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Published on: August 8, 2017
The effects of prion protein expression on metal metabolism
Silvia Kralovicova1, Sarah N Fontaine, Alexandra Alderton
1Department of Biology and Biochemistry, University of Bath, Claverton Down, Bath BA27AY, UK.
Abstract:
The prion protein is a glycoprotein that binds metals such as copper and manganese. When converted to a proteinase resistant isoform it is associated with prion diseases such as Creutzfeldt-Jakob disease and bovine spongiform encephalopathy. Although, the co-ordination and metal affinity of the prion protein has been well studied, the association of the protein with cellular metal metabolism has been less well investigated. We used transgenic manipulation of prion protein expression and other recombinant techniques to alter expression of known copper binding proteins to investigate the role of the prion protein in copper metabolism. We found that changing the expression of the prion protein alters proteins associated with copper uptake, storage and export from the cell. In addition, alteration in the expression of superoxide dismutases increased prion protein expression dramatically. Reducing copper in the diet decreased expression of the prion protein in the brain while increased dietary manganese dramatically increased the protein's expression. Cellular prion infection also increased the expression of metal transporting proteins and increased cellular manganese concentrations. Overall our results show a close link between cellular resistance to oxidative stress and also copper metabolism. These findings are in line with previous data suggesting that the prion protein is an antioxidant and associated with copper uptake into cells. The disturbance to copper metabolism, as a result of altered prion protein expression clearly demonstrates the important role of the prion protein in copper metabolism. The implication is that prion protein expression has a homeostatic role in copper metabolism.
Insights
The prion protein influences cellular copper metabolism and oxidative stress resistance. Altering its expression affects copper transport and cellular manganese levels, suggesting a homeostatic role.
Area of Science:
- Biochemistry
- Neuroscience
- Cell Biology
Background:
- The prion protein (PrP) binds metals like copper and manganese.
- Misfolded PrP is linked to neurodegenerative prion diseases.
- PrP's role in cellular metal metabolism remains under-investigated.
Purpose of the Study:
- To investigate the role of the prion protein in cellular copper metabolism.
- To explore the relationship between prion protein expression and metal homeostasis.
Main Methods:
- Transgenic manipulation of prion protein expression.
- Recombinant techniques to alter copper-binding protein expression.
- Dietary copper and manganese level adjustments.
Main Results:
- Altered prion protein expression impacted proteins involved in cellular copper uptake, storage, and export.
- Changes in superoxide dismutase expression significantly increased prion protein levels.
- Dietary copper reduction decreased brain prion protein expression, while manganese increased it.
- Cellular prion infection elevated metal transporters and cellular manganese.
Conclusions:
- Prion protein expression is closely linked to cellular oxidative stress resistance and copper metabolism.
- Prion protein plays a significant homeostatic role in regulating copper metabolism.
- Findings support the prion protein's function as an antioxidant and in cellular copper uptake.
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