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Published on: July 16, 2020
Synthesis and structural characterization of a mimetic membrane-anchored prion protein
Matthew R Hicks1, Andrew C Gill, Imanpreet K Bath
1Department of Biological Sciences, University of Warwick, Coventry, UK.
Abstract:
During pathogenesis of transmissible spongiform encephalopathies (TSEs) an abnormal form (PrP(Sc)) of the host encoded prion protein (PrP(C)) accumulates in insoluble fibrils and plaques. The two forms of PrP appear to have identical covalent structures, but differ in secondary and tertiary structure. Both PrP(C) and PrP(Sc) have glycosylphospatidylinositol (GPI) anchors through which the protein is tethered to cell membranes. Membrane attachment has been suggested to play a role in the conversion of PrP(C) to PrP(Sc), but the majority of in vitro studies of the function, structure, folding and stability of PrP use recombinant protein lacking the GPI anchor. In order to study the effects of membranes on the structure of PrP, we synthesized a GPI anchor mimetic (GPIm), which we have covalently coupled to a genetically engineered cysteine residue at the C-terminus of recombinant PrP. The lipid anchor places the protein at the same distance from the membrane as does the naturally occurring GPI anchor. We demonstrate that PrP coupled to GPIm (PrP-GPIm) inserts into model lipid membranes and that structural information can be obtained from this membrane-anchored PrP. We show that the structure of PrP-GPIm reconstituted in phosphatidylcholine and raft membranes resembles that of PrP, without a GPI anchor, in solution. The results provide experimental evidence in support of previous suggestions that NMR structures of soluble, anchor-free forms of PrP represent the structure of cellular, membrane-anchored PrP. The availability of a lipid-anchored construct of PrP provides a unique model to investigate the effects of different lipid environments on the structure and conversion mechanisms of PrP.
Insights
Researchers created a lipid-anchored prion protein (PrP) construct to study its structure on membranes. This membrane-anchored PrP structure resembles soluble PrP, supporting its use in studying prion protein conversion mechanisms.
Area of Science:
- Biochemistry
- Neuroscience
- Structural Biology
Background:
- Transmissible spongiform encephalopathies (TSEs) involve abnormal prion protein (PrPSc) accumulation.
- Prion protein (PrPC) and PrPSc share covalent structures but differ in folding.
- GPI anchors tether PrPC to cell membranes, potentially influencing conversion.
Purpose of the Study:
- To investigate the effects of membrane attachment on prion protein structure.
- To develop a model for studying lipid environments' impact on PrP structure and conversion.
Main Methods:
- Synthesized a GPI anchor mimetic (GPIm) and coupled it to recombinant PrP (PrP-GPIm).
- Incorporated PrP-GPIm into model lipid membranes (phosphatidylcholine and raft membranes).
- Obtained structural information from membrane-anchored PrP using NMR.
Main Results:
- PrP-GPIm successfully inserted into model lipid membranes.
- The structure of membrane-anchored PrP-GPIm was similar to soluble PrP.
- NMR structures of anchor-free PrP accurately represent membrane-anchored PrP.
Conclusions:
- NMR structures of soluble PrP are representative of membrane-anchored PrP.
- The PrP-GPIm construct provides a valuable model for studying PrP structure and conversion in lipid environments.
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