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Updated: Aug 2, 2026

Protein Misfolding Cyclic Amplification of Prions
Published on: November 7, 2012
Most pathogenic mutations do not alter the membrane topology of the prion protein
1Department of Cell Biology and Physiology, Washington University School of Medicine, St. Louis, Missouri 63110, USA.
Abstract:
The prion protein (PrP), a glycolipid-anchored membrane glycoprotein, contains a conserved hydrophobic sequence that can span the lipid bilayer in either direction, resulting in two transmembrane forms designated (Ntm)PrP and (Ctm)PrP. Previous studies have shown that the proportion of (Ctm)PrP is increased by mutations in the membrane-spanning segment, and it has been hypothesized that (Ctm)PrP represents a key intermediate in the pathway of prion-induced neurodegeneration. To further test this idea, we have surveyed a number of mutations associated with familial prion diseases to determine whether they alter the proportions of (Ntm)PrP and (Ctm)PrP produced in vitro, in transfected cells, and in transgenic mice. For the in vitro experiments, PrP mRNA was translated in the presence of murine thymoma microsomes which, in contrast to the canine pancreatic microsomes used in previous studies, are capable of efficient glycolipidation. We confirmed that mutations within or near the transmembrane domain enhance the formation of (Ctm)PrP, and we demonstrate for the first time that this species contains a C-terminal glycolipid anchor, thus exhibiting an unusual, dual mode of membrane attachment. However, we find that pathogenic mutations in other regions of the molecule have no effect on the amounts of (Ctm)PrP and (Ntm)PrP, arguing against the proposition that transmembrane PrP plays an obligate role in the pathogenesis of prion diseases.
Insights
Familial prion disease mutations do not alter transmembrane prion protein (PrP) levels, challenging the hypothesis that transmembrane PrP is key to neurodegeneration. This study investigates PrP’s membrane-spanning forms in disease.
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- The prion protein (PrP) exists in transmembrane forms, (Ntm)PrP and (Ctm)PrP.
- Increased (Ctm)PrP is hypothesized to be crucial in prion disease pathogenesis.
Purpose of the Study:
- To investigate if familial prion disease mutations alter the proportions of (Ntm)PrP and (Ctm)PrP.
- To assess the role of transmembrane PrP in prion-induced neurodegeneration.
Main Methods:
- In vitro translation of PrP mRNA with murine thymoma microsomes.
- Analysis of PrP forms in transfected cells and transgenic mice.
- Surveying mutations associated with familial prion diseases.
Main Results:
- Mutations in the transmembrane domain enhance (Ctm)PrP formation, which has a dual membrane anchor.
- Pathogenic mutations outside the transmembrane domain do not affect (Ntm)PrP or (Ctm)PrP levels.
- This challenges the role of transmembrane PrP in prion disease.
Conclusions:
- Transmembrane prion protein (PrP) is not obligately involved in the pathogenesis of prion diseases.
- The dual membrane attachment of (Ctm)PrP is a novel finding.
- Specific mutations influence PrP membrane topology, but not all pathogenic mutations.
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