despite being nonfunctional in common lab strains due to a mutation.
  • PCA1 functions as a cadmium efflux pump that is regulated post-transcriptionally and shows increased expression in response to cadmium, copper, and silver.
  • The findings suggest a unique metal detoxification mechanism in yeast that differs in structure and substrate specificity from other known systems.

Article Abstract

Detoxification and homeostatic acquisition of metal ions are vital for all living organisms. We have identified PCA1 in yeast Saccharomyces cerevisiae as an overexpression suppressor of copper toxicity. PCA1 possesses signatures of a P1B-type heavy metal-transporting ATPase that is widely distributed from bacteria to humans. Copper resistance conferred by PCA1 is not dependent on catalytic activity, but it appears that a cysteine-rich region located in the N terminus sequesters copper. Unexpectedly, when compared with two independent natural isolates and an industrial S. cerevisiae strain, the PCA1 allele of the common laboratory strains we have examined possesses a missense mutation in a predicted ATP-binding residue conserved in P1B-type ATPases. Consistent with a previous report that identifies an equivalent mutation in a copper-transporting P1B-type ATPase of a Wilson disease patient, the PCA1 allele found in laboratory yeast strains is nonfunctional. Overexpression or deletion of the functional allele in yeast demonstrates that PCA1 is a cadmium efflux pump. Cadmium as well as copper and silver, but not other metals examined, dramatically increase PCA1 protein expression through post-transcriptional regulation and promote subcellular localization to the plasma membrane. Our study has revealed a novel metal detoxification mechanism in yeast mediated by a P1B-type ATPase that is unique in structure, substrate specificity, and mode of regulation.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4100611PMC
http://dx.doi.org/10.1074/jbc.M609535200DOI Listing

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